ID Workflow Result Correct Bug Created Started Finished Revision
5e4bacfd assessment-kcsan Benign: ✅ Confident: ✅ KCSAN: data-race in kick_pool / wq_worker_running 2026/02/24 19:11 2026/02/24 19:11 2026/02/24 19:14 305c0ec5
Agent: ---
External Bug ID: ---

Inputs:
BugTitle KCSAN: data-race in kick_pool / wq_worker_running
CrashReportID 5048982734110720
KernelCommit 7dff99b354601dd01829e1511711846e04340a69
KernelConfig
Show (261014 bytes)
#
# Automatically generated file; DO NOT EDIT.
# Linux/x86_64 syzkaller Kernel Configuration
#
CONFIG_CC_VERSION_TEXT="Debian clang version 21.1.8 (++20251221033036+2078da43e25a-1~exp1~20251221153213.50)"
CONFIG_GCC_VERSION=0
CONFIG_CC_IS_CLANG=y
CONFIG_CLANG_VERSION=210108
CONFIG_AS_IS_LLVM=y
CONFIG_AS_VERSION=210108
CONFIG_LD_VERSION=0
CONFIG_LD_IS_LLD=y
CONFIG_LLD_VERSION=210108
CONFIG_RUSTC_VERSION=109101
CONFIG_RUST_IS_AVAILABLE=y
CONFIG_RUSTC_LLVM_VERSION=210102
CONFIG_CC_CAN_LINK=y
CONFIG_CC_HAS_ASM_GOTO_OUTPUT=y
CONFIG_CC_HAS_ASM_GOTO_TIED_OUTPUT=y
CONFIG_TOOLS_SUPPORT_RELR=y
CONFIG_CC_HAS_ASM_INLINE=y
CONFIG_CC_HAS_ASSUME=y
CONFIG_CC_HAS_NO_PROFILE_FN_ATTR=y
CONFIG_CC_HAS_COUNTED_BY=y
CONFIG_CC_HAS_BROKEN_COUNTED_BY_REF=y
CONFIG_CC_HAS_MULTIDIMENSIONAL_NONSTRING=y
CONFIG_LD_CAN_USE_KEEP_IN_OVERLAY=y
CONFIG_RUSTC_HAS_SLICE_AS_FLATTENED=y
CONFIG_RUSTC_HAS_COERCE_POINTEE=y
CONFIG_RUSTC_HAS_SPAN_FILE=y
CONFIG_RUSTC_HAS_UNNECESSARY_TRANSMUTES=y
CONFIG_RUSTC_HAS_FILE_WITH_NUL=y
CONFIG_RUSTC_HAS_FILE_AS_C_STR=y
CONFIG_PAHOLE_VERSION=130
CONFIG_CONSTRUCTORS=y
CONFIG_IRQ_WORK=y
CONFIG_BUILDTIME_TABLE_SORT=y
CONFIG_THREAD_INFO_IN_TASK=y

#
# General setup
#
CONFIG_INIT_ENV_ARG_LIMIT=32
# CONFIG_COMPILE_TEST is not set
# CONFIG_WERROR is not set
CONFIG_LOCALVERSION=""
CONFIG_LOCALVERSION_AUTO=y
CONFIG_BUILD_SALT=""
CONFIG_HAVE_KERNEL_GZIP=y
CONFIG_HAVE_KERNEL_BZIP2=y
CONFIG_HAVE_KERNEL_LZMA=y
CONFIG_HAVE_KERNEL_XZ=y
CONFIG_HAVE_KERNEL_LZO=y
CONFIG_HAVE_KERNEL_LZ4=y
CONFIG_HAVE_KERNEL_ZSTD=y
CONFIG_KERNEL_GZIP=y
# CONFIG_KERNEL_BZIP2 is not set
# CONFIG_KERNEL_LZMA is not set
# CONFIG_KERNEL_XZ is not set
# CONFIG_KERNEL_LZO is not set
# CONFIG_KERNEL_LZ4 is not set
# CONFIG_KERNEL_ZSTD is not set
CONFIG_DEFAULT_INIT=""
CONFIG_DEFAULT_HOSTNAME="(none)"
CONFIG_SYSVIPC=y
CONFIG_SYSVIPC_SYSCTL=y
CONFIG_SYSVIPC_COMPAT=y
CONFIG_POSIX_MQUEUE=y
CONFIG_POSIX_MQUEUE_SYSCTL=y
# CONFIG_WATCH_QUEUE is not set
CONFIG_CROSS_MEMORY_ATTACH=y
CONFIG_AUDIT=y
CONFIG_HAVE_ARCH_AUDITSYSCALL=y
CONFIG_AUDITSYSCALL=y

#
# IRQ subsystem
#
CONFIG_GENERIC_IRQ_PROBE=y
CONFIG_GENERIC_IRQ_SHOW=y
CONFIG_GENERIC_IRQ_EFFECTIVE_AFF_MASK=y
CONFIG_GENERIC_PENDING_IRQ=y
CONFIG_GENERIC_IRQ_MIGRATION=y
CONFIG_HARDIRQS_SW_RESEND=y
CONFIG_IRQ_DOMAIN=y
CONFIG_IRQ_DOMAIN_HIERARCHY=y
CONFIG_GENERIC_MSI_IRQ=y
CONFIG_GENERIC_IRQ_MATRIX_ALLOCATOR=y
CONFIG_GENERIC_IRQ_RESERVATION_MODE=y
CONFIG_IRQ_FORCED_THREADING=y
CONFIG_SPARSE_IRQ=y
# CONFIG_GENERIC_IRQ_DEBUGFS is not set
# end of IRQ subsystem

CONFIG_CLOCKSOURCE_WATCHDOG=y
CONFIG_ARCH_CLOCKSOURCE_INIT=y
CONFIG_GENERIC_TIME_VSYSCALL=y
CONFIG_GENERIC_CLOCKEVENTS=y
CONFIG_GENERIC_CLOCKEVENTS_BROADCAST=y
CONFIG_GENERIC_CLOCKEVENTS_BROADCAST_IDLE=y
CONFIG_GENERIC_CLOCKEVENTS_MIN_ADJUST=y
CONFIG_GENERIC_CMOS_UPDATE=y
CONFIG_HAVE_POSIX_CPU_TIMERS_TASK_WORK=y
CONFIG_POSIX_CPU_TIMERS_TASK_WORK=y
CONFIG_CONTEXT_TRACKING=y
CONFIG_CONTEXT_TRACKING_IDLE=y

#
# Timers subsystem
#
CONFIG_TICK_ONESHOT=y
CONFIG_NO_HZ_COMMON=y
# CONFIG_HZ_PERIODIC is not set
CONFIG_NO_HZ_IDLE=y
# CONFIG_NO_HZ_FULL is not set
CONFIG_NO_HZ=y
CONFIG_HIGH_RES_TIMERS=y
CONFIG_CLOCKSOURCE_WATCHDOG_MAX_SKEW_US=125
# CONFIG_POSIX_AUX_CLOCKS is not set
# end of Timers subsystem

CONFIG_BPF=y
CONFIG_HAVE_EBPF_JIT=y
CONFIG_ARCH_WANT_DEFAULT_BPF_JIT=y

#
# BPF subsystem
#
CONFIG_BPF_SYSCALL=y
CONFIG_BPF_JIT=y
# CONFIG_BPF_JIT_ALWAYS_ON is not set
CONFIG_BPF_JIT_DEFAULT_ON=y
# CONFIG_BPF_UNPRIV_DEFAULT_OFF is not set
# CONFIG_BPF_PRELOAD is not set
# CONFIG_BPF_LSM is not set
# end of BPF subsystem

CONFIG_PREEMPT_BUILD=y
CONFIG_ARCH_HAS_PREEMPT_LAZY=y
CONFIG_PREEMPT=y
# CONFIG_PREEMPT_LAZY is not set
# CONFIG_PREEMPT_RT is not set
CONFIG_PREEMPT_COUNT=y
CONFIG_PREEMPTION=y
CONFIG_PREEMPT_DYNAMIC=y
# CONFIG_SCHED_CORE is not set

#
# CPU/Task time and stats accounting
#
CONFIG_TICK_CPU_ACCOUNTING=y
# CONFIG_VIRT_CPU_ACCOUNTING_GEN is not set
# CONFIG_IRQ_TIME_ACCOUNTING is not set
CONFIG_BSD_PROCESS_ACCT=y
# CONFIG_BSD_PROCESS_ACCT_V3 is not set
CONFIG_TASKSTATS=y
CONFIG_TASK_DELAY_ACCT=y
CONFIG_TASK_XACCT=y
CONFIG_TASK_IO_ACCOUNTING=y
# CONFIG_PSI is not set
# end of CPU/Task time and stats accounting

CONFIG_CPU_ISOLATION=y

#
# RCU Subsystem
#
CONFIG_TREE_RCU=y
CONFIG_PREEMPT_RCU=y
# CONFIG_RCU_EXPERT is not set
CONFIG_TREE_SRCU=y
CONFIG_TASKS_RCU_GENERIC=y
CONFIG_NEED_TASKS_RCU=y
CONFIG_TASKS_RCU=y
CONFIG_TASKS_TRACE_RCU=y
CONFIG_RCU_STALL_COMMON=y
CONFIG_RCU_NEED_SEGCBLIST=y
# end of RCU Subsystem

# CONFIG_IKCONFIG is not set
# CONFIG_IKHEADERS is not set
CONFIG_LOG_BUF_SHIFT=18
CONFIG_LOG_CPU_MAX_BUF_SHIFT=12
# CONFIG_PRINTK_INDEX is not set
CONFIG_HAVE_UNSTABLE_SCHED_CLOCK=y

#
# Scheduler features
#
# CONFIG_UCLAMP_TASK is not set
# CONFIG_SCHED_PROXY_EXEC is not set
# end of Scheduler features

CONFIG_ARCH_SUPPORTS_NUMA_BALANCING=y
CONFIG_ARCH_WANT_BATCHED_UNMAP_TLB_FLUSH=y
CONFIG_CC_HAS_INT128=y
CONFIG_CC_IMPLICIT_FALLTHROUGH="-Wimplicit-fallthrough"
CONFIG_GCC10_NO_ARRAY_BOUNDS=y
CONFIG_GCC_NO_STRINGOP_OVERFLOW=y
CONFIG_ARCH_SUPPORTS_INT128=y
# CONFIG_NUMA_BALANCING is not set
CONFIG_SLAB_OBJ_EXT=y
CONFIG_CGROUPS=y
CONFIG_PAGE_COUNTER=y
# CONFIG_CGROUP_FAVOR_DYNMODS is not set
CONFIG_MEMCG=y
CONFIG_MEMCG_V1=y
CONFIG_BLK_CGROUP=y
CONFIG_CGROUP_WRITEBACK=y
CONFIG_CGROUP_SCHED=y
CONFIG_GROUP_SCHED_WEIGHT=y
CONFIG_FAIR_GROUP_SCHED=y
# CONFIG_CFS_BANDWIDTH is not set
# CONFIG_RT_GROUP_SCHED is not set
CONFIG_SCHED_MM_CID=y
CONFIG_CGROUP_PIDS=y
CONFIG_CGROUP_RDMA=y
# CONFIG_CGROUP_DMEM is not set
CONFIG_CGROUP_FREEZER=y
CONFIG_CGROUP_HUGETLB=y
CONFIG_CPUSETS=y
# CONFIG_CPUSETS_V1 is not set
CONFIG_CGROUP_DEVICE=y
CONFIG_CGROUP_CPUACCT=y
CONFIG_CGROUP_PERF=y
# CONFIG_CGROUP_BPF is not set
CONFIG_CGROUP_MISC=y
CONFIG_CGROUP_DEBUG=y
CONFIG_SOCK_CGROUP_DATA=y
CONFIG_NAMESPACES=y
CONFIG_UTS_NS=y
CONFIG_TIME_NS=y
CONFIG_IPC_NS=y
CONFIG_USER_NS=y
CONFIG_PID_NS=y
CONFIG_NET_NS=y
# CONFIG_CHECKPOINT_RESTORE is not set
# CONFIG_SCHED_AUTOGROUP is not set
CONFIG_RELAY=y
CONFIG_BLK_DEV_INITRD=y
CONFIG_INITRAMFS_SOURCE=""
CONFIG_RD_GZIP=y
CONFIG_RD_BZIP2=y
CONFIG_RD_LZMA=y
CONFIG_RD_XZ=y
CONFIG_RD_LZO=y
CONFIG_RD_LZ4=y
CONFIG_RD_ZSTD=y
# CONFIG_BOOT_CONFIG is not set
CONFIG_CMDLINE_LOG_WRAP_IDEAL_LEN=1021
CONFIG_INITRAMFS_PRESERVE_MTIME=y
CONFIG_CC_OPTIMIZE_FOR_PERFORMANCE=y
# CONFIG_CC_OPTIMIZE_FOR_SIZE is not set
CONFIG_LD_ORPHAN_WARN=y
CONFIG_LD_ORPHAN_WARN_LEVEL="warn"
CONFIG_SYSCTL=y
CONFIG_HAVE_UID16=y
CONFIG_SYSCTL_EXCEPTION_TRACE=y
# CONFIG_SYSFS_SYSCALL is not set
CONFIG_HAVE_PCSPKR_PLATFORM=y
CONFIG_EXPERT=y
CONFIG_UID16=y
CONFIG_MULTIUSER=y
CONFIG_SGETMASK_SYSCALL=y
CONFIG_FHANDLE=y
CONFIG_POSIX_TIMERS=y
CONFIG_PRINTK=y
CONFIG_BUG=y
CONFIG_ELF_CORE=y
CONFIG_PCSPKR_PLATFORM=y
# CONFIG_BASE_SMALL is not set
CONFIG_FUTEX=y
CONFIG_FUTEX_PI=y
CONFIG_FUTEX_PRIVATE_HASH=y
CONFIG_FUTEX_MPOL=y
CONFIG_EPOLL=y
CONFIG_SIGNALFD=y
CONFIG_TIMERFD=y
CONFIG_EVENTFD=y
CONFIG_SHMEM=y
CONFIG_AIO=y
CONFIG_IO_URING=y
# CONFIG_IO_URING_MOCK_FILE is not set
CONFIG_ADVISE_SYSCALLS=y
CONFIG_MEMBARRIER=y
CONFIG_KCMP=y
CONFIG_RSEQ=y
# CONFIG_RSEQ_SLICE_EXTENSION is not set
# CONFIG_RSEQ_STATS is not set
# CONFIG_RSEQ_DEBUG_DEFAULT_ENABLE is not set
CONFIG_CACHESTAT_SYSCALL=y
CONFIG_KALLSYMS=y
# CONFIG_KALLSYMS_SELFTEST is not set
CONFIG_KALLSYMS_ALL=y
CONFIG_ARCH_HAS_MEMBARRIER_SYNC_CORE=y
CONFIG_ARCH_SUPPORTS_MSEAL_SYSTEM_MAPPINGS=y
CONFIG_HAVE_PERF_EVENTS=y

#
# Kernel Performance Events And Counters
#
CONFIG_PERF_EVENTS=y
# CONFIG_DEBUG_PERF_USE_VMALLOC is not set
# end of Kernel Performance Events And Counters

CONFIG_SYSTEM_DATA_VERIFICATION=y
CONFIG_PROFILING=y
# CONFIG_RUST is not set
CONFIG_TRACEPOINTS=y

#
# Kexec and crash features
#
CONFIG_CRASH_RESERVE=y
CONFIG_VMCORE_INFO=y
CONFIG_KEXEC_CORE=y
CONFIG_KEXEC=y
# CONFIG_KEXEC_FILE is not set
# CONFIG_KEXEC_JUMP is not set
CONFIG_CRASH_DUMP=y
CONFIG_CRASH_HOTPLUG=y
CONFIG_CRASH_MAX_MEMORY_RANGES=8192
# end of Kexec and crash features

#
# Live Update and Kexec HandOver
#
# CONFIG_KEXEC_HANDOVER is not set
# end of Live Update and Kexec HandOver
# end of General setup

CONFIG_64BIT=y
CONFIG_X86_64=y
CONFIG_X86=y
CONFIG_INSTRUCTION_DECODER=y
CONFIG_OUTPUT_FORMAT="elf64-x86-64"
CONFIG_LOCKDEP_SUPPORT=y
CONFIG_STACKTRACE_SUPPORT=y
CONFIG_MMU=y
CONFIG_ARCH_MMAP_RND_BITS_MIN=28
CONFIG_ARCH_MMAP_RND_BITS_MAX=32
CONFIG_ARCH_MMAP_RND_COMPAT_BITS_MIN=8
CONFIG_ARCH_MMAP_RND_COMPAT_BITS_MAX=16
CONFIG_GENERIC_ISA_DMA=y
CONFIG_GENERIC_BUG=y
CONFIG_GENERIC_BUG_RELATIVE_POINTERS=y
CONFIG_ARCH_MAY_HAVE_PC_FDC=y
CONFIG_GENERIC_CALIBRATE_DELAY=y
CONFIG_ARCH_HAS_CPU_RELAX=y
CONFIG_ARCH_HIBERNATION_POSSIBLE=y
CONFIG_ARCH_SUSPEND_POSSIBLE=y
CONFIG_AUDIT_ARCH=y
CONFIG_HAVE_INTEL_TXT=y
CONFIG_ARCH_SUPPORTS_UPROBES=y
CONFIG_FIX_EARLYCON_MEM=y
CONFIG_PGTABLE_LEVELS=5

#
# Processor type and features
#
CONFIG_SMP=y
CONFIG_X86_X2APIC=y
CONFIG_X86_MPPARSE=y
# CONFIG_X86_CPU_RESCTRL is not set
# CONFIG_X86_FRED is not set
CONFIG_X86_EXTENDED_PLATFORM=y
# CONFIG_X86_NUMACHIP is not set
# CONFIG_X86_VSMP is not set
# CONFIG_X86_INTEL_MID is not set
# CONFIG_X86_GOLDFISH is not set
# CONFIG_X86_INTEL_LPSS is not set
# CONFIG_X86_AMD_PLATFORM_DEVICE is not set
CONFIG_IOSF_MBI=y
# CONFIG_IOSF_MBI_DEBUG is not set
CONFIG_X86_SUPPORTS_MEMORY_FAILURE=y
CONFIG_SCHED_OMIT_FRAME_POINTER=y
CONFIG_HYPERVISOR_GUEST=y
CONFIG_PARAVIRT=y
CONFIG_PARAVIRT_SPINLOCKS=y
CONFIG_X86_HV_CALLBACK_VECTOR=y
# CONFIG_XEN is not set
CONFIG_KVM_GUEST=y
CONFIG_ARCH_CPUIDLE_HALTPOLL=y
CONFIG_PVH=y
# CONFIG_PARAVIRT_TIME_ACCOUNTING is not set
CONFIG_PARAVIRT_CLOCK=y
# CONFIG_JAILHOUSE_GUEST is not set
# CONFIG_ACRN_GUEST is not set
# CONFIG_BHYVE_GUEST is not set
CONFIG_CC_HAS_MARCH_NATIVE=y
# CONFIG_X86_NATIVE_CPU is not set
CONFIG_X86_INTERNODE_CACHE_SHIFT=6
CONFIG_X86_L1_CACHE_SHIFT=6
CONFIG_X86_TSC=y
CONFIG_X86_HAVE_PAE=y
CONFIG_X86_CX8=y
CONFIG_X86_CMOV=y
CONFIG_X86_MINIMUM_CPU_FAMILY=64
CONFIG_X86_DEBUGCTLMSR=y
CONFIG_IA32_FEAT_CTL=y
CONFIG_X86_VMX_FEATURE_NAMES=y
CONFIG_PROCESSOR_SELECT=y
CONFIG_BROADCAST_TLB_FLUSH=y
CONFIG_CPU_SUP_INTEL=y
CONFIG_CPU_SUP_AMD=y
# CONFIG_CPU_SUP_HYGON is not set
# CONFIG_CPU_SUP_CENTAUR is not set
# CONFIG_CPU_SUP_ZHAOXIN is not set
CONFIG_HPET_TIMER=y
CONFIG_HPET_EMULATE_RTC=y
CONFIG_DMI=y
# CONFIG_GART_IOMMU is not set
# CONFIG_MAXSMP is not set
CONFIG_NR_CPUS_RANGE_BEGIN=2
CONFIG_NR_CPUS_RANGE_END=512
CONFIG_NR_CPUS_DEFAULT=64
CONFIG_NR_CPUS=8
CONFIG_SCHED_MC_PRIO=y
CONFIG_X86_LOCAL_APIC=y
CONFIG_ACPI_MADT_WAKEUP=y
CONFIG_X86_IO_APIC=y
CONFIG_X86_REROUTE_FOR_BROKEN_BOOT_IRQS=y
CONFIG_X86_MCE=y
# CONFIG_X86_MCELOG_LEGACY is not set
CONFIG_X86_MCE_INTEL=y
CONFIG_X86_MCE_AMD=y
CONFIG_X86_MCE_THRESHOLD=y
# CONFIG_X86_MCE_INJECT is not set

#
# Performance monitoring
#
CONFIG_PERF_EVENTS_INTEL_UNCORE=y
CONFIG_PERF_EVENTS_INTEL_RAPL=y
CONFIG_PERF_EVENTS_INTEL_CSTATE=y
# CONFIG_PERF_EVENTS_AMD_POWER is not set
CONFIG_PERF_EVENTS_AMD_UNCORE=y
# CONFIG_PERF_EVENTS_AMD_BRS is not set
# end of Performance monitoring

CONFIG_X86_16BIT=y
CONFIG_X86_ESPFIX64=y
CONFIG_X86_VSYSCALL_EMULATION=y
CONFIG_X86_IOPL_IOPERM=y
CONFIG_MICROCODE=y
# CONFIG_MICROCODE_LATE_LOADING is not set
# CONFIG_MICROCODE_DBG is not set
CONFIG_X86_MSR=y
CONFIG_X86_CPUID=y
CONFIG_X86_DIRECT_GBPAGES=y
# CONFIG_X86_CPA_STATISTICS is not set
CONFIG_NUMA=y
CONFIG_AMD_NUMA=y
CONFIG_X86_64_ACPI_NUMA=y
CONFIG_NODES_SHIFT=6
CONFIG_ARCH_SPARSEMEM_ENABLE=y
CONFIG_ARCH_SPARSEMEM_DEFAULT=y
CONFIG_ARCH_PROC_KCORE_TEXT=y
CONFIG_ILLEGAL_POINTER_VALUE=0xdead000000000000
# CONFIG_X86_PMEM_LEGACY is not set
CONFIG_X86_CHECK_BIOS_CORRUPTION=y
CONFIG_X86_BOOTPARAM_MEMORY_CORRUPTION_CHECK=y
CONFIG_MTRR=y
# CONFIG_MTRR_SANITIZER is not set
CONFIG_X86_PAT=y
CONFIG_X86_UMIP=y
CONFIG_CC_HAS_IBT=y
CONFIG_X86_CET=y
CONFIG_X86_KERNEL_IBT=y
CONFIG_X86_INTEL_MEMORY_PROTECTION_KEYS=y
CONFIG_ARCH_PKEY_BITS=4
# CONFIG_X86_INTEL_TSX_MODE_OFF is not set
CONFIG_X86_INTEL_TSX_MODE_ON=y
# CONFIG_X86_INTEL_TSX_MODE_AUTO is not set
# CONFIG_X86_SGX is not set
# CONFIG_X86_USER_SHADOW_STACK is not set
# CONFIG_EFI is not set
CONFIG_HZ_100=y
# CONFIG_HZ_250 is not set
# CONFIG_HZ_300 is not set
# CONFIG_HZ_1000 is not set
CONFIG_HZ=100
CONFIG_SCHED_HRTICK=y
CONFIG_ARCH_SUPPORTS_KEXEC=y
CONFIG_ARCH_SUPPORTS_KEXEC_FILE=y
CONFIG_ARCH_SUPPORTS_KEXEC_PURGATORY=y
CONFIG_ARCH_SUPPORTS_KEXEC_SIG=y
CONFIG_ARCH_SUPPORTS_KEXEC_SIG_FORCE=y
CONFIG_ARCH_SUPPORTS_KEXEC_BZIMAGE_VERIFY_SIG=y
CONFIG_ARCH_SUPPORTS_KEXEC_JUMP=y
CONFIG_ARCH_SUPPORTS_KEXEC_HANDOVER=y
CONFIG_ARCH_SUPPORTS_CRASH_DUMP=y
CONFIG_ARCH_DEFAULT_CRASH_DUMP=y
CONFIG_ARCH_SUPPORTS_CRASH_HOTPLUG=y
CONFIG_ARCH_HAS_GENERIC_CRASHKERNEL_RESERVATION=y
CONFIG_PHYSICAL_START=0x1000000
# CONFIG_RELOCATABLE is not set
CONFIG_PHYSICAL_ALIGN=0x200000
CONFIG_HOTPLUG_CPU=y
# CONFIG_COMPAT_VDSO is not set
CONFIG_LEGACY_VSYSCALL_XONLY=y
# CONFIG_LEGACY_VSYSCALL_NONE is not set
CONFIG_CMDLINE_BOOL=y
CONFIG_CMDLINE="earlyprintk=serial net.ifnames=0 sysctl.kernel.hung_task_all_cpu_backtrace=1 ima_policy=tcb nf-conntrack-ftp.ports=20000 nf-conntrack-tftp.ports=20000 nf-conntrack-sip.ports=20000 nf-conntrack-irc.ports=20000 nf-conntrack-sane.ports=20000 binder.debug_mask=0 rcupdate.rcu_expedited=1 rcupdate.rcu_cpu_stall_cputime=1 no_hash_pointers page_owner=on sysctl.vm.nr_hugepages=4 sysctl.vm.nr_overcommit_hugepages=4 secretmem.enable=1 sysctl.max_rcu_stall_to_panic=1 msr.allow_writes=off coredump_filter=0xffff root=/dev/sda console=ttyS0 vsyscall=native numa=fake=2 kvm-intel.nested=1 spec_store_bypass_disable=prctl nopcid vivid.n_devs=64 vivid.multiplanar=1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2,1,2 netrom.nr_ndevs=32 rose.rose_ndevs=32 smp.csd_lock_timeout=100000 watchdog_thresh=55 workqueue.watchdog_thresh=140 sysctl.net.core.netdev_unregister_timeout_secs=140 dummy_hcd.num=32 max_loop=32 nbds_max=32"
# CONFIG_CMDLINE_OVERRIDE is not set
CONFIG_MODIFY_LDT_SYSCALL=y
# CONFIG_STRICT_SIGALTSTACK_SIZE is not set
CONFIG_HAVE_LIVEPATCH=y
CONFIG_HAVE_KLP_BUILD=y
CONFIG_X86_BUS_LOCK_DETECT=y
# end of Processor type and features

CONFIG_CC_HAS_SLS=y
CONFIG_CC_HAS_RETURN_THUNK=y
CONFIG_CC_HAS_ENTRY_PADDING=y
CONFIG_CC_HAS_KCFI_ARITY=y
CONFIG_FUNCTION_PADDING_CFI=11
CONFIG_FUNCTION_PADDING_BYTES=16
CONFIG_CALL_PADDING=y
CONFIG_HAVE_CALL_THUNKS=y
CONFIG_CALL_THUNKS=y
CONFIG_PREFIX_SYMBOLS=y
CONFIG_CPU_MITIGATIONS=y
CONFIG_MITIGATION_PAGE_TABLE_ISOLATION=y
CONFIG_MITIGATION_RETPOLINE=y
CONFIG_MITIGATION_RETHUNK=y
CONFIG_MITIGATION_UNRET_ENTRY=y
CONFIG_MITIGATION_CALL_DEPTH_TRACKING=y
# CONFIG_CALL_THUNKS_DEBUG is not set
CONFIG_MITIGATION_IBPB_ENTRY=y
CONFIG_MITIGATION_IBRS_ENTRY=y
CONFIG_MITIGATION_SRSO=y
# CONFIG_MITIGATION_SLS is not set
CONFIG_MITIGATION_GDS=y
CONFIG_MITIGATION_RFDS=y
CONFIG_MITIGATION_SPECTRE_BHI=y
CONFIG_MITIGATION_MDS=y
CONFIG_MITIGATION_TAA=y
CONFIG_MITIGATION_MMIO_STALE_DATA=y
CONFIG_MITIGATION_L1TF=y
CONFIG_MITIGATION_RETBLEED=y
CONFIG_MITIGATION_SPECTRE_V1=y
CONFIG_MITIGATION_SPECTRE_V2=y
CONFIG_MITIGATION_SRBDS=y
CONFIG_MITIGATION_SSB=y
CONFIG_MITIGATION_ITS=y
CONFIG_MITIGATION_TSA=y
CONFIG_ARCH_HAS_ADD_PAGES=y

#
# Power management and ACPI options
#
CONFIG_ARCH_HIBERNATION_HEADER=y
CONFIG_SUSPEND=y
CONFIG_SUSPEND_FREEZER=y
# CONFIG_SUSPEND_SKIP_SYNC is not set
CONFIG_HIBERNATE_CALLBACKS=y
CONFIG_HIBERNATION=y
CONFIG_HIBERNATION_SNAPSHOT_DEV=y
CONFIG_HIBERNATION_COMP_LZO=y
CONFIG_HIBERNATION_DEF_COMP="lzo"
CONFIG_PM_STD_PARTITION=""
CONFIG_PM_SLEEP=y
CONFIG_PM_SLEEP_SMP=y
# CONFIG_PM_AUTOSLEEP is not set
# CONFIG_PM_USERSPACE_AUTOSLEEP is not set
# CONFIG_PM_WAKELOCKS is not set
# CONFIG_PM_QOS_CPU_SYSTEM_WAKEUP is not set
CONFIG_PM=y
CONFIG_PM_DEBUG=y
# CONFIG_PM_ADVANCED_DEBUG is not set
# CONFIG_PM_TEST_SUSPEND is not set
CONFIG_PM_SLEEP_DEBUG=y
CONFIG_PM_TRACE=y
CONFIG_PM_TRACE_RTC=y
CONFIG_PM_CLK=y
# CONFIG_WQ_POWER_EFFICIENT_DEFAULT is not set
# CONFIG_ENERGY_MODEL is not set
CONFIG_ARCH_SUPPORTS_ACPI=y
CONFIG_ACPI=y
CONFIG_ACPI_LEGACY_TABLES_LOOKUP=y
CONFIG_ARCH_MIGHT_HAVE_ACPI_PDC=y
CONFIG_ACPI_SYSTEM_POWER_STATES_SUPPORT=y
CONFIG_ACPI_THERMAL_LIB=y
# CONFIG_ACPI_DEBUGGER is not set
CONFIG_ACPI_SPCR_TABLE=y
# CONFIG_ACPI_FPDT is not set
CONFIG_ACPI_LPIT=y
CONFIG_ACPI_SLEEP=y
CONFIG_ACPI_REV_OVERRIDE_POSSIBLE=y
CONFIG_ACPI_EC=y
# CONFIG_ACPI_EC_DEBUGFS is not set
CONFIG_ACPI_AC=y
CONFIG_ACPI_BATTERY=y
CONFIG_ACPI_BUTTON=y
CONFIG_ACPI_VIDEO=y
CONFIG_ACPI_FAN=y
# CONFIG_ACPI_TAD is not set
CONFIG_ACPI_DOCK=y
CONFIG_ACPI_CPU_FREQ_PSS=y
CONFIG_ACPI_PROCESSOR_CSTATE=y
CONFIG_ACPI_PROCESSOR_IDLE=y
CONFIG_ACPI_CPPC_LIB=y
CONFIG_ACPI_PROCESSOR=y
CONFIG_ACPI_HOTPLUG_CPU=y
# CONFIG_ACPI_PROCESSOR_AGGREGATOR is not set
CONFIG_ACPI_THERMAL=y
CONFIG_ACPI_PLATFORM_PROFILE=y
CONFIG_ARCH_HAS_ACPI_TABLE_UPGRADE=y
CONFIG_ACPI_TABLE_UPGRADE=y
CONFIG_ACPI_DEBUG=y
# CONFIG_ACPI_PCI_SLOT is not set
CONFIG_ACPI_CONTAINER=y
CONFIG_ACPI_HOTPLUG_IOAPIC=y
# CONFIG_ACPI_SBS is not set
# CONFIG_ACPI_HED is not set
# CONFIG_ACPI_REDUCED_HARDWARE_ONLY is not set
CONFIG_ACPI_NHLT=y
# CONFIG_ACPI_NFIT is not set
CONFIG_ACPI_NUMA=y
# CONFIG_ACPI_HMAT is not set
CONFIG_HAVE_ACPI_APEI=y
CONFIG_HAVE_ACPI_APEI_NMI=y
# CONFIG_ACPI_APEI is not set
# CONFIG_ACPI_DPTF is not set
# CONFIG_ACPI_EXTLOG is not set
# CONFIG_ACPI_CONFIGFS is not set
# CONFIG_ACPI_PFRUT is not set
CONFIG_ACPI_PCC=y
# CONFIG_ACPI_FFH is not set
CONFIG_ACPI_MRRM=y
CONFIG_PMIC_OPREGION=y
CONFIG_BXT_WC_PMIC_OPREGION=y
# CONFIG_CHT_WC_PMIC_OPREGION is not set
CONFIG_X86_PM_TIMER=y

#
# CPU Frequency scaling
#
CONFIG_CPU_FREQ=y
CONFIG_CPU_FREQ_GOV_ATTR_SET=y
CONFIG_CPU_FREQ_GOV_COMMON=y
# CONFIG_CPU_FREQ_STAT is not set
# CONFIG_CPU_FREQ_DEFAULT_GOV_PERFORMANCE is not set
# CONFIG_CPU_FREQ_DEFAULT_GOV_POWERSAVE is not set
CONFIG_CPU_FREQ_DEFAULT_GOV_USERSPACE=y
# CONFIG_CPU_FREQ_DEFAULT_GOV_SCHEDUTIL is not set
CONFIG_CPU_FREQ_GOV_PERFORMANCE=y
# CONFIG_CPU_FREQ_GOV_POWERSAVE is not set
CONFIG_CPU_FREQ_GOV_USERSPACE=y
CONFIG_CPU_FREQ_GOV_ONDEMAND=y
# CONFIG_CPU_FREQ_GOV_CONSERVATIVE is not set
CONFIG_CPU_FREQ_GOV_SCHEDUTIL=y

#
# CPU frequency scaling drivers
#
# CONFIG_CPUFREQ_DT is not set
# CONFIG_CPUFREQ_DT_PLATDEV is not set
CONFIG_X86_INTEL_PSTATE=y
# CONFIG_X86_PCC_CPUFREQ is not set
CONFIG_X86_AMD_PSTATE=y
CONFIG_X86_AMD_PSTATE_DEFAULT_MODE=3
# CONFIG_X86_AMD_PSTATE_UT is not set
CONFIG_X86_ACPI_CPUFREQ=y
CONFIG_X86_ACPI_CPUFREQ_CPB=y
# CONFIG_X86_POWERNOW_K8 is not set
# CONFIG_X86_AMD_FREQ_SENSITIVITY is not set
# CONFIG_X86_SPEEDSTEP_CENTRINO is not set
# CONFIG_X86_P4_CLOCKMOD is not set

#
# shared options
#
CONFIG_CPUFREQ_ARCH_CUR_FREQ=y
# end of CPU Frequency scaling

#
# CPU Idle
#
CONFIG_CPU_IDLE=y
# CONFIG_CPU_IDLE_GOV_LADDER is not set
CONFIG_CPU_IDLE_GOV_MENU=y
# CONFIG_CPU_IDLE_GOV_TEO is not set
CONFIG_CPU_IDLE_GOV_HALTPOLL=y
CONFIG_HALTPOLL_CPUIDLE=y
# end of CPU Idle

CONFIG_INTEL_IDLE=y
# end of Power management and ACPI options

#
# Bus options (PCI etc.)
#
CONFIG_PCI_DIRECT=y
CONFIG_PCI_MMCONFIG=y
CONFIG_MMCONF_FAM10H=y
# CONFIG_ISA_BUS is not set
CONFIG_ISA_DMA_API=y
CONFIG_AMD_NB=y
CONFIG_AMD_NODE=y
# end of Bus options (PCI etc.)

#
# Binary Emulations
#
CONFIG_IA32_EMULATION=y
# CONFIG_IA32_EMULATION_DEFAULT_DISABLED is not set
CONFIG_COMPAT_32=y
CONFIG_COMPAT=y
CONFIG_COMPAT_FOR_U64_ALIGNMENT=y
# end of Binary Emulations

CONFIG_VIRTUALIZATION=y
# CONFIG_KVM is not set
CONFIG_X86_REQUIRED_FEATURE_ALWAYS=y
CONFIG_X86_REQUIRED_FEATURE_NOPL=y
CONFIG_X86_REQUIRED_FEATURE_CX8=y
CONFIG_X86_REQUIRED_FEATURE_CMOV=y
CONFIG_X86_REQUIRED_FEATURE_SYSFAST32=y
CONFIG_X86_REQUIRED_FEATURE_CPUID=y
CONFIG_X86_REQUIRED_FEATURE_FPU=y
CONFIG_X86_REQUIRED_FEATURE_PAE=y
CONFIG_X86_REQUIRED_FEATURE_PSE=y
CONFIG_X86_REQUIRED_FEATURE_PGE=y
CONFIG_X86_REQUIRED_FEATURE_MSR=y
CONFIG_X86_REQUIRED_FEATURE_FXSR=y
CONFIG_X86_REQUIRED_FEATURE_XMM=y
CONFIG_X86_REQUIRED_FEATURE_XMM2=y
CONFIG_X86_REQUIRED_FEATURE_LM=y
CONFIG_X86_DISABLED_FEATURE_VME=y
CONFIG_X86_DISABLED_FEATURE_K6_MTRR=y
CONFIG_X86_DISABLED_FEATURE_CYRIX_ARR=y
CONFIG_X86_DISABLED_FEATURE_CENTAUR_MCR=y
CONFIG_X86_DISABLED_FEATURE_LAM=y
CONFIG_X86_DISABLED_FEATURE_ENQCMD=y
CONFIG_X86_DISABLED_FEATURE_SGX=y
CONFIG_X86_DISABLED_FEATURE_XENPV=y
CONFIG_X86_DISABLED_FEATURE_TDX_GUEST=y
CONFIG_X86_DISABLED_FEATURE_USER_SHSTK=y
CONFIG_X86_DISABLED_FEATURE_FRED=y
CONFIG_X86_DISABLED_FEATURE_SEV_SNP=y
CONFIG_AS_WRUSS=y
CONFIG_ARCH_CONFIGURES_CPU_MITIGATIONS=y

#
# General architecture-dependent options
#
CONFIG_HOTPLUG_SMT=y
CONFIG_ARCH_SUPPORTS_SCHED_SMT=y
CONFIG_ARCH_SUPPORTS_SCHED_CLUSTER=y
CONFIG_ARCH_SUPPORTS_SCHED_MC=y
CONFIG_SCHED_SMT=y
CONFIG_SCHED_CLUSTER=y
CONFIG_SCHED_MC=y
CONFIG_HOTPLUG_CORE_SYNC=y
CONFIG_HOTPLUG_CORE_SYNC_DEAD=y
CONFIG_HOTPLUG_CORE_SYNC_FULL=y
CONFIG_HOTPLUG_SPLIT_STARTUP=y
CONFIG_HOTPLUG_PARALLEL=y
CONFIG_GENERIC_IRQ_ENTRY=y
CONFIG_GENERIC_SYSCALL=y
CONFIG_GENERIC_ENTRY=y
# CONFIG_KPROBES is not set
CONFIG_JUMP_LABEL=y
# CONFIG_STATIC_KEYS_SELFTEST is not set
# CONFIG_STATIC_CALL_SELFTEST is not set
CONFIG_UPROBES=y
CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS=y
CONFIG_ARCH_USE_BUILTIN_BSWAP=y
CONFIG_HAVE_IOREMAP_PROT=y
CONFIG_HAVE_KPROBES=y
CONFIG_HAVE_KRETPROBES=y
CONFIG_HAVE_OPTPROBES=y
CONFIG_HAVE_KPROBES_ON_FTRACE=y
CONFIG_ARCH_CORRECT_STACKTRACE_ON_KRETPROBE=y
CONFIG_HAVE_FUNCTION_ERROR_INJECTION=y
CONFIG_HAVE_NMI=y
CONFIG_TRACE_IRQFLAGS_SUPPORT=y
CONFIG_TRACE_IRQFLAGS_NMI_SUPPORT=y
CONFIG_HAVE_ARCH_TRACEHOOK=y
CONFIG_HAVE_DMA_CONTIGUOUS=y
CONFIG_GENERIC_SMP_IDLE_THREAD=y
CONFIG_ARCH_HAS_FORTIFY_SOURCE=y
CONFIG_ARCH_HAS_SET_MEMORY=y
CONFIG_ARCH_HAS_SET_DIRECT_MAP=y
CONFIG_ARCH_HAS_CPU_FINALIZE_INIT=y
CONFIG_ARCH_HAS_CPU_PASID=y
CONFIG_HAVE_ARCH_THREAD_STRUCT_WHITELIST=y
CONFIG_ARCH_WANTS_DYNAMIC_TASK_STRUCT=y
CONFIG_ARCH_WANTS_NO_INSTR=y
CONFIG_HAVE_ASM_MODVERSIONS=y
CONFIG_HAVE_REGS_AND_STACK_ACCESS_API=y
CONFIG_HAVE_RSEQ=y
CONFIG_HAVE_RUST=y
CONFIG_HAVE_FUNCTION_ARG_ACCESS_API=y
CONFIG_HAVE_HW_BREAKPOINT=y
CONFIG_HAVE_MIXED_BREAKPOINTS_REGS=y
CONFIG_HAVE_USER_RETURN_NOTIFIER=y
CONFIG_HAVE_PERF_EVENTS_NMI=y
CONFIG_HAVE_HARDLOCKUP_DETECTOR_PERF=y
CONFIG_UNWIND_USER=y
CONFIG_HAVE_UNWIND_USER_FP=y
CONFIG_HAVE_PERF_REGS=y
CONFIG_HAVE_PERF_USER_STACK_DUMP=y
CONFIG_HAVE_ARCH_JUMP_LABEL=y
CONFIG_HAVE_ARCH_JUMP_LABEL_RELATIVE=y
CONFIG_MMU_GATHER_TABLE_FREE=y
CONFIG_MMU_GATHER_RCU_TABLE_FREE=y
CONFIG_MMU_GATHER_MERGE_VMAS=y
CONFIG_ARCH_WANT_IRQS_OFF_ACTIVATE_MM=y
CONFIG_MMU_LAZY_TLB_REFCOUNT=y
CONFIG_ARCH_HAVE_NMI_SAFE_CMPXCHG=y
CONFIG_ARCH_HAVE_EXTRA_ELF_NOTES=y
CONFIG_ARCH_HAS_NMI_SAFE_THIS_CPU_OPS=y
CONFIG_HAVE_ALIGNED_STRUCT_PAGE=y
CONFIG_HAVE_CMPXCHG_LOCAL=y
CONFIG_HAVE_CMPXCHG_DOUBLE=y
CONFIG_ARCH_WANT_COMPAT_IPC_PARSE_VERSION=y
CONFIG_ARCH_WANT_OLD_COMPAT_IPC=y
CONFIG_HAVE_ARCH_SECCOMP=y
CONFIG_HAVE_ARCH_SECCOMP_FILTER=y
CONFIG_SECCOMP=y
CONFIG_SECCOMP_FILTER=y
# CONFIG_SECCOMP_CACHE_DEBUG is not set
CONFIG_HAVE_ARCH_KSTACK_ERASE=y
CONFIG_HAVE_STACKPROTECTOR=y
CONFIG_STACKPROTECTOR=y
CONFIG_STACKPROTECTOR_STRONG=y
CONFIG_ARCH_SUPPORTS_LTO_CLANG=y
CONFIG_ARCH_SUPPORTS_LTO_CLANG_THIN=y
CONFIG_HAS_LTO_CLANG=y
CONFIG_LTO_NONE=y
# CONFIG_LTO_CLANG_FULL is not set
# CONFIG_LTO_CLANG_THIN is not set
CONFIG_ARCH_SUPPORTS_AUTOFDO_CLANG=y
CONFIG_AUTOFDO_CLANG=y
CONFIG_ARCH_SUPPORTS_PROPELLER_CLANG=y
CONFIG_PROPELLER_CLANG=y
CONFIG_ARCH_SUPPORTS_CFI=y
# CONFIG_CFI is not set
CONFIG_HAVE_CFI_ICALL_NORMALIZE_INTEGERS=y
CONFIG_HAVE_CFI_ICALL_NORMALIZE_INTEGERS_RUSTC=y
CONFIG_HAVE_ARCH_WITHIN_STACK_FRAMES=y
CONFIG_HAVE_CONTEXT_TRACKING_USER=y
CONFIG_HAVE_CONTEXT_TRACKING_USER_OFFSTACK=y
CONFIG_HAVE_VIRT_CPU_ACCOUNTING_GEN=y
CONFIG_HAVE_IRQ_TIME_ACCOUNTING=y
CONFIG_HAVE_PV_STEAL_CLOCK_GEN=y
CONFIG_HAVE_MOVE_PUD=y
CONFIG_HAVE_MOVE_PMD=y
CONFIG_HAVE_ARCH_TRANSPARENT_HUGEPAGE=y
CONFIG_HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD=y
CONFIG_HAVE_ARCH_HUGE_VMAP=y
CONFIG_HAVE_ARCH_HUGE_VMALLOC=y
CONFIG_ARCH_WANT_HUGE_PMD_SHARE=y
CONFIG_HAVE_ARCH_SOFT_DIRTY=y
CONFIG_HAVE_MOD_ARCH_SPECIFIC=y
CONFIG_MODULES_USE_ELF_RELA=y
CONFIG_ARCH_HAS_EXECMEM_ROX=y
CONFIG_HAVE_IRQ_EXIT_ON_IRQ_STACK=y
CONFIG_HAVE_SOFTIRQ_ON_OWN_STACK=y
CONFIG_SOFTIRQ_ON_OWN_STACK=y
CONFIG_ARCH_HAS_ELF_RANDOMIZE=y
CONFIG_HAVE_ARCH_MMAP_RND_BITS=y
CONFIG_HAVE_EXIT_THREAD=y
CONFIG_ARCH_MMAP_RND_BITS=28
CONFIG_HAVE_ARCH_MMAP_RND_COMPAT_BITS=y
CONFIG_ARCH_MMAP_RND_COMPAT_BITS=8
CONFIG_HAVE_ARCH_COMPAT_MMAP_BASES=y
CONFIG_HAVE_PAGE_SIZE_4KB=y
CONFIG_PAGE_SIZE_4KB=y
CONFIG_PAGE_SIZE_LESS_THAN_64KB=y
CONFIG_PAGE_SIZE_LESS_THAN_256KB=y
CONFIG_PAGE_SHIFT=12
CONFIG_HAVE_OBJTOOL=y
CONFIG_HAVE_JUMP_LABEL_HACK=y
CONFIG_HAVE_NOINSTR_HACK=y
CONFIG_HAVE_NOINSTR_VALIDATION=y
CONFIG_HAVE_UACCESS_VALIDATION=y
CONFIG_HAVE_STACK_VALIDATION=y
CONFIG_HAVE_RELIABLE_STACKTRACE=y
CONFIG_OLD_SIGSUSPEND3=y
CONFIG_COMPAT_OLD_SIGACTION=y
CONFIG_COMPAT_32BIT_TIME=y
CONFIG_ARCH_SUPPORTS_RT=y
CONFIG_HAVE_ARCH_VMAP_STACK=y
CONFIG_VMAP_STACK=y
CONFIG_HAVE_ARCH_RANDOMIZE_KSTACK_OFFSET=y
CONFIG_RANDOMIZE_KSTACK_OFFSET=y
# CONFIG_RANDOMIZE_KSTACK_OFFSET_DEFAULT is not set
CONFIG_ARCH_HAS_STRICT_KERNEL_RWX=y
CONFIG_STRICT_KERNEL_RWX=y
CONFIG_ARCH_HAS_STRICT_MODULE_RWX=y
CONFIG_STRICT_MODULE_RWX=y
CONFIG_HAVE_ARCH_PREL32_RELOCATIONS=y
# CONFIG_LOCK_EVENT_COUNTS is not set
CONFIG_ARCH_HAS_MEM_ENCRYPT=y
CONFIG_HAVE_STATIC_CALL=y
CONFIG_HAVE_STATIC_CALL_INLINE=y
CONFIG_HAVE_PREEMPT_DYNAMIC=y
CONFIG_HAVE_PREEMPT_DYNAMIC_CALL=y
CONFIG_ARCH_WANT_LD_ORPHAN_WARN=y
CONFIG_ARCH_SUPPORTS_DEBUG_PAGEALLOC=y
CONFIG_ARCH_SUPPORTS_PAGE_TABLE_CHECK=y
CONFIG_ARCH_HAS_ELFCORE_COMPAT=y
CONFIG_ARCH_HAS_PARANOID_L1D_FLUSH=y
CONFIG_DYNAMIC_SIGFRAME=y
CONFIG_ARCH_HAS_HW_PTE_YOUNG=y
CONFIG_ARCH_HAS_NONLEAF_PMD_YOUNG=y
CONFIG_ARCH_HAS_KERNEL_FPU_SUPPORT=y
CONFIG_HAVE_GENERIC_TIF_BITS=y

#
# GCOV-based kernel profiling
#
# CONFIG_GCOV_KERNEL is not set
CONFIG_ARCH_HAS_GCOV_PROFILE_ALL=y
# end of GCOV-based kernel profiling

CONFIG_HAVE_GCC_PLUGINS=y
CONFIG_FUNCTION_ALIGNMENT_4B=y
CONFIG_FUNCTION_ALIGNMENT_16B=y
CONFIG_FUNCTION_ALIGNMENT=16
CONFIG_CC_HAS_SANE_FUNCTION_ALIGNMENT=y
CONFIG_ARCH_HAS_CPU_ATTACK_VECTORS=y
# end of General architecture-dependent options

CONFIG_RT_MUTEXES=y
CONFIG_MODULES=y
# CONFIG_MODULE_DEBUG is not set
# CONFIG_MODULE_FORCE_LOAD is not set
CONFIG_MODULE_UNLOAD=y
CONFIG_MODULE_FORCE_UNLOAD=y
# CONFIG_MODULE_UNLOAD_TAINT_TRACKING is not set
CONFIG_MODVERSIONS=y
# CONFIG_GENKSYMS is not set
CONFIG_GENDWARFKSYMS=y
CONFIG_ASM_MODVERSIONS=y
# CONFIG_EXTENDED_MODVERSIONS is not set
# CONFIG_BASIC_MODVERSIONS is not set
# CONFIG_MODULE_SRCVERSION_ALL is not set
# CONFIG_MODULE_SIG is not set
# CONFIG_MODULE_COMPRESS is not set
# CONFIG_MODULE_ALLOW_MISSING_NAMESPACE_IMPORTS is not set
CONFIG_MODPROBE_PATH="/sbin/modprobe"
# CONFIG_TRIM_UNUSED_KSYMS is not set
CONFIG_MODULES_TREE_LOOKUP=y
CONFIG_BLOCK=y
CONFIG_BLOCK_LEGACY_AUTOLOAD=y
CONFIG_BLK_RQ_ALLOC_TIME=y
CONFIG_BLK_DEV_BSG_COMMON=y
CONFIG_BLK_DEV_BSGLIB=y
# CONFIG_BLK_DEV_INTEGRITY is not set
# CONFIG_BLK_DEV_WRITE_MOUNTED is not set
# CONFIG_BLK_DEV_ZONED is not set
# CONFIG_BLK_DEV_THROTTLING is not set
# CONFIG_BLK_WBT is not set
CONFIG_BLK_CGROUP_IOLATENCY=y
CONFIG_BLK_CGROUP_IOCOST=y
CONFIG_BLK_CGROUP_IOPRIO=y
CONFIG_BLK_DEBUG_FS=y
# CONFIG_BLK_SED_OPAL is not set
# CONFIG_BLK_INLINE_ENCRYPTION is not set

#
# Partition Types
#
# CONFIG_PARTITION_ADVANCED is not set
CONFIG_MSDOS_PARTITION=y
CONFIG_EFI_PARTITION=y
# end of Partition Types

CONFIG_BLK_PM=y
CONFIG_BLOCK_HOLDER_DEPRECATED=y
CONFIG_BLK_MQ_STACKING=y

#
# IO Schedulers
#
CONFIG_MQ_IOSCHED_DEADLINE=y
CONFIG_MQ_IOSCHED_KYBER=y
# CONFIG_IOSCHED_BFQ is not set
# end of IO Schedulers

CONFIG_PADATA=y
CONFIG_ASN1=y
CONFIG_UNINLINE_SPIN_UNLOCK=y
CONFIG_ARCH_SUPPORTS_ATOMIC_RMW=y
CONFIG_MUTEX_SPIN_ON_OWNER=y
CONFIG_RWSEM_SPIN_ON_OWNER=y
CONFIG_LOCK_SPIN_ON_OWNER=y
CONFIG_ARCH_USE_QUEUED_SPINLOCKS=y
CONFIG_QUEUED_SPINLOCKS=y
CONFIG_ARCH_USE_QUEUED_RWLOCKS=y
CONFIG_QUEUED_RWLOCKS=y
CONFIG_ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE=y
CONFIG_ARCH_HAS_SYNC_CORE_BEFORE_USERMODE=y
CONFIG_ARCH_HAS_SYSCALL_WRAPPER=y
CONFIG_FREEZER=y

#
# Executable file formats
#
CONFIG_BINFMT_ELF=y
CONFIG_COMPAT_BINFMT_ELF=y
CONFIG_ELFCORE=y
CONFIG_CORE_DUMP_DEFAULT_ELF_HEADERS=y
CONFIG_BINFMT_SCRIPT=y
CONFIG_BINFMT_MISC=y
CONFIG_COREDUMP=y
# end of Executable file formats

#
# Memory Management options
#
CONFIG_SWAP=y
# CONFIG_ZSWAP is not set

#
# Slab allocator options
#
CONFIG_SLUB=y
CONFIG_KVFREE_RCU_BATCHED=y
# CONFIG_SLUB_TINY is not set
CONFIG_SLAB_MERGE_DEFAULT=y
# CONFIG_SLAB_FREELIST_RANDOM is not set
# CONFIG_SLAB_FREELIST_HARDENED is not set
# CONFIG_SLAB_BUCKETS is not set
# CONFIG_SLUB_STATS is not set
# CONFIG_RANDOM_KMALLOC_CACHES is not set
# end of Slab allocator options

# CONFIG_SHUFFLE_PAGE_ALLOCATOR is not set
# CONFIG_COMPAT_BRK is not set
CONFIG_SPARSEMEM=y
CONFIG_SPARSEMEM_EXTREME=y
CONFIG_SPARSEMEM_VMEMMAP_ENABLE=y
CONFIG_SPARSEMEM_VMEMMAP=y
CONFIG_SPARSEMEM_VMEMMAP_PREINIT=y
CONFIG_ARCH_WANT_OPTIMIZE_DAX_VMEMMAP=y
CONFIG_ARCH_WANT_OPTIMIZE_HUGETLB_VMEMMAP=y
CONFIG_ARCH_WANT_HUGETLB_VMEMMAP_PREINIT=y
CONFIG_HAVE_GUP_FAST=y
CONFIG_EXCLUSIVE_SYSTEM_RAM=y
CONFIG_ARCH_ENABLE_MEMORY_HOTPLUG=y
# CONFIG_MEMORY_HOTPLUG is not set
CONFIG_ARCH_MHP_MEMMAP_ON_MEMORY_ENABLE=y
CONFIG_SPLIT_PTE_PTLOCKS=y
CONFIG_ARCH_ENABLE_SPLIT_PMD_PTLOCK=y
CONFIG_SPLIT_PMD_PTLOCKS=y
CONFIG_COMPACTION=y
CONFIG_COMPACT_UNEVICTABLE_DEFAULT=1
# CONFIG_PAGE_REPORTING is not set
CONFIG_MIGRATION=y
CONFIG_ARCH_ENABLE_HUGEPAGE_MIGRATION=y
CONFIG_PCP_BATCH_SCALE_MAX=5
CONFIG_PHYS_ADDR_T_64BIT=y
CONFIG_MMU_NOTIFIER=y
# CONFIG_KSM is not set
CONFIG_DEFAULT_MMAP_MIN_ADDR=4096
CONFIG_ARCH_SUPPORTS_MEMORY_FAILURE=y
# CONFIG_MEMORY_FAILURE is not set
CONFIG_ARCH_WANT_GENERAL_HUGETLB=y
CONFIG_ARCH_WANTS_THP_SWAP=y
# CONFIG_TRANSPARENT_HUGEPAGE is not set
CONFIG_PAGE_MAPCOUNT=y
CONFIG_PGTABLE_HAS_HUGE_LEAVES=y
CONFIG_HAVE_GIGANTIC_FOLIOS=y
CONFIG_ASYNC_KERNEL_PGTABLE_FREE=y
CONFIG_NEED_PER_CPU_EMBED_FIRST_CHUNK=y
CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK=y
CONFIG_USE_PERCPU_NUMA_NODE_ID=y
CONFIG_HAVE_SETUP_PER_CPU_AREA=y
# CONFIG_CMA is not set
CONFIG_PAGE_BLOCK_MAX_ORDER=10
CONFIG_GENERIC_EARLY_IOREMAP=y
# CONFIG_DEFERRED_STRUCT_PAGE_INIT is not set
# CONFIG_IDLE_PAGE_TRACKING is not set
CONFIG_ARCH_HAS_CACHE_LINE_SIZE=y
CONFIG_ARCH_HAS_CURRENT_STACK_POINTER=y
CONFIG_ARCH_HAS_ZONE_DMA_SET=y
CONFIG_ZONE_DMA=y
CONFIG_ZONE_DMA32=y
CONFIG_HMM_MIRROR=y
CONFIG_VMAP_PFN=y
CONFIG_ARCH_USES_HIGH_VMA_FLAGS=y
CONFIG_ARCH_HAS_PKEYS=y
CONFIG_ARCH_USES_PG_ARCH_2=y
CONFIG_VM_EVENT_COUNTERS=y
# CONFIG_PERCPU_STATS is not set
# CONFIG_GUP_TEST is not set
# CONFIG_DMAPOOL_TEST is not set
CONFIG_ARCH_HAS_PTE_SPECIAL=y
CONFIG_MEMFD_CREATE=y
CONFIG_SECRETMEM=y
# CONFIG_ANON_VMA_NAME is not set
# CONFIG_USERFAULTFD is not set
CONFIG_LRU_GEN=y
CONFIG_LRU_GEN_ENABLED=y
# CONFIG_LRU_GEN_STATS is not set
CONFIG_LRU_GEN_WALKS_MMU=y
CONFIG_ARCH_SUPPORTS_PER_VMA_LOCK=y
CONFIG_PER_VMA_LOCK=y
CONFIG_LOCK_MM_AND_FIND_VMA=y
CONFIG_IOMMU_MM_DATA=y
CONFIG_EXECMEM=y
CONFIG_NUMA_MEMBLKS=y
# CONFIG_NUMA_EMU is not set
CONFIG_PT_RECLAIM=y

#
# Data Access Monitoring
#
# CONFIG_DAMON is not set
# end of Data Access Monitoring
# end of Memory Management options

CONFIG_NET=y
CONFIG_WANT_COMPAT_NETLINK_MESSAGES=y
CONFIG_COMPAT_NETLINK_MESSAGES=y
CONFIG_NET_INGRESS=y
CONFIG_NET_EGRESS=y
CONFIG_NET_XGRESS=y
CONFIG_NET_REDIRECT=y
CONFIG_SKB_DECRYPTED=y
CONFIG_SKB_EXTENSIONS=y
CONFIG_NET_DEVMEM=y
CONFIG_NET_SHAPER=y
CONFIG_NET_CRC32C=y

#
# Networking options
#
CONFIG_PACKET=y
CONFIG_PACKET_DIAG=y
CONFIG_INET_PSP=y
CONFIG_UNIX=y
CONFIG_AF_UNIX_OOB=y
CONFIG_UNIX_DIAG=y
CONFIG_TLS=y
CONFIG_TLS_DEVICE=y
CONFIG_TLS_TOE=y
CONFIG_XFRM=y
CONFIG_XFRM_OFFLOAD=y
CONFIG_XFRM_ALGO=y
CONFIG_XFRM_USER=y
CONFIG_XFRM_USER_COMPAT=y
CONFIG_XFRM_INTERFACE=y
CONFIG_XFRM_SUB_POLICY=y
CONFIG_XFRM_MIGRATE=y
CONFIG_XFRM_STATISTICS=y
CONFIG_XFRM_AH=y
CONFIG_XFRM_ESP=y
CONFIG_XFRM_IPCOMP=y
CONFIG_NET_KEY=y
CONFIG_NET_KEY_MIGRATE=y
# CONFIG_XFRM_IPTFS is not set
CONFIG_XFRM_ESPINTCP=y
CONFIG_SMC=y
CONFIG_SMC_DIAG=y
# CONFIG_SMC_HS_CTRL_BPF is not set
CONFIG_DIBS=y
CONFIG_DIBS_LO=y
CONFIG_XDP_SOCKETS=y
CONFIG_XDP_SOCKETS_DIAG=y
CONFIG_NET_HANDSHAKE=y
CONFIG_INET=y
CONFIG_IP_MULTICAST=y
CONFIG_IP_ADVANCED_ROUTER=y
CONFIG_IP_FIB_TRIE_STATS=y
CONFIG_IP_MULTIPLE_TABLES=y
CONFIG_IP_ROUTE_MULTIPATH=y
CONFIG_IP_ROUTE_VERBOSE=y
CONFIG_IP_ROUTE_CLASSID=y
CONFIG_IP_PNP=y
CONFIG_IP_PNP_DHCP=y
CONFIG_IP_PNP_BOOTP=y
CONFIG_IP_PNP_RARP=y
CONFIG_NET_IPIP=y
CONFIG_NET_IPGRE_DEMUX=y
CONFIG_NET_IP_TUNNEL=y
CONFIG_NET_IPGRE=y
CONFIG_NET_IPGRE_BROADCAST=y
CONFIG_IP_MROUTE_COMMON=y
CONFIG_IP_MROUTE=y
CONFIG_IP_MROUTE_MULTIPLE_TABLES=y
CONFIG_IP_PIMSM_V1=y
CONFIG_IP_PIMSM_V2=y
CONFIG_SYN_COOKIES=y
CONFIG_NET_IPVTI=y
CONFIG_NET_UDP_TUNNEL=y
CONFIG_NET_FOU=y
CONFIG_NET_FOU_IP_TUNNELS=y
CONFIG_INET_AH=y
CONFIG_INET_ESP=y
CONFIG_INET_ESP_OFFLOAD=y
CONFIG_INET_ESPINTCP=y
CONFIG_INET_IPCOMP=y
CONFIG_INET_TABLE_PERTURB_ORDER=16
CONFIG_INET_XFRM_TUNNEL=y
CONFIG_INET_TUNNEL=y
CONFIG_INET_DIAG=y
CONFIG_INET_TCP_DIAG=y
CONFIG_INET_UDP_DIAG=y
CONFIG_INET_RAW_DIAG=y
CONFIG_INET_DIAG_DESTROY=y
CONFIG_TCP_CONG_ADVANCED=y
CONFIG_TCP_CONG_BIC=y
CONFIG_TCP_CONG_CUBIC=y
CONFIG_TCP_CONG_WESTWOOD=y
CONFIG_TCP_CONG_HTCP=y
CONFIG_TCP_CONG_HSTCP=y
CONFIG_TCP_CONG_HYBLA=y
CONFIG_TCP_CONG_VEGAS=y
CONFIG_TCP_CONG_NV=y
CONFIG_TCP_CONG_SCALABLE=y
CONFIG_TCP_CONG_LP=y
CONFIG_TCP_CONG_VENO=y
CONFIG_TCP_CONG_YEAH=y
CONFIG_TCP_CONG_ILLINOIS=y
CONFIG_TCP_CONG_DCTCP=y
CONFIG_TCP_CONG_CDG=y
CONFIG_TCP_CONG_BBR=y
# CONFIG_DEFAULT_BIC is not set
CONFIG_DEFAULT_CUBIC=y
# CONFIG_DEFAULT_HTCP is not set
# CONFIG_DEFAULT_HYBLA is not set
# CONFIG_DEFAULT_VEGAS is not set
# CONFIG_DEFAULT_VENO is not set
# CONFIG_DEFAULT_WESTWOOD is not set
# CONFIG_DEFAULT_DCTCP is not set
# CONFIG_DEFAULT_CDG is not set
# CONFIG_DEFAULT_BBR is not set
# CONFIG_DEFAULT_RENO is not set
CONFIG_DEFAULT_TCP_CONG="cubic"
# CONFIG_TCP_AO is not set
CONFIG_TCP_MD5SIG=y
CONFIG_IPV6=y
CONFIG_IPV6_ROUTER_PREF=y
CONFIG_IPV6_ROUTE_INFO=y
CONFIG_IPV6_OPTIMISTIC_DAD=y
CONFIG_INET6_AH=y
CONFIG_INET6_ESP=y
CONFIG_INET6_ESP_OFFLOAD=y
CONFIG_INET6_ESPINTCP=y
CONFIG_INET6_IPCOMP=y
CONFIG_IPV6_MIP6=y
CONFIG_IPV6_ILA=y
CONFIG_INET6_XFRM_TUNNEL=y
CONFIG_INET6_TUNNEL=y
CONFIG_IPV6_VTI=y
CONFIG_IPV6_SIT=y
CONFIG_IPV6_SIT_6RD=y
CONFIG_IPV6_NDISC_NODETYPE=y
CONFIG_IPV6_TUNNEL=y
CONFIG_IPV6_GRE=y
CONFIG_IPV6_FOU=y
CONFIG_IPV6_FOU_TUNNEL=y
CONFIG_IPV6_MULTIPLE_TABLES=y
CONFIG_IPV6_SUBTREES=y
CONFIG_IPV6_MROUTE=y
CONFIG_IPV6_MROUTE_MULTIPLE_TABLES=y
CONFIG_IPV6_PIMSM_V2=y
CONFIG_IPV6_SEG6_LWTUNNEL=y
CONFIG_IPV6_SEG6_HMAC=y
CONFIG_IPV6_SEG6_BPF=y
CONFIG_IPV6_RPL_LWTUNNEL=y
# CONFIG_IPV6_IOAM6_LWTUNNEL is not set
CONFIG_NETLABEL=y
CONFIG_MPTCP=y
CONFIG_INET_MPTCP_DIAG=y
CONFIG_MPTCP_IPV6=y
CONFIG_NETWORK_SECMARK=y
CONFIG_NET_PTP_CLASSIFY=y
# CONFIG_NETWORK_PHY_TIMESTAMPING is not set
CONFIG_NETFILTER=y
CONFIG_NETFILTER_ADVANCED=y
CONFIG_BRIDGE_NETFILTER=y

#
# Core Netfilter Configuration
#
CONFIG_NETFILTER_INGRESS=y
CONFIG_NETFILTER_EGRESS=y
CONFIG_NETFILTER_SKIP_EGRESS=y
CONFIG_NETFILTER_NETLINK=y
CONFIG_NETFILTER_FAMILY_BRIDGE=y
CONFIG_NETFILTER_FAMILY_ARP=y
CONFIG_NETFILTER_BPF_LINK=y
# CONFIG_NETFILTER_NETLINK_HOOK is not set
CONFIG_NETFILTER_NETLINK_ACCT=y
CONFIG_NETFILTER_NETLINK_QUEUE=y
CONFIG_NETFILTER_NETLINK_LOG=y
CONFIG_NETFILTER_NETLINK_OSF=y
CONFIG_NF_CONNTRACK=y
CONFIG_NF_LOG_SYSLOG=y
CONFIG_NETFILTER_CONNCOUNT=y
CONFIG_NF_CONNTRACK_MARK=y
CONFIG_NF_CONNTRACK_SECMARK=y
CONFIG_NF_CONNTRACK_ZONES=y
# CONFIG_NF_CONNTRACK_PROCFS is not set
CONFIG_NF_CONNTRACK_EVENTS=y
CONFIG_NF_CONNTRACK_TIMEOUT=y
CONFIG_NF_CONNTRACK_TIMESTAMP=y
CONFIG_NF_CONNTRACK_LABELS=y
CONFIG_NF_CONNTRACK_OVS=y
CONFIG_NF_CT_PROTO_GRE=y
CONFIG_NF_CT_PROTO_SCTP=y
CONFIG_NF_CT_PROTO_UDPLITE=y
CONFIG_NF_CONNTRACK_AMANDA=y
CONFIG_NF_CONNTRACK_FTP=y
CONFIG_NF_CONNTRACK_H323=y
CONFIG_NF_CONNTRACK_IRC=y
CONFIG_NF_CONNTRACK_BROADCAST=y
CONFIG_NF_CONNTRACK_NETBIOS_NS=y
CONFIG_NF_CONNTRACK_SNMP=y
CONFIG_NF_CONNTRACK_PPTP=y
CONFIG_NF_CONNTRACK_SANE=y
CONFIG_NF_CONNTRACK_SIP=y
CONFIG_NF_CONNTRACK_TFTP=y
CONFIG_NF_CT_NETLINK=y
CONFIG_NF_CT_NETLINK_TIMEOUT=y
CONFIG_NF_CT_NETLINK_HELPER=y
CONFIG_NETFILTER_NETLINK_GLUE_CT=y
CONFIG_NF_NAT=y
CONFIG_NF_NAT_AMANDA=y
CONFIG_NF_NAT_FTP=y
CONFIG_NF_NAT_IRC=y
CONFIG_NF_NAT_SIP=y
CONFIG_NF_NAT_TFTP=y
CONFIG_NF_NAT_REDIRECT=y
CONFIG_NF_NAT_MASQUERADE=y
CONFIG_NF_NAT_OVS=y
CONFIG_NETFILTER_SYNPROXY=y
CONFIG_NF_TABLES=y
CONFIG_NF_TABLES_INET=y
CONFIG_NF_TABLES_NETDEV=y
CONFIG_NFT_NUMGEN=y
CONFIG_NFT_CT=y
CONFIG_NFT_EXTHDR_DCCP=y
CONFIG_NFT_FLOW_OFFLOAD=y
CONFIG_NFT_CONNLIMIT=y
CONFIG_NFT_LOG=y
CONFIG_NFT_LIMIT=y
CONFIG_NFT_MASQ=y
CONFIG_NFT_REDIR=y
CONFIG_NFT_NAT=y
CONFIG_NFT_TUNNEL=y
CONFIG_NFT_QUEUE=y
CONFIG_NFT_QUOTA=y
CONFIG_NFT_REJECT=y
CONFIG_NFT_REJECT_INET=y
CONFIG_NFT_COMPAT=y
CONFIG_NFT_HASH=y
CONFIG_NFT_FIB=y
CONFIG_NFT_FIB_INET=y
CONFIG_NFT_XFRM=y
CONFIG_NFT_SOCKET=y
CONFIG_NFT_OSF=y
CONFIG_NFT_TPROXY=y
CONFIG_NFT_SYNPROXY=y
CONFIG_NF_DUP_NETDEV=y
CONFIG_NFT_DUP_NETDEV=y
CONFIG_NFT_FWD_NETDEV=y
CONFIG_NFT_FIB_NETDEV=y
CONFIG_NFT_REJECT_NETDEV=y
CONFIG_NF_FLOW_TABLE_INET=y
CONFIG_NF_FLOW_TABLE=y
# CONFIG_NF_FLOW_TABLE_PROCFS is not set
CONFIG_NETFILTER_XTABLES=y
CONFIG_NETFILTER_XTABLES_COMPAT=y
CONFIG_NETFILTER_XTABLES_LEGACY=y

#
# Xtables combined modules
#
CONFIG_NETFILTER_XT_MARK=y
CONFIG_NETFILTER_XT_CONNMARK=y
CONFIG_NETFILTER_XT_SET=y

#
# Xtables targets
#
CONFIG_NETFILTER_XT_TARGET_AUDIT=y
CONFIG_NETFILTER_XT_TARGET_CHECKSUM=y
CONFIG_NETFILTER_XT_TARGET_CLASSIFY=y
CONFIG_NETFILTER_XT_TARGET_CONNMARK=y
CONFIG_NETFILTER_XT_TARGET_CONNSECMARK=y
CONFIG_NETFILTER_XT_TARGET_CT=y
CONFIG_NETFILTER_XT_TARGET_DSCP=y
CONFIG_NETFILTER_XT_TARGET_HL=y
CONFIG_NETFILTER_XT_TARGET_HMARK=y
CONFIG_NETFILTER_XT_TARGET_IDLETIMER=y
CONFIG_NETFILTER_XT_TARGET_LED=y
CONFIG_NETFILTER_XT_TARGET_LOG=y
CONFIG_NETFILTER_XT_TARGET_MARK=y
CONFIG_NETFILTER_XT_NAT=y
CONFIG_NETFILTER_XT_TARGET_NETMAP=y
CONFIG_NETFILTER_XT_TARGET_NFLOG=y
CONFIG_NETFILTER_XT_TARGET_NFQUEUE=y
CONFIG_NETFILTER_XT_TARGET_NOTRACK=y
CONFIG_NETFILTER_XT_TARGET_RATEEST=y
CONFIG_NETFILTER_XT_TARGET_REDIRECT=y
CONFIG_NETFILTER_XT_TARGET_MASQUERADE=y
CONFIG_NETFILTER_XT_TARGET_TEE=y
CONFIG_NETFILTER_XT_TARGET_TPROXY=y
CONFIG_NETFILTER_XT_TARGET_TRACE=y
CONFIG_NETFILTER_XT_TARGET_SECMARK=y
CONFIG_NETFILTER_XT_TARGET_TCPMSS=y
CONFIG_NETFILTER_XT_TARGET_TCPOPTSTRIP=y

#
# Xtables matches
#
CONFIG_NETFILTER_XT_MATCH_ADDRTYPE=y
CONFIG_NETFILTER_XT_MATCH_BPF=y
CONFIG_NETFILTER_XT_MATCH_CGROUP=y
CONFIG_NETFILTER_XT_MATCH_CLUSTER=y
CONFIG_NETFILTER_XT_MATCH_COMMENT=y
CONFIG_NETFILTER_XT_MATCH_CONNBYTES=y
CONFIG_NETFILTER_XT_MATCH_CONNLABEL=y
CONFIG_NETFILTER_XT_MATCH_CONNLIMIT=y
CONFIG_NETFILTER_XT_MATCH_CONNMARK=y
CONFIG_NETFILTER_XT_MATCH_CONNTRACK=y
CONFIG_NETFILTER_XT_MATCH_CPU=y
CONFIG_NETFILTER_XT_MATCH_DCCP=y
CONFIG_NETFILTER_XT_MATCH_DEVGROUP=y
CONFIG_NETFILTER_XT_MATCH_DSCP=y
CONFIG_NETFILTER_XT_MATCH_ECN=y
CONFIG_NETFILTER_XT_MATCH_ESP=y
CONFIG_NETFILTER_XT_MATCH_HASHLIMIT=y
CONFIG_NETFILTER_XT_MATCH_HELPER=y
CONFIG_NETFILTER_XT_MATCH_HL=y
CONFIG_NETFILTER_XT_MATCH_IPCOMP=y
CONFIG_NETFILTER_XT_MATCH_IPRANGE=y
CONFIG_NETFILTER_XT_MATCH_IPVS=y
CONFIG_NETFILTER_XT_MATCH_L2TP=y
CONFIG_NETFILTER_XT_MATCH_LENGTH=y
CONFIG_NETFILTER_XT_MATCH_LIMIT=y
CONFIG_NETFILTER_XT_MATCH_MAC=y
CONFIG_NETFILTER_XT_MATCH_MARK=y
CONFIG_NETFILTER_XT_MATCH_MULTIPORT=y
CONFIG_NETFILTER_XT_MATCH_NFACCT=y
CONFIG_NETFILTER_XT_MATCH_OSF=y
CONFIG_NETFILTER_XT_MATCH_OWNER=y
CONFIG_NETFILTER_XT_MATCH_POLICY=y
CONFIG_NETFILTER_XT_MATCH_PHYSDEV=y
CONFIG_NETFILTER_XT_MATCH_PKTTYPE=y
CONFIG_NETFILTER_XT_MATCH_QUOTA=y
CONFIG_NETFILTER_XT_MATCH_RATEEST=y
CONFIG_NETFILTER_XT_MATCH_REALM=y
CONFIG_NETFILTER_XT_MATCH_RECENT=y
CONFIG_NETFILTER_XT_MATCH_SCTP=y
CONFIG_NETFILTER_XT_MATCH_SOCKET=y
CONFIG_NETFILTER_XT_MATCH_STATE=y
CONFIG_NETFILTER_XT_MATCH_STATISTIC=y
CONFIG_NETFILTER_XT_MATCH_STRING=y
CONFIG_NETFILTER_XT_MATCH_TCPMSS=y
CONFIG_NETFILTER_XT_MATCH_TIME=y
CONFIG_NETFILTER_XT_MATCH_U32=y
# end of Core Netfilter Configuration

CONFIG_IP_SET=y
CONFIG_IP_SET_MAX=256
CONFIG_IP_SET_BITMAP_IP=y
CONFIG_IP_SET_BITMAP_IPMAC=y
CONFIG_IP_SET_BITMAP_PORT=y
CONFIG_IP_SET_HASH_IP=y
CONFIG_IP_SET_HASH_IPMARK=y
CONFIG_IP_SET_HASH_IPPORT=y
CONFIG_IP_SET_HASH_IPPORTIP=y
CONFIG_IP_SET_HASH_IPPORTNET=y
CONFIG_IP_SET_HASH_IPMAC=y
CONFIG_IP_SET_HASH_MAC=y
CONFIG_IP_SET_HASH_NETPORTNET=y
CONFIG_IP_SET_HASH_NET=y
CONFIG_IP_SET_HASH_NETNET=y
CONFIG_IP_SET_HASH_NETPORT=y
CONFIG_IP_SET_HASH_NETIFACE=y
CONFIG_IP_SET_LIST_SET=y
CONFIG_IP_VS=y
CONFIG_IP_VS_IPV6=y
# CONFIG_IP_VS_DEBUG is not set
CONFIG_IP_VS_TAB_BITS=12

#
# IPVS transport protocol load balancing support
#
CONFIG_IP_VS_PROTO_TCP=y
CONFIG_IP_VS_PROTO_UDP=y
CONFIG_IP_VS_PROTO_AH_ESP=y
CONFIG_IP_VS_PROTO_ESP=y
CONFIG_IP_VS_PROTO_AH=y
CONFIG_IP_VS_PROTO_SCTP=y

#
# IPVS scheduler
#
CONFIG_IP_VS_RR=y
CONFIG_IP_VS_WRR=y
CONFIG_IP_VS_LC=y
CONFIG_IP_VS_WLC=y
CONFIG_IP_VS_FO=y
CONFIG_IP_VS_OVF=y
CONFIG_IP_VS_LBLC=y
CONFIG_IP_VS_LBLCR=y
CONFIG_IP_VS_DH=y
CONFIG_IP_VS_SH=y
CONFIG_IP_VS_MH=y
CONFIG_IP_VS_SED=y
CONFIG_IP_VS_NQ=y
CONFIG_IP_VS_TWOS=y

#
# IPVS SH scheduler
#
CONFIG_IP_VS_SH_TAB_BITS=8

#
# IPVS MH scheduler
#
CONFIG_IP_VS_MH_TAB_INDEX=12

#
# IPVS application helper
#
CONFIG_IP_VS_FTP=y
CONFIG_IP_VS_NFCT=y
CONFIG_IP_VS_PE_SIP=y

#
# IP: Netfilter Configuration
#
CONFIG_NF_DEFRAG_IPV4=y
CONFIG_IP_NF_IPTABLES_LEGACY=y
CONFIG_NF_SOCKET_IPV4=y
CONFIG_NF_TPROXY_IPV4=y
CONFIG_NF_TABLES_IPV4=y
CONFIG_NFT_REJECT_IPV4=y
CONFIG_NFT_DUP_IPV4=y
CONFIG_NFT_FIB_IPV4=y
CONFIG_NF_TABLES_ARP=y
CONFIG_NF_DUP_IPV4=y
CONFIG_NF_LOG_ARP=y
CONFIG_NF_LOG_IPV4=y
CONFIG_NF_REJECT_IPV4=y
CONFIG_NF_NAT_SNMP_BASIC=y
CONFIG_NF_NAT_PPTP=y
CONFIG_NF_NAT_H323=y
CONFIG_IP_NF_IPTABLES=y
CONFIG_IP_NF_MATCH_AH=y
CONFIG_IP_NF_MATCH_ECN=y
CONFIG_IP_NF_MATCH_RPFILTER=y
CONFIG_IP_NF_MATCH_TTL=y
CONFIG_IP_NF_FILTER=y
CONFIG_IP_NF_TARGET_REJECT=y
CONFIG_IP_NF_TARGET_SYNPROXY=y
CONFIG_IP_NF_NAT=y
CONFIG_IP_NF_TARGET_MASQUERADE=y
CONFIG_IP_NF_TARGET_NETMAP=y
CONFIG_IP_NF_TARGET_REDIRECT=y
CONFIG_IP_NF_MANGLE=y
CONFIG_IP_NF_TARGET_ECN=y
CONFIG_IP_NF_TARGET_TTL=y
CONFIG_IP_NF_RAW=y
CONFIG_IP_NF_SECURITY=y
CONFIG_IP_NF_ARPTABLES=y
CONFIG_NFT_COMPAT_ARP=y
CONFIG_IP_NF_ARPFILTER=y
CONFIG_IP_NF_ARP_MANGLE=y
# end of IP: Netfilter Configuration

#
# IPv6: Netfilter Configuration
#
CONFIG_IP6_NF_IPTABLES_LEGACY=y
CONFIG_NF_SOCKET_IPV6=y
CONFIG_NF_TPROXY_IPV6=y
CONFIG_NF_TABLES_IPV6=y
CONFIG_NFT_REJECT_IPV6=y
CONFIG_NFT_DUP_IPV6=y
CONFIG_NFT_FIB_IPV6=y
CONFIG_NF_DUP_IPV6=y
CONFIG_NF_REJECT_IPV6=y
CONFIG_NF_LOG_IPV6=y
CONFIG_IP6_NF_IPTABLES=y
CONFIG_IP6_NF_MATCH_AH=y
CONFIG_IP6_NF_MATCH_EUI64=y
CONFIG_IP6_NF_MATCH_FRAG=y
CONFIG_IP6_NF_MATCH_OPTS=y
CONFIG_IP6_NF_MATCH_HL=y
CONFIG_IP6_NF_MATCH_IPV6HEADER=y
CONFIG_IP6_NF_MATCH_MH=y
CONFIG_IP6_NF_MATCH_RPFILTER=y
CONFIG_IP6_NF_MATCH_RT=y
CONFIG_IP6_NF_MATCH_SRH=y
CONFIG_IP6_NF_TARGET_HL=y
CONFIG_IP6_NF_FILTER=y
CONFIG_IP6_NF_TARGET_REJECT=y
CONFIG_IP6_NF_TARGET_SYNPROXY=y
CONFIG_IP6_NF_MANGLE=y
CONFIG_IP6_NF_RAW=y
CONFIG_IP6_NF_SECURITY=y
CONFIG_IP6_NF_NAT=y
CONFIG_IP6_NF_TARGET_MASQUERADE=y
CONFIG_IP6_NF_TARGET_NPT=y
# end of IPv6: Netfilter Configuration

CONFIG_NF_DEFRAG_IPV6=y
CONFIG_NF_TABLES_BRIDGE=y
CONFIG_NFT_BRIDGE_META=y
CONFIG_NFT_BRIDGE_REJECT=y
CONFIG_NF_CONNTRACK_BRIDGE=y
CONFIG_BRIDGE_NF_EBTABLES_LEGACY=y
CONFIG_BRIDGE_NF_EBTABLES=y
CONFIG_BRIDGE_EBT_BROUTE=y
CONFIG_BRIDGE_EBT_T_FILTER=y
CONFIG_BRIDGE_EBT_T_NAT=y
CONFIG_BRIDGE_EBT_802_3=y
CONFIG_BRIDGE_EBT_AMONG=y
CONFIG_BRIDGE_EBT_ARP=y
CONFIG_BRIDGE_EBT_IP=y
CONFIG_BRIDGE_EBT_IP6=y
CONFIG_BRIDGE_EBT_LIMIT=y
CONFIG_BRIDGE_EBT_MARK=y
CONFIG_BRIDGE_EBT_PKTTYPE=y
CONFIG_BRIDGE_EBT_STP=y
CONFIG_BRIDGE_EBT_VLAN=y
CONFIG_BRIDGE_EBT_ARPREPLY=y
CONFIG_BRIDGE_EBT_DNAT=y
CONFIG_BRIDGE_EBT_MARK_T=y
CONFIG_BRIDGE_EBT_REDIRECT=y
CONFIG_BRIDGE_EBT_SNAT=y
CONFIG_BRIDGE_EBT_LOG=y
CONFIG_BRIDGE_EBT_NFLOG=y
CONFIG_IP_SCTP=y
# CONFIG_SCTP_DBG_OBJCNT is not set
CONFIG_SCTP_DEFAULT_COOKIE_HMAC_SHA256=y
# CONFIG_SCTP_DEFAULT_COOKIE_HMAC_NONE is not set
CONFIG_INET_SCTP_DIAG=y
CONFIG_RDS=y
CONFIG_RDS_RDMA=y
CONFIG_RDS_TCP=y
# CONFIG_RDS_DEBUG is not set
CONFIG_TIPC=y
CONFIG_TIPC_MEDIA_IB=y
CONFIG_TIPC_MEDIA_UDP=y
CONFIG_TIPC_CRYPTO=y
CONFIG_TIPC_DIAG=y
CONFIG_ATM=y
CONFIG_ATM_CLIP=y
# CONFIG_ATM_CLIP_NO_ICMP is not set
CONFIG_ATM_LANE=y
CONFIG_ATM_MPOA=y
CONFIG_ATM_BR2684=y
# CONFIG_ATM_BR2684_IPFILTER is not set
CONFIG_L2TP=y
# CONFIG_L2TP_DEBUGFS is not set
CONFIG_L2TP_V3=y
CONFIG_L2TP_IP=y
CONFIG_L2TP_ETH=y
CONFIG_STP=y
CONFIG_GARP=y
CONFIG_MRP=y
CONFIG_BRIDGE=y
CONFIG_BRIDGE_IGMP_SNOOPING=y
CONFIG_BRIDGE_VLAN_FILTERING=y
CONFIG_BRIDGE_MRP=y
CONFIG_BRIDGE_CFM=y
CONFIG_NET_DSA=y
# CONFIG_NET_DSA_TAG_NONE is not set
# CONFIG_NET_DSA_TAG_AR9331 is not set
CONFIG_NET_DSA_TAG_BRCM_COMMON=y
CONFIG_NET_DSA_TAG_BRCM=y
# CONFIG_NET_DSA_TAG_BRCM_LEGACY is not set
# CONFIG_NET_DSA_TAG_BRCM_LEGACY_FCS is not set
CONFIG_NET_DSA_TAG_BRCM_PREPEND=y
# CONFIG_NET_DSA_TAG_HELLCREEK is not set
# CONFIG_NET_DSA_TAG_GSWIP is not set
# CONFIG_NET_DSA_TAG_DSA is not set
# CONFIG_NET_DSA_TAG_EDSA is not set
CONFIG_NET_DSA_TAG_MTK=y
# CONFIG_NET_DSA_TAG_MXL_862XX is not set
# CONFIG_NET_DSA_TAG_MXL_GSW1XX is not set
# CONFIG_NET_DSA_TAG_KSZ is not set
# CONFIG_NET_DSA_TAG_OCELOT is not set
# CONFIG_NET_DSA_TAG_OCELOT_8021Q is not set
CONFIG_NET_DSA_TAG_QCA=y
CONFIG_NET_DSA_TAG_RTL4_A=y
# CONFIG_NET_DSA_TAG_RTL8_4 is not set
# CONFIG_NET_DSA_TAG_RZN1_A5PSW is not set
# CONFIG_NET_DSA_TAG_LAN9303 is not set
# CONFIG_NET_DSA_TAG_SJA1105 is not set
# CONFIG_NET_DSA_TAG_TRAILER is not set
# CONFIG_NET_DSA_TAG_VSC73XX_8021Q is not set
# CONFIG_NET_DSA_TAG_XRS700X is not set
# CONFIG_NET_DSA_TAG_YT921X is not set
CONFIG_VLAN_8021Q=y
CONFIG_VLAN_8021Q_GVRP=y
CONFIG_VLAN_8021Q_MVRP=y
CONFIG_LLC=y
CONFIG_LLC2=y
# CONFIG_ATALK is not set
CONFIG_X25=y
CONFIG_LAPB=y
CONFIG_PHONET=y
CONFIG_6LOWPAN=y
# CONFIG_6LOWPAN_DEBUGFS is not set
CONFIG_6LOWPAN_NHC=y
CONFIG_6LOWPAN_NHC_DEST=y
CONFIG_6LOWPAN_NHC_FRAGMENT=y
CONFIG_6LOWPAN_NHC_HOP=y
CONFIG_6LOWPAN_NHC_IPV6=y
CONFIG_6LOWPAN_NHC_MOBILITY=y
CONFIG_6LOWPAN_NHC_ROUTING=y
CONFIG_6LOWPAN_NHC_UDP=y
CONFIG_6LOWPAN_GHC_EXT_HDR_HOP=y
CONFIG_6LOWPAN_GHC_UDP=y
CONFIG_6LOWPAN_GHC_ICMPV6=y
CONFIG_6LOWPAN_GHC_EXT_HDR_DEST=y
CONFIG_6LOWPAN_GHC_EXT_HDR_FRAG=y
CONFIG_6LOWPAN_GHC_EXT_HDR_ROUTE=y
CONFIG_IEEE802154=y
CONFIG_IEEE802154_NL802154_EXPERIMENTAL=y
CONFIG_IEEE802154_SOCKET=y
CONFIG_IEEE802154_6LOWPAN=y
CONFIG_MAC802154=y
CONFIG_NET_SCHED=y

#
# Queueing/Scheduling
#
CONFIG_NET_SCH_HTB=y
CONFIG_NET_SCH_HFSC=y
CONFIG_NET_SCH_PRIO=y
CONFIG_NET_SCH_MULTIQ=y
CONFIG_NET_SCH_RED=y
CONFIG_NET_SCH_SFB=y
CONFIG_NET_SCH_SFQ=y
CONFIG_NET_SCH_TEQL=y
CONFIG_NET_SCH_TBF=y
CONFIG_NET_SCH_CBS=y
CONFIG_NET_SCH_ETF=y
CONFIG_NET_SCH_MQPRIO_LIB=y
CONFIG_NET_SCH_TAPRIO=y
CONFIG_NET_SCH_GRED=y
CONFIG_NET_SCH_NETEM=y
CONFIG_NET_SCH_DRR=y
CONFIG_NET_SCH_MQPRIO=y
CONFIG_NET_SCH_SKBPRIO=y
CONFIG_NET_SCH_CHOKE=y
CONFIG_NET_SCH_QFQ=y
CONFIG_NET_SCH_CODEL=y
CONFIG_NET_SCH_FQ_CODEL=y
CONFIG_NET_SCH_CAKE=y
CONFIG_NET_SCH_FQ=y
CONFIG_NET_SCH_HHF=y
CONFIG_NET_SCH_PIE=y
CONFIG_NET_SCH_FQ_PIE=y
CONFIG_NET_SCH_INGRESS=y
CONFIG_NET_SCH_PLUG=y
CONFIG_NET_SCH_ETS=y
# CONFIG_NET_SCH_DUALPI2 is not set
CONFIG_NET_SCH_DEFAULT=y
# CONFIG_DEFAULT_FQ is not set
CONFIG_DEFAULT_CODEL=y
# CONFIG_DEFAULT_FQ_CODEL is not set
# CONFIG_DEFAULT_FQ_PIE is not set
# CONFIG_DEFAULT_SFQ is not set
# CONFIG_DEFAULT_PFIFO_FAST is not set
CONFIG_DEFAULT_NET_SCH="pfifo_fast"

#
# Classification
#
CONFIG_NET_CLS=y
CONFIG_NET_CLS_BASIC=y
CONFIG_NET_CLS_ROUTE4=y
CONFIG_NET_CLS_FW=y
CONFIG_NET_CLS_U32=y
CONFIG_CLS_U32_PERF=y
CONFIG_CLS_U32_MARK=y
CONFIG_NET_CLS_FLOW=y
CONFIG_NET_CLS_CGROUP=y
CONFIG_NET_CLS_BPF=y
CONFIG_NET_CLS_FLOWER=y
CONFIG_NET_CLS_MATCHALL=y
CONFIG_NET_EMATCH=y
CONFIG_NET_EMATCH_STACK=32
CONFIG_NET_EMATCH_CMP=y
CONFIG_NET_EMATCH_NBYTE=y
CONFIG_NET_EMATCH_U32=y
CONFIG_NET_EMATCH_META=y
CONFIG_NET_EMATCH_TEXT=y
CONFIG_NET_EMATCH_CANID=y
CONFIG_NET_EMATCH_IPSET=y
CONFIG_NET_EMATCH_IPT=y
CONFIG_NET_CLS_ACT=y
CONFIG_NET_ACT_POLICE=y
CONFIG_NET_ACT_GACT=y
CONFIG_GACT_PROB=y
CONFIG_NET_ACT_MIRRED=y
CONFIG_NET_ACT_SAMPLE=y
CONFIG_NET_ACT_NAT=y
CONFIG_NET_ACT_PEDIT=y
CONFIG_NET_ACT_SIMP=y
CONFIG_NET_ACT_SKBEDIT=y
CONFIG_NET_ACT_CSUM=y
CONFIG_NET_ACT_MPLS=y
CONFIG_NET_ACT_VLAN=y
CONFIG_NET_ACT_BPF=y
CONFIG_NET_ACT_CONNMARK=y
CONFIG_NET_ACT_CTINFO=y
CONFIG_NET_ACT_SKBMOD=y
CONFIG_NET_ACT_IFE=y
CONFIG_NET_ACT_TUNNEL_KEY=y
CONFIG_NET_ACT_CT=y
CONFIG_NET_ACT_GATE=y
CONFIG_NET_IFE_SKBMARK=y
CONFIG_NET_IFE_SKBPRIO=y
CONFIG_NET_IFE_SKBTCINDEX=y
CONFIG_NET_TC_SKB_EXT=y
CONFIG_NET_SCH_FIFO=y
CONFIG_DCB=y
CONFIG_DNS_RESOLVER=y
CONFIG_BATMAN_ADV=y
CONFIG_BATMAN_ADV_BATMAN_V=y
CONFIG_BATMAN_ADV_BLA=y
CONFIG_BATMAN_ADV_DAT=y
CONFIG_BATMAN_ADV_MCAST=y
# CONFIG_BATMAN_ADV_DEBUG is not set
# CONFIG_BATMAN_ADV_TRACING is not set
CONFIG_OPENVSWITCH=y
CONFIG_OPENVSWITCH_GRE=y
CONFIG_OPENVSWITCH_VXLAN=y
CONFIG_OPENVSWITCH_GENEVE=y
CONFIG_VSOCKETS=y
CONFIG_VSOCKETS_DIAG=y
CONFIG_VSOCKETS_LOOPBACK=y
CONFIG_VIRTIO_VSOCKETS=y
CONFIG_VIRTIO_VSOCKETS_COMMON=y
CONFIG_NETLINK_DIAG=y
CONFIG_MPLS=y
CONFIG_NET_MPLS_GSO=y
CONFIG_MPLS_ROUTING=y
CONFIG_MPLS_IPTUNNEL=y
CONFIG_NET_NSH=y
CONFIG_HSR=y
CONFIG_NET_SWITCHDEV=y
CONFIG_NET_L3_MASTER_DEV=y
CONFIG_QRTR=y
CONFIG_QRTR_TUN=y
CONFIG_NET_NCSI=y
# CONFIG_NCSI_OEM_CMD_GET_MAC is not set
# CONFIG_NCSI_OEM_CMD_KEEP_PHY is not set
# CONFIG_PCPU_DEV_REFCNT is not set
CONFIG_MAX_SKB_FRAGS=17
CONFIG_RPS=y
CONFIG_RFS_ACCEL=y
CONFIG_SOCK_RX_QUEUE_MAPPING=y
CONFIG_XPS=y
CONFIG_CGROUP_NET_PRIO=y
CONFIG_CGROUP_NET_CLASSID=y
CONFIG_NET_RX_BUSY_POLL=y
CONFIG_BQL=y
CONFIG_NET_FLOW_LIMIT=y

#
# Network testing
#
# CONFIG_NET_PKTGEN is not set
CONFIG_NET_DROP_MONITOR=y
# end of Network testing
# end of Networking options

# CONFIG_HAMRADIO is not set
CONFIG_CAN=y
CONFIG_CAN_RAW=y
CONFIG_CAN_BCM=y
CONFIG_CAN_GW=y
CONFIG_CAN_J1939=y
CONFIG_CAN_ISOTP=y
CONFIG_BT=y
CONFIG_BT_BREDR=y
# CONFIG_BT_RFCOMM is not set
# CONFIG_BT_BNEP is not set
CONFIG_BT_HIDP=y
# CONFIG_BT_LE is not set
# CONFIG_BT_LEDS is not set
# CONFIG_BT_MSFTEXT is not set
# CONFIG_BT_AOSPEXT is not set
# CONFIG_BT_DEBUGFS is not set
# CONFIG_BT_SELFTEST is not set
# CONFIG_BT_FEATURE_DEBUG is not set

#
# Bluetooth device drivers
#
CONFIG_BT_INTEL=y
CONFIG_BT_BCM=y
CONFIG_BT_RTL=y
CONFIG_BT_MTK=y
CONFIG_BT_HCIBTUSB=y
CONFIG_BT_HCIBTUSB_AUTOSUSPEND=y
CONFIG_BT_HCIBTUSB_POLL_SYNC=y
CONFIG_BT_HCIBTUSB_BCM=y
CONFIG_BT_HCIBTUSB_MTK=y
CONFIG_BT_HCIBTUSB_RTL=y
# CONFIG_BT_HCIBTSDIO is not set
CONFIG_BT_HCIUART=y
CONFIG_BT_HCIUART_SERDEV=y
CONFIG_BT_HCIUART_H4=y
# CONFIG_BT_HCIUART_NOKIA is not set
# CONFIG_BT_HCIUART_BCSP is not set
# CONFIG_BT_HCIUART_ATH3K is not set
# CONFIG_BT_HCIUART_LL is not set
# CONFIG_BT_HCIUART_3WIRE is not set
# CONFIG_BT_HCIUART_INTEL is not set
# CONFIG_BT_HCIUART_RTL is not set
# CONFIG_BT_HCIUART_QCA is not set
# CONFIG_BT_HCIUART_AG6XX is not set
# CONFIG_BT_HCIUART_MRVL is not set
# CONFIG_BT_HCIUART_AML is not set
CONFIG_BT_HCIBCM203X=y
# CONFIG_BT_HCIBCM4377 is not set
CONFIG_BT_HCIBPA10X=y
CONFIG_BT_HCIBFUSB=y
# CONFIG_BT_HCIDTL1 is not set
# CONFIG_BT_HCIBT3C is not set
# CONFIG_BT_HCIBLUECARD is not set
# CONFIG_BT_HCIVHCI is not set
CONFIG_BT_MRVL=y
CONFIG_BT_MRVL_SDIO=y
CONFIG_BT_ATH3K=y
CONFIG_BT_MTKSDIO=y
CONFIG_BT_MTKUART=y
# CONFIG_BT_VIRTIO is not set
# CONFIG_BT_NXPUART is not set
# CONFIG_BT_INTEL_PCIE is not set
# end of Bluetooth device drivers

CONFIG_AF_RXRPC=y
CONFIG_AF_RXRPC_IPV6=y
# CONFIG_AF_RXRPC_INJECT_LOSS is not set
# CONFIG_AF_RXRPC_INJECT_RX_DELAY is not set
# CONFIG_AF_RXRPC_DEBUG is not set
CONFIG_RXKAD=y
# CONFIG_RXGK is not set
# CONFIG_RXPERF is not set
CONFIG_AF_KCM=y
CONFIG_STREAM_PARSER=y
CONFIG_MCTP=y
CONFIG_FIB_RULES=y
CONFIG_WIRELESS=y
CONFIG_CFG80211=y
# CONFIG_NL80211_TESTMODE is not set
# CONFIG_CFG80211_DEVELOPER_WARNINGS is not set
# CONFIG_CFG80211_CERTIFICATION_ONUS is not set
CONFIG_CFG80211_REQUIRE_SIGNED_REGDB=y
CONFIG_CFG80211_USE_KERNEL_REGDB_KEYS=y
CONFIG_CFG80211_DEFAULT_PS=y
CONFIG_CFG80211_DEBUGFS=y
CONFIG_CFG80211_CRDA_SUPPORT=y
# CONFIG_CFG80211_WEXT is not set
CONFIG_MAC80211=y
CONFIG_MAC80211_HAS_RC=y
CONFIG_MAC80211_RC_MINSTREL=y
CONFIG_MAC80211_RC_DEFAULT_MINSTREL=y
CONFIG_MAC80211_RC_DEFAULT="minstrel_ht"
# CONFIG_MAC80211_MESH is not set
CONFIG_MAC80211_LEDS=y
CONFIG_MAC80211_DEBUGFS=y
# CONFIG_MAC80211_MESSAGE_TRACING is not set
# CONFIG_MAC80211_DEBUG_MENU is not set
CONFIG_MAC80211_STA_HASH_MAX_SIZE=0
CONFIG_RFKILL=y
CONFIG_RFKILL_LEDS=y
CONFIG_RFKILL_INPUT=y
# CONFIG_RFKILL_GPIO is not set
CONFIG_NET_9P=y
CONFIG_NET_9P_FD=y
CONFIG_NET_9P_VIRTIO=y
# CONFIG_NET_9P_USBG is not set
CONFIG_NET_9P_RDMA=y
# CONFIG_NET_9P_DEBUG is not set
CONFIG_CAIF=y
CONFIG_CAIF_DEBUG=y
CONFIG_CAIF_NETDEV=y
CONFIG_CAIF_USB=y
CONFIG_CEPH_LIB=y
# CONFIG_CEPH_LIB_PRETTYDEBUG is not set
CONFIG_CEPH_LIB_USE_DNS_RESOLVER=y
CONFIG_NFC=y
CONFIG_NFC_DIGITAL=y
CONFIG_NFC_NCI=y
# CONFIG_NFC_NCI_SPI is not set
CONFIG_NFC_NCI_UART=y
CONFIG_NFC_HCI=y
CONFIG_NFC_SHDLC=y

#
# Near Field Communication (NFC) devices
#
# CONFIG_NFC_TRF7970A is not set
# CONFIG_NFC_MEI_PHY is not set
CONFIG_NFC_SIM=y
CONFIG_NFC_PORT100=y
CONFIG_NFC_VIRTUAL_NCI=y
CONFIG_NFC_FDP=y
# CONFIG_NFC_FDP_I2C is not set
# CONFIG_NFC_PN544_I2C is not set
CONFIG_NFC_PN533=y
CONFIG_NFC_PN533_USB=y
# CONFIG_NFC_PN533_I2C is not set
# CONFIG_NFC_PN532_UART is not set
# CONFIG_NFC_MICROREAD_I2C is not set
CONFIG_NFC_MRVL=y
CONFIG_NFC_MRVL_USB=y
# CONFIG_NFC_MRVL_UART is not set
# CONFIG_NFC_MRVL_I2C is not set
# CONFIG_NFC_ST21NFCA_I2C is not set
# CONFIG_NFC_ST_NCI_I2C is not set
# CONFIG_NFC_ST_NCI_SPI is not set
# CONFIG_NFC_NXP_NCI is not set
# CONFIG_NFC_S3FWRN5_I2C is not set
# CONFIG_NFC_S3FWRN82_UART is not set
# CONFIG_NFC_ST95HF is not set
# end of Near Field Communication (NFC) devices

CONFIG_PSAMPLE=y
CONFIG_NET_IFE=y
CONFIG_LWTUNNEL=y
CONFIG_LWTUNNEL_BPF=y
CONFIG_DST_CACHE=y
CONFIG_GRO_CELLS=y
CONFIG_SOCK_VALIDATE_XMIT=y
CONFIG_NET_SELFTESTS=y
CONFIG_NET_SOCK_MSG=y
CONFIG_NET_DEVLINK=y
CONFIG_PAGE_POOL=y
# CONFIG_PAGE_POOL_STATS is not set
CONFIG_FAILOVER=y
CONFIG_ETHTOOL_NETLINK=y

#
# Device Drivers
#
CONFIG_HAVE_PCI=y
CONFIG_GENERIC_PCI_IOMAP=y
CONFIG_PCI=y
CONFIG_PCI_DOMAINS=y
CONFIG_PCIEPORTBUS=y
# CONFIG_HOTPLUG_PCI_PCIE is not set
# CONFIG_PCIEAER is not set
CONFIG_PCIEASPM=y
CONFIG_PCIEASPM_DEFAULT=y
# CONFIG_PCIEASPM_POWERSAVE is not set
# CONFIG_PCIEASPM_POWER_SUPERSAVE is not set
# CONFIG_PCIEASPM_PERFORMANCE is not set
CONFIG_PCIE_PME=y
# CONFIG_PCIE_PTM is not set
CONFIG_PCI_MSI=y
CONFIG_PCI_QUIRKS=y
# CONFIG_PCI_DEBUG is not set
# CONFIG_PCI_STUB is not set
CONFIG_PCI_ATS=y
CONFIG_PCI_IDE=y
CONFIG_PCI_TSM=y
CONFIG_PCI_DOE=y
CONFIG_PCI_ECAM=y
CONFIG_PCI_LOCKLESS_CONFIG=y
# CONFIG_PCI_IOV is not set
# CONFIG_PCI_NPEM is not set
CONFIG_PCI_PRI=y
CONFIG_PCI_PASID=y
# CONFIG_PCIE_TPH is not set
CONFIG_PCI_LABEL=y
# CONFIG_PCI_DYNAMIC_OF_NODES is not set
# CONFIG_PCIE_BUS_TUNE_OFF is not set
CONFIG_PCIE_BUS_DEFAULT=y
# CONFIG_PCIE_BUS_SAFE is not set
# CONFIG_PCIE_BUS_PERFORMANCE is not set
# CONFIG_PCIE_BUS_PEER2PEER is not set
CONFIG_VGA_ARB=y
CONFIG_VGA_ARB_MAX_GPUS=16
CONFIG_HOTPLUG_PCI=y
# CONFIG_HOTPLUG_PCI_ACPI is not set
# CONFIG_HOTPLUG_PCI_CPCI is not set
# CONFIG_HOTPLUG_PCI_OCTEONEP is not set
# CONFIG_HOTPLUG_PCI_SHPC is not set

#
# PCI controller drivers
#
CONFIG_PCI_HOST_COMMON=y
# CONFIG_PCI_FTPCI100 is not set
CONFIG_PCI_HOST_GENERIC=y
# CONFIG_VMD is not set
# CONFIG_PCIE_XILINX is not set

#
# Cadence-based PCIe controllers
#
# CONFIG_PCIE_CADENCE_PLAT_HOST is not set
# end of Cadence-based PCIe controllers

#
# DesignWare-based PCIe controllers
#
# CONFIG_PCI_MESON is not set
# CONFIG_PCIE_INTEL_GW is not set
# CONFIG_PCIE_DW_PLAT_HOST is not set
# end of DesignWare-based PCIe controllers

#
# Mobiveil-based PCIe controllers
#
# end of Mobiveil-based PCIe controllers

#
# PLDA-based PCIe controllers
#
# CONFIG_PCIE_MICROCHIP_HOST is not set
# end of PLDA-based PCIe controllers
# end of PCI controller drivers

#
# PCI Endpoint
#
# CONFIG_PCI_ENDPOINT is not set
# end of PCI Endpoint

#
# PCI switch controller drivers
#
# CONFIG_PCI_SW_SWITCHTEC is not set
# end of PCI switch controller drivers

# CONFIG_PCI_PWRCTRL_SLOT is not set
# CONFIG_PCI_PWRCTRL_TC9563 is not set
# CONFIG_CXL_BUS is not set
CONFIG_PCCARD=y
CONFIG_PCMCIA=y
CONFIG_PCMCIA_LOAD_CIS=y
CONFIG_CARDBUS=y

#
# PC-card bridges
#
CONFIG_YENTA=y
CONFIG_YENTA_O2=y
CONFIG_YENTA_RICOH=y
CONFIG_YENTA_TI=y
CONFIG_YENTA_ENE_TUNE=y
CONFIG_YENTA_TOSHIBA=y
# CONFIG_PD6729 is not set
# CONFIG_I82092 is not set
CONFIG_PCCARD_NONSTATIC=y
# CONFIG_RAPIDIO is not set
# CONFIG_PC104 is not set

#
# Generic Driver Options
#
CONFIG_AUXILIARY_BUS=y
CONFIG_UEVENT_HELPER=y
CONFIG_UEVENT_HELPER_PATH="/sbin/hotplug"
CONFIG_DEVTMPFS=y
CONFIG_DEVTMPFS_MOUNT=y
# CONFIG_DEVTMPFS_SAFE is not set
CONFIG_STANDALONE=y
CONFIG_PREVENT_FIRMWARE_BUILD=y

#
# Firmware loader
#
CONFIG_FW_LOADER=y
CONFIG_EXTRA_FIRMWARE=""
# CONFIG_FW_LOADER_USER_HELPER is not set
# CONFIG_FW_LOADER_COMPRESS is not set
CONFIG_FW_CACHE=y
# CONFIG_FW_UPLOAD is not set
# end of Firmware loader

CONFIG_WANT_DEV_COREDUMP=y
CONFIG_ALLOW_DEV_COREDUMP=y
CONFIG_DEV_COREDUMP=y
# CONFIG_DEBUG_DRIVER is not set
CONFIG_DEBUG_DEVRES=y
# CONFIG_DEBUG_TEST_DRIVER_REMOVE is not set
# CONFIG_TEST_ASYNC_DRIVER_PROBE is not set
CONFIG_GENERIC_CPU_DEVICES=y
CONFIG_GENERIC_CPU_AUTOPROBE=y
CONFIG_GENERIC_CPU_VULNERABILITIES=y
CONFIG_REGMAP=y
CONFIG_REGMAP_I2C=y
CONFIG_REGMAP_SPI=y
CONFIG_REGMAP_MMIO=y
CONFIG_REGMAP_IRQ=y
CONFIG_DMA_SHARED_BUFFER=y
# CONFIG_DMA_FENCE_TRACE is not set
# CONFIG_FW_DEVLINK_SYNC_STATE_TIMEOUT is not set
# end of Generic Driver Options

#
# Bus devices
#
# CONFIG_MOXTET is not set
# CONFIG_MHI_BUS is not set
# CONFIG_MHI_BUS_EP is not set
# end of Bus devices

CONFIG_CONNECTOR=y
CONFIG_PROC_EVENTS=y

#
# Firmware Drivers
#

#
# ARM System Control and Management Interface Protocol
#
# end of ARM System Control and Management Interface Protocol

# CONFIG_EDD is not set
CONFIG_FIRMWARE_MEMMAP=y
CONFIG_DMIID=y
# CONFIG_DMI_SYSFS is not set
CONFIG_DMI_SCAN_MACHINE_NON_EFI_FALLBACK=y
# CONFIG_ISCSI_IBFT is not set
# CONFIG_FW_CFG_SYSFS is not set
# CONFIG_SYSFB_SIMPLEFB is not set
# CONFIG_GOOGLE_FIRMWARE is not set

#
# Qualcomm firmware drivers
#
# end of Qualcomm firmware drivers

#
# Tegra firmware driver
#
# end of Tegra firmware driver
# end of Firmware Drivers

# CONFIG_FWCTL is not set
CONFIG_GNSS=y
# CONFIG_GNSS_MTK_SERIAL is not set
# CONFIG_GNSS_SIRF_SERIAL is not set
# CONFIG_GNSS_UBX_SERIAL is not set
CONFIG_GNSS_USB=y
# CONFIG_MTD is not set
CONFIG_DTC=y
CONFIG_OF=y
# CONFIG_OF_UNITTEST is not set
CONFIG_OF_FLATTREE=y
CONFIG_OF_EARLY_FLATTREE=y
CONFIG_OF_KOBJ=y
CONFIG_OF_ADDRESS=y
CONFIG_OF_IRQ=y
CONFIG_OF_RESERVED_MEM=y
# CONFIG_OF_OVERLAY is not set
CONFIG_OF_NUMA=y
CONFIG_ARCH_MIGHT_HAVE_PC_PARPORT=y
CONFIG_PARPORT=y
# CONFIG_PARPORT_PC is not set
# CONFIG_PARPORT_1284 is not set
CONFIG_PARPORT_NOT_PC=y
CONFIG_PNP=y
CONFIG_PNP_DEBUG_MESSAGES=y

#
# Protocols
#
CONFIG_PNPACPI=y
CONFIG_BLK_DEV=y
# CONFIG_BLK_DEV_NULL_BLK is not set
# CONFIG_BLK_DEV_FD is not set
CONFIG_CDROM=y
# CONFIG_BLK_DEV_PCIESSD_MTIP32XX is not set
# CONFIG_ZRAM is not set
CONFIG_BLK_DEV_LOOP=y
CONFIG_BLK_DEV_LOOP_MIN_COUNT=8
# CONFIG_BLK_DEV_DRBD is not set
# CONFIG_BLK_DEV_NBD is not set
# CONFIG_BLK_DEV_RAM is not set
# CONFIG_ATA_OVER_ETH is not set
CONFIG_VIRTIO_BLK=y
# CONFIG_BLK_DEV_RBD is not set
# CONFIG_BLK_DEV_UBLK is not set
# CONFIG_BLK_DEV_RNBD_CLIENT is not set

#
# NVME Support
#
# CONFIG_BLK_DEV_NVME is not set
# CONFIG_NVME_RDMA is not set
# CONFIG_NVME_FC is not set
# CONFIG_NVME_TCP is not set
# CONFIG_NVME_TARGET is not set
# end of NVME Support

#
# Misc devices
#
# CONFIG_AD525X_DPOT is not set
# CONFIG_DUMMY_IRQ is not set
# CONFIG_IBM_ASM is not set
# CONFIG_PHANTOM is not set
# CONFIG_RPMB is not set
# CONFIG_TI_FPC202 is not set
# CONFIG_TIFM_CORE is not set
# CONFIG_ICS932S401 is not set
# CONFIG_ENCLOSURE_SERVICES is not set
# CONFIG_HP_ILO is not set
# CONFIG_APDS9802ALS is not set
# CONFIG_ISL29003 is not set
# CONFIG_ISL29020 is not set
# CONFIG_SENSORS_TSL2550 is not set
# CONFIG_SENSORS_BH1770 is not set
# CONFIG_SENSORS_APDS990X is not set
# CONFIG_HMC6352 is not set
# CONFIG_DS1682 is not set
# CONFIG_LATTICE_ECP3_CONFIG is not set
# CONFIG_SRAM is not set
# CONFIG_DW_XDATA_PCIE is not set
# CONFIG_PCI_ENDPOINT_TEST is not set
# CONFIG_XILINX_SDFEC is not set
CONFIG_MISC_RTSX=y
# CONFIG_HISI_HIKEY_USB is not set
# CONFIG_OPEN_DICE is not set
# CONFIG_NTSYNC is not set
# CONFIG_VCPU_STALL_DETECTOR is not set
# CONFIG_NSM is not set
# CONFIG_C2PORT is not set

#
# EEPROM support
#
# CONFIG_EEPROM_AT24 is not set
# CONFIG_EEPROM_AT25 is not set
# CONFIG_EEPROM_MAX6875 is not set
CONFIG_EEPROM_93CX6=y
# CONFIG_EEPROM_93XX46 is not set
# CONFIG_EEPROM_IDT_89HPESX is not set
# CONFIG_EEPROM_EE1004 is not set
# CONFIG_EEPROM_M24LR is not set
# end of EEPROM support

# CONFIG_CB710_CORE is not set
# CONFIG_SENSORS_LIS3_I2C is not set
# CONFIG_ALTERA_STAPL is not set
CONFIG_INTEL_MEI=y
CONFIG_INTEL_MEI_ME=y
# CONFIG_INTEL_MEI_TXE is not set
# CONFIG_INTEL_MEI_GSC is not set
# CONFIG_INTEL_MEI_VSC_HW is not set
# CONFIG_INTEL_MEI_HDCP is not set
# CONFIG_INTEL_MEI_PXP is not set
# CONFIG_INTEL_MEI_GSC_PROXY is not set
# CONFIG_VMWARE_VMCI is not set
# CONFIG_GENWQE is not set
# CONFIG_BCM_VK is not set
# CONFIG_MISC_ALCOR_PCI is not set
# CONFIG_MISC_RTSX_PCI is not set
CONFIG_MISC_RTSX_USB=y
# CONFIG_UACCE is not set
# CONFIG_PVPANIC is not set
# CONFIG_GP_PCI1XXXX is not set
# CONFIG_KEBA_CP500 is not set
# CONFIG_MISC_RP1 is not set
# end of Misc devices

#
# SCSI device support
#
CONFIG_SCSI_MOD=y
# CONFIG_RAID_ATTRS is not set
CONFIG_SCSI_COMMON=y
CONFIG_SCSI=y
CONFIG_SCSI_DMA=y
CONFIG_SCSI_PROC_FS=y

#
# SCSI support type (disk, tape, CD-ROM)
#
CONFIG_BLK_DEV_SD=y
# CONFIG_CHR_DEV_ST is not set
CONFIG_BLK_DEV_SR=y
CONFIG_CHR_DEV_SG=y
CONFIG_BLK_DEV_BSG=y
# CONFIG_CHR_DEV_SCH is not set
CONFIG_SCSI_CONSTANTS=y
# CONFIG_SCSI_LOGGING is not set
# CONFIG_SCSI_SCAN_ASYNC is not set

#
# SCSI Transports
#
CONFIG_SCSI_SPI_ATTRS=y
# CONFIG_SCSI_FC_ATTRS is not set
CONFIG_SCSI_ISCSI_ATTRS=y
# CONFIG_SCSI_SAS_ATTRS is not set
# CONFIG_SCSI_SAS_LIBSAS is not set
CONFIG_SCSI_SRP_ATTRS=y
# end of SCSI Transports

CONFIG_SCSI_LOWLEVEL=y
# CONFIG_ISCSI_TCP is not set
# CONFIG_ISCSI_BOOT_SYSFS is not set
# CONFIG_SCSI_CXGB3_ISCSI is not set
# CONFIG_SCSI_CXGB4_ISCSI is not set
# CONFIG_SCSI_BNX2_ISCSI is not set
# CONFIG_BE2ISCSI is not set
# CONFIG_BLK_DEV_3W_XXXX_RAID is not set
# CONFIG_SCSI_HPSA is not set
# CONFIG_SCSI_3W_9XXX is not set
# CONFIG_SCSI_3W_SAS is not set
# CONFIG_SCSI_ACARD is not set
# CONFIG_SCSI_AACRAID is not set
# CONFIG_SCSI_AIC7XXX is not set
# CONFIG_SCSI_AIC79XX is not set
# CONFIG_SCSI_AIC94XX is not set
# CONFIG_SCSI_MVSAS is not set
# CONFIG_SCSI_MVUMI is not set
# CONFIG_SCSI_ADVANSYS is not set
# CONFIG_SCSI_ARCMSR is not set
# CONFIG_SCSI_ESAS2R is not set
# CONFIG_MEGARAID_NEWGEN is not set
# CONFIG_MEGARAID_LEGACY is not set
# CONFIG_MEGARAID_SAS is not set
# CONFIG_SCSI_MPT3SAS is not set
# CONFIG_SCSI_MPT2SAS is not set
# CONFIG_SCSI_MPI3MR is not set
# CONFIG_SCSI_SMARTPQI is not set
# CONFIG_SCSI_HPTIOP is not set
# CONFIG_SCSI_BUSLOGIC is not set
# CONFIG_SCSI_MYRB is not set
# CONFIG_SCSI_MYRS is not set
# CONFIG_VMWARE_PVSCSI is not set
# CONFIG_SCSI_SNIC is not set
# CONFIG_SCSI_DMX3191D is not set
# CONFIG_SCSI_FDOMAIN_PCI is not set
# CONFIG_SCSI_ISCI is not set
# CONFIG_SCSI_IPS is not set
# CONFIG_SCSI_INITIO is not set
# CONFIG_SCSI_INIA100 is not set
# CONFIG_SCSI_STEX is not set
# CONFIG_SCSI_SYM53C8XX_2 is not set
# CONFIG_SCSI_IPR is not set
# CONFIG_SCSI_QLOGIC_1280 is not set
# CONFIG_SCSI_QLA_ISCSI is not set
# CONFIG_SCSI_DC395x is not set
# CONFIG_SCSI_AM53C974 is not set
# CONFIG_SCSI_WD719X is not set
# CONFIG_SCSI_DEBUG is not set
# CONFIG_SCSI_PMCRAID is not set
# CONFIG_SCSI_PM8001 is not set
CONFIG_SCSI_VIRTIO=y
# CONFIG_SCSI_LOWLEVEL_PCMCIA is not set
# CONFIG_SCSI_DH is not set
# end of SCSI device support

CONFIG_ATA=y
CONFIG_SATA_HOST=y
CONFIG_PATA_TIMINGS=y
CONFIG_ATA_VERBOSE_ERROR=y
CONFIG_ATA_FORCE=y
CONFIG_ATA_ACPI=y
# CONFIG_SATA_ZPODD is not set
CONFIG_SATA_PMP=y

#
# Controllers with non-SFF native interface
#
CONFIG_SATA_AHCI=y
CONFIG_SATA_MOBILE_LPM_POLICY=3
# CONFIG_SATA_AHCI_PLATFORM is not set
# CONFIG_AHCI_DWC is not set
# CONFIG_AHCI_CEVA is not set
# CONFIG_SATA_INIC162X is not set
# CONFIG_SATA_ACARD_AHCI is not set
# CONFIG_SATA_SIL24 is not set
CONFIG_ATA_SFF=y

#
# SFF controllers with custom DMA interface
#
# CONFIG_PDC_ADMA is not set
# CONFIG_SATA_QSTOR is not set
# CONFIG_SATA_SX4 is not set
CONFIG_ATA_BMDMA=y

#
# SATA SFF controllers with BMDMA
#
CONFIG_ATA_PIIX=y
# CONFIG_SATA_DWC is not set
# CONFIG_SATA_MV is not set
# CONFIG_SATA_NV is not set
# CONFIG_SATA_PROMISE is not set
# CONFIG_SATA_SIL is not set
# CONFIG_SATA_SIS is not set
# CONFIG_SATA_SVW is not set
# CONFIG_SATA_ULI is not set
# CONFIG_SATA_VIA is not set
# CONFIG_SATA_VITESSE is not set

#
# PATA SFF controllers with BMDMA
#
# CONFIG_PATA_ALI is not set
CONFIG_PATA_AMD=y
# CONFIG_PATA_ARTOP is not set
# CONFIG_PATA_ATIIXP is not set
# CONFIG_PATA_ATP867X is not set
# CONFIG_PATA_CMD64X is not set
# CONFIG_PATA_CYPRESS is not set
# CONFIG_PATA_EFAR is not set
# CONFIG_PATA_HPT366 is not set
# CONFIG_PATA_HPT37X is not set
# CONFIG_PATA_HPT3X2N is not set
# CONFIG_PATA_HPT3X3 is not set
# CONFIG_PATA_IT8213 is not set
# CONFIG_PATA_IT821X is not set
# CONFIG_PATA_JMICRON is not set
# CONFIG_PATA_MARVELL is not set
# CONFIG_PATA_NETCELL is not set
# CONFIG_PATA_NINJA32 is not set
# CONFIG_PATA_NS87415 is not set
CONFIG_PATA_OLDPIIX=y
# CONFIG_PATA_OPTIDMA is not set
# CONFIG_PATA_PDC2027X is not set
# CONFIG_PATA_PDC_OLD is not set
# CONFIG_PATA_RADISYS is not set
# CONFIG_PATA_RDC is not set
CONFIG_PATA_SCH=y
# CONFIG_PATA_SERVERWORKS is not set
# CONFIG_PATA_SIL680 is not set
# CONFIG_PATA_SIS is not set
# CONFIG_PATA_TOSHIBA is not set
# CONFIG_PATA_TRIFLEX is not set
# CONFIG_PATA_VIA is not set
# CONFIG_PATA_WINBOND is not set

#
# PIO-only SFF controllers
#
# CONFIG_PATA_CMD640_PCI is not set
# CONFIG_PATA_MPIIX is not set
# CONFIG_PATA_NS87410 is not set
# CONFIG_PATA_OPTI is not set
# CONFIG_PATA_PCMCIA is not set
# CONFIG_PATA_OF_PLATFORM is not set
# CONFIG_PATA_RZ1000 is not set

#
# Generic fallback / legacy drivers
#
# CONFIG_PATA_ACPI is not set
# CONFIG_ATA_GENERIC is not set
# CONFIG_PATA_LEGACY is not set
CONFIG_MD=y
CONFIG_BLK_DEV_MD=y
CONFIG_MD_BITMAP=y
# CONFIG_MD_LLBITMAP is not set
CONFIG_MD_AUTODETECT=y
CONFIG_MD_BITMAP_FILE=y
# CONFIG_MD_LINEAR is not set
# CONFIG_MD_RAID0 is not set
# CONFIG_MD_RAID1 is not set
# CONFIG_MD_RAID10 is not set
# CONFIG_MD_RAID456 is not set
# CONFIG_BCACHE is not set
CONFIG_BLK_DEV_DM_BUILTIN=y
CONFIG_BLK_DEV_DM=y
# CONFIG_DM_DEBUG is not set
# CONFIG_DM_UNSTRIPED is not set
# CONFIG_DM_CRYPT is not set
# CONFIG_DM_SNAPSHOT is not set
# CONFIG_DM_THIN_PROVISIONING is not set
# CONFIG_DM_CACHE is not set
# CONFIG_DM_WRITECACHE is not set
# CONFIG_DM_EBS is not set
# CONFIG_DM_ERA is not set
# CONFIG_DM_CLONE is not set
CONFIG_DM_MIRROR=y
# CONFIG_DM_LOG_USERSPACE is not set
# CONFIG_DM_RAID is not set
CONFIG_DM_ZERO=y
# CONFIG_DM_MULTIPATH is not set
# CONFIG_DM_DELAY is not set
# CONFIG_DM_DUST is not set
# CONFIG_DM_INIT is not set
# CONFIG_DM_UEVENT is not set
# CONFIG_DM_FLAKEY is not set
# CONFIG_DM_VERITY is not set
# CONFIG_DM_SWITCH is not set
# CONFIG_DM_LOG_WRITES is not set
# CONFIG_DM_INTEGRITY is not set
# CONFIG_DM_AUDIT is not set
# CONFIG_DM_VDO is not set
CONFIG_TARGET_CORE=y
# CONFIG_TCM_IBLOCK is not set
# CONFIG_TCM_FILEIO is not set
# CONFIG_TCM_PSCSI is not set
# CONFIG_LOOPBACK_TARGET is not set
# CONFIG_ISCSI_TARGET is not set
# CONFIG_REMOTE_TARGET is not set
# CONFIG_FUSION is not set

#
# IEEE 1394 (FireWire) support
#
# CONFIG_FIREWIRE is not set
# CONFIG_FIREWIRE_NOSY is not set
# end of IEEE 1394 (FireWire) support

CONFIG_MACINTOSH_DRIVERS=y
CONFIG_MAC_EMUMOUSEBTN=y
CONFIG_NETDEVICES=y
CONFIG_MII=y
CONFIG_NET_CORE=y
CONFIG_BONDING=y
CONFIG_DUMMY=y
CONFIG_WIREGUARD=y
# CONFIG_WIREGUARD_DEBUG is not set
# CONFIG_OVPN is not set
CONFIG_EQUALIZER=y
CONFIG_NET_FC=y
CONFIG_IFB=y
CONFIG_NET_TEAM=y
CONFIG_NET_TEAM_MODE_BROADCAST=y
CONFIG_NET_TEAM_MODE_ROUNDROBIN=y
CONFIG_NET_TEAM_MODE_RANDOM=y
CONFIG_NET_TEAM_MODE_ACTIVEBACKUP=y
CONFIG_NET_TEAM_MODE_LOADBALANCE=y
CONFIG_MACVLAN=y
CONFIG_MACVTAP=y
CONFIG_IPVLAN_L3S=y
CONFIG_IPVLAN=y
CONFIG_IPVTAP=y
CONFIG_VXLAN=y
CONFIG_GENEVE=y
CONFIG_BAREUDP=y
CONFIG_GTP=y
# CONFIG_PFCP is not set
# CONFIG_AMT is not set
CONFIG_MACSEC=y
CONFIG_NETCONSOLE=y
# CONFIG_NETCONSOLE_DYNAMIC is not set
# CONFIG_NETCONSOLE_EXTENDED_LOG is not set
CONFIG_NETPOLL=y
CONFIG_NET_POLL_CONTROLLER=y
CONFIG_TUN=y
CONFIG_TAP=y
CONFIG_TUN_VNET_CROSS_LE=y
CONFIG_VETH=y
CONFIG_VIRTIO_NET=y
CONFIG_NLMON=y
# CONFIG_NETKIT is not set
CONFIG_NET_VRF=y
# CONFIG_ARCNET is not set
CONFIG_ATM_DRIVERS=y
# CONFIG_ATM_DUMMY is not set
CONFIG_ATM_TCP=y
# CONFIG_ATM_LANAI is not set
# CONFIG_ATM_ENI is not set
# CONFIG_ATM_NICSTAR is not set
# CONFIG_ATM_IDT77252 is not set
# CONFIG_ATM_IA is not set
# CONFIG_ATM_FORE200E is not set
# CONFIG_ATM_HE is not set
# CONFIG_ATM_SOLOS is not set
CONFIG_CAIF_DRIVERS=y
CONFIG_CAIF_TTY=y
CONFIG_CAIF_VIRTIO=y

#
# Distributed Switch Architecture drivers
#
# CONFIG_B53 is not set
# CONFIG_NET_DSA_BCM_SF2 is not set
# CONFIG_NET_DSA_LOOP is not set
# CONFIG_NET_DSA_HIRSCHMANN_HELLCREEK is not set
# CONFIG_NET_DSA_LANTIQ_GSWIP is not set
# CONFIG_NET_DSA_MXL_GSW1XX is not set
# CONFIG_NET_DSA_MT7530 is not set
# CONFIG_NET_DSA_MV88E6060 is not set
# CONFIG_NET_DSA_MICROCHIP_KSZ_COMMON is not set
# CONFIG_NET_DSA_MV88E6XXX is not set
# CONFIG_NET_DSA_MXL862 is not set
# CONFIG_NET_DSA_AR9331 is not set
# CONFIG_NET_DSA_QCA8K is not set
# CONFIG_NET_DSA_SJA1105 is not set
# CONFIG_NET_DSA_XRS700X_I2C is not set
# CONFIG_NET_DSA_XRS700X_MDIO is not set
# CONFIG_NET_DSA_REALTEK is not set
# CONFIG_NET_DSA_KS8995 is not set
# CONFIG_NET_DSA_SMSC_LAN9303_I2C is not set
# CONFIG_NET_DSA_SMSC_LAN9303_MDIO is not set
# CONFIG_NET_DSA_VITESSE_VSC73XX_SPI is not set
# CONFIG_NET_DSA_VITESSE_VSC73XX_PLATFORM is not set
# CONFIG_NET_DSA_YT921X is not set
# end of Distributed Switch Architecture drivers

CONFIG_ETHERNET=y
# CONFIG_NET_VENDOR_3COM is not set
# CONFIG_NET_VENDOR_ADAPTEC is not set
# CONFIG_NET_VENDOR_AGERE is not set
# CONFIG_NET_VENDOR_ALACRITECH is not set
CONFIG_NET_VENDOR_ALTEON=y
# CONFIG_ACENIC is not set
# CONFIG_ALTERA_TSE is not set
CONFIG_NET_VENDOR_AMAZON=y
# CONFIG_ENA_ETHERNET is not set
# CONFIG_NET_VENDOR_AMD is not set
# CONFIG_NET_VENDOR_AQUANTIA is not set
# CONFIG_NET_VENDOR_ARC is not set
CONFIG_NET_VENDOR_ASIX=y
# CONFIG_SPI_AX88796C is not set
# CONFIG_NET_VENDOR_ATHEROS is not set
# CONFIG_CX_ECAT is not set
# CONFIG_NET_VENDOR_BROADCOM is not set
# CONFIG_NET_VENDOR_CADENCE is not set
# CONFIG_NET_VENDOR_CAVIUM is not set
# CONFIG_NET_VENDOR_CHELSIO is not set
CONFIG_NET_VENDOR_CISCO=y
# CONFIG_ENIC is not set
# CONFIG_NET_VENDOR_CORTINA is not set
CONFIG_NET_VENDOR_DAVICOM=y
# CONFIG_DM9051 is not set
# CONFIG_NET_VENDOR_DEC is not set
# CONFIG_NET_VENDOR_DLINK is not set
# CONFIG_NET_VENDOR_EMULEX is not set
CONFIG_NET_VENDOR_ENGLEDER=y
# CONFIG_TSNEP is not set
# CONFIG_NET_VENDOR_EZCHIP is not set
# CONFIG_NET_VENDOR_FUJITSU is not set
CONFIG_NET_VENDOR_FUNGIBLE=y
# CONFIG_FUN_ETH is not set
CONFIG_NET_VENDOR_GOOGLE=y
CONFIG_GVE=y
CONFIG_NET_VENDOR_HISILICON=y
# CONFIG_HIBMCGE is not set
# CONFIG_NET_VENDOR_HUAWEI is not set
CONFIG_NET_VENDOR_I825XX=y
CONFIG_NET_VENDOR_INTEL=y
CONFIG_E100=y
CONFIG_E1000=y
CONFIG_E1000E=y
CONFIG_E1000E_HWTS=y
# CONFIG_IGB is not set
# CONFIG_IGBVF is not set
# CONFIG_IXGBE is not set
# CONFIG_IXGBEVF is not set
# CONFIG_I40E is not set
# CONFIG_I40EVF is not set
# CONFIG_ICE is not set
# CONFIG_FM10K is not set
# CONFIG_IGC is not set
# CONFIG_IDPF is not set
# CONFIG_JME is not set
# CONFIG_NET_VENDOR_ADI is not set
CONFIG_NET_VENDOR_LITEX=y
# CONFIG_LITEX_LITEETH is not set
# CONFIG_NET_VENDOR_MARVELL is not set
CONFIG_NET_VENDOR_MELLANOX=y
# CONFIG_MLX4_EN is not set
CONFIG_MLX4_CORE=y
# CONFIG_MLX4_DEBUG is not set
# CONFIG_MLX4_CORE_GEN2 is not set
# CONFIG_MLX5_CORE is not set
# CONFIG_MLXSW_CORE is not set
# CONFIG_MLXFW is not set
CONFIG_NET_VENDOR_META=y
# CONFIG_FBNIC is not set
# CONFIG_NET_VENDOR_MICREL is not set
# CONFIG_NET_VENDOR_MICROCHIP is not set
# CONFIG_NET_VENDOR_MICROSEMI is not set
CONFIG_NET_VENDOR_MICROSOFT=y
CONFIG_NET_VENDOR_MUCSE=y
# CONFIG_MGBE is not set
# CONFIG_NET_VENDOR_MYRI is not set
# CONFIG_FEALNX is not set
# CONFIG_NET_VENDOR_NI is not set
# CONFIG_NET_VENDOR_NATSEMI is not set
# CONFIG_NET_VENDOR_NETRONOME is not set
# CONFIG_NET_VENDOR_NVIDIA is not set
# CONFIG_NET_VENDOR_OKI is not set
# CONFIG_ETHOC is not set
# CONFIG_NET_VENDOR_PACKET_ENGINES is not set
# CONFIG_NET_VENDOR_PENSANDO is not set
# CONFIG_NET_VENDOR_QLOGIC is not set
# CONFIG_NET_VENDOR_BROCADE is not set
# CONFIG_NET_VENDOR_QUALCOMM is not set
# CONFIG_NET_VENDOR_RDC is not set
# CONFIG_NET_VENDOR_REALTEK is not set
# CONFIG_NET_VENDOR_RENESAS is not set
# CONFIG_NET_VENDOR_ROCKER is not set
# CONFIG_NET_VENDOR_SAMSUNG is not set
# CONFIG_NET_VENDOR_SEEQ is not set
# CONFIG_NET_VENDOR_SILAN is not set
# CONFIG_NET_VENDOR_SIS is not set
# CONFIG_NET_VENDOR_SOLARFLARE is not set
# CONFIG_NET_VENDOR_SMSC is not set
# CONFIG_NET_VENDOR_SOCIONEXT is not set
# CONFIG_NET_VENDOR_STMICRO is not set
# CONFIG_NET_VENDOR_SUN is not set
# CONFIG_NET_VENDOR_SYNOPSYS is not set
# CONFIG_NET_VENDOR_TEHUTI is not set
# CONFIG_NET_VENDOR_TI is not set
CONFIG_NET_VENDOR_VERTEXCOM=y
# CONFIG_MSE102X is not set
# CONFIG_NET_VENDOR_VIA is not set
CONFIG_NET_VENDOR_WANGXUN=y
# CONFIG_NGBE is not set
# CONFIG_TXGBE is not set
# CONFIG_TXGBEVF is not set
# CONFIG_NGBEVF is not set
# CONFIG_NET_VENDOR_WIZNET is not set
# CONFIG_NET_VENDOR_XILINX is not set
# CONFIG_NET_VENDOR_XIRCOM is not set
CONFIG_FDDI=y
# CONFIG_DEFXX is not set
# CONFIG_SKFP is not set
CONFIG_MDIO_BUS=y
CONFIG_PHYLINK=y
CONFIG_PHYLIB=y
CONFIG_SWPHY=y
# CONFIG_LED_TRIGGER_PHY is not set
CONFIG_PHYLIB_LEDS=y
CONFIG_FIXED_PHY=y
# CONFIG_SFP is not set

#
# MII PHY device drivers
#
# CONFIG_AS21XXX_PHY is not set
# CONFIG_AIR_EN8811H_PHY is not set
# CONFIG_AMD_PHY is not set
# CONFIG_ADIN_PHY is not set
# CONFIG_ADIN1100_PHY is not set
# CONFIG_AQUANTIA_PHY is not set
CONFIG_AX88796B_PHY=y
# CONFIG_BROADCOM_PHY is not set
# CONFIG_BCM54140_PHY is not set
# CONFIG_BCM7XXX_PHY is not set
# CONFIG_BCM84881_PHY is not set
# CONFIG_BCM87XX_PHY is not set
# CONFIG_CICADA_PHY is not set
# CONFIG_CORTINA_PHY is not set
# CONFIG_DAVICOM_PHY is not set
# CONFIG_ICPLUS_PHY is not set
# CONFIG_LXT_PHY is not set
# CONFIG_INTEL_XWAY_PHY is not set
# CONFIG_LSI_ET1011C_PHY is not set
# CONFIG_MARVELL_PHY is not set
# CONFIG_MARVELL_10G_PHY is not set
# CONFIG_MARVELL_88Q2XXX_PHY is not set
# CONFIG_MARVELL_88X2222_PHY is not set
# CONFIG_MAXLINEAR_GPHY is not set
# CONFIG_MAXLINEAR_86110_PHY is not set
# CONFIG_MEDIATEK_GE_PHY is not set
# CONFIG_MICREL_PHY is not set
# CONFIG_MICROCHIP_T1S_PHY is not set
CONFIG_MICROCHIP_PHY=y
# CONFIG_MICROCHIP_T1_PHY is not set
# CONFIG_MICROSEMI_PHY is not set
# CONFIG_MOTORCOMM_PHY is not set
# CONFIG_NATIONAL_PHY is not set
# CONFIG_NXP_CBTX_PHY is not set
# CONFIG_NXP_C45_TJA11XX_PHY is not set
# CONFIG_NXP_TJA11XX_PHY is not set
# CONFIG_NCN26000_PHY is not set
# CONFIG_AT803X_PHY is not set
# CONFIG_QCA83XX_PHY is not set
# CONFIG_QCA808X_PHY is not set
# CONFIG_QCA807X_PHY is not set
# CONFIG_QSEMI_PHY is not set
CONFIG_REALTEK_PHY=y
# CONFIG_REALTEK_PHY_HWMON is not set
# CONFIG_RENESAS_PHY is not set
# CONFIG_ROCKCHIP_PHY is not set
CONFIG_SMSC_PHY=y
# CONFIG_STE10XP is not set
# CONFIG_TERANETICS_PHY is not set
# CONFIG_DP83822_PHY is not set
# CONFIG_DP83TC811_PHY is not set
# CONFIG_DP83848_PHY is not set
# CONFIG_DP83867_PHY is not set
# CONFIG_DP83869_PHY is not set
# CONFIG_DP83TD510_PHY is not set
# CONFIG_DP83TG720_PHY is not set
# CONFIG_VITESSE_PHY is not set
# CONFIG_XILINX_GMII2RGMII is not set
# CONFIG_PSE_CONTROLLER is not set
CONFIG_CAN_DEV=y
CONFIG_CAN_VCAN=y
CONFIG_CAN_VXCAN=y
CONFIG_CAN_NETLINK=y
CONFIG_CAN_CALC_BITTIMING=y
CONFIG_CAN_RX_OFFLOAD=y
# CONFIG_CAN_CAN327 is not set
# CONFIG_CAN_DUMMY is not set
# CONFIG_CAN_FLEXCAN is not set
# CONFIG_CAN_GRCAN is not set
# CONFIG_CAN_KVASER_PCIEFD is not set
CONFIG_CAN_SLCAN=y
# CONFIG_CAN_C_CAN is not set
# CONFIG_CAN_CC770 is not set
# CONFIG_CAN_CTUCANFD_PCI is not set
# CONFIG_CAN_CTUCANFD_PLATFORM is not set
# CONFIG_CAN_ESD_402_PCI is not set
CONFIG_CAN_IFI_CANFD=y
# CONFIG_CAN_M_CAN is not set
# CONFIG_CAN_PEAK_PCIEFD is not set
# CONFIG_CAN_SJA1000 is not set
# CONFIG_CAN_SOFTING is not set

#
# CAN SPI interfaces
#
# CONFIG_CAN_HI311X is not set
# CONFIG_CAN_MCP251X is not set
# CONFIG_CAN_MCP251XFD is not set
# end of CAN SPI interfaces

#
# CAN USB interfaces
#
CONFIG_CAN_8DEV_USB=y
CONFIG_CAN_EMS_USB=y
CONFIG_CAN_ESD_USB=y
CONFIG_CAN_ETAS_ES58X=y
CONFIG_CAN_F81604=y
CONFIG_CAN_GS_USB=y
CONFIG_CAN_KVASER_USB=y
CONFIG_CAN_MCBA_USB=y
CONFIG_CAN_PEAK_USB=y
CONFIG_CAN_UCAN=y
# end of CAN USB interfaces

# CONFIG_CAN_DEBUG_DEVICES is not set

#
# MCTP Device Drivers
#
# CONFIG_MCTP_SERIAL is not set
# CONFIG_MCTP_TRANSPORT_USB is not set
# end of MCTP Device Drivers

CONFIG_FWNODE_MDIO=y
CONFIG_OF_MDIO=y
CONFIG_ACPI_MDIO=y
# CONFIG_MDIO_BITBANG is not set
# CONFIG_MDIO_BCM_UNIMAC is not set
# CONFIG_MDIO_HISI_FEMAC is not set
CONFIG_MDIO_MVUSB=y
# CONFIG_MDIO_MSCC_MIIM is not set
# CONFIG_MDIO_OCTEON is not set
# CONFIG_MDIO_IPQ4019 is not set
# CONFIG_MDIO_IPQ8064 is not set
# CONFIG_MDIO_THUNDER is not set

#
# MDIO Multiplexers
#
# CONFIG_MDIO_BUS_MUX_GPIO is not set
# CONFIG_MDIO_BUS_MUX_MULTIPLEXER is not set
# CONFIG_MDIO_BUS_MUX_MMIOREG is not set

#
# PCS device drivers
#
# CONFIG_PCS_XPCS is not set
# end of PCS device drivers

# CONFIG_PLIP is not set
CONFIG_PPP=y
CONFIG_PPP_BSDCOMP=y
CONFIG_PPP_DEFLATE=y
CONFIG_PPP_FILTER=y
CONFIG_PPP_MPPE=y
CONFIG_PPP_MULTILINK=y
CONFIG_PPPOATM=y
CONFIG_PPPOE=y
CONFIG_PPPOE_HASH_BITS_1=y
# CONFIG_PPPOE_HASH_BITS_2 is not set
# CONFIG_PPPOE_HASH_BITS_4 is not set
# CONFIG_PPPOE_HASH_BITS_8 is not set
CONFIG_PPPOE_HASH_BITS=1
CONFIG_PPTP=y
CONFIG_PPPOL2TP=y
CONFIG_PPP_ASYNC=y
CONFIG_PPP_SYNC_TTY=y
CONFIG_SLIP=y
CONFIG_SLHC=y
CONFIG_SLIP_COMPRESSED=y
CONFIG_SLIP_SMART=y
CONFIG_SLIP_MODE_SLIP6=y
CONFIG_USB_NET_DRIVERS=y
CONFIG_USB_CATC=y
CONFIG_USB_KAWETH=y
CONFIG_USB_PEGASUS=y
CONFIG_USB_RTL8150=y
CONFIG_USB_RTL8152=y
CONFIG_USB_LAN78XX=y
CONFIG_USB_USBNET=y
CONFIG_USB_NET_AX8817X=y
CONFIG_USB_NET_AX88179_178A=y
CONFIG_USB_NET_CDCETHER=y
CONFIG_USB_NET_CDC_EEM=y
CONFIG_USB_NET_CDC_NCM=y
CONFIG_USB_NET_HUAWEI_CDC_NCM=y
CONFIG_USB_NET_CDC_MBIM=y
CONFIG_USB_NET_DM9601=y
CONFIG_USB_NET_SR9700=y
CONFIG_USB_NET_SR9800=y
CONFIG_USB_NET_SMSC75XX=y
CONFIG_USB_NET_SMSC95XX=y
CONFIG_USB_NET_GL620A=y
CONFIG_USB_NET_NET1080=y
CONFIG_USB_NET_PLUSB=y
CONFIG_USB_NET_MCS7830=y
CONFIG_USB_NET_RNDIS_HOST=y
CONFIG_USB_NET_CDC_SUBSET_ENABLE=y
CONFIG_USB_NET_CDC_SUBSET=y
CONFIG_USB_ALI_M5632=y
CONFIG_USB_AN2720=y
CONFIG_USB_BELKIN=y
CONFIG_USB_ARMLINUX=y
CONFIG_USB_EPSON2888=y
CONFIG_USB_KC2190=y
CONFIG_USB_NET_ZAURUS=y
CONFIG_USB_NET_CX82310_ETH=y
CONFIG_USB_NET_KALMIA=y
CONFIG_USB_NET_QMI_WWAN=y
CONFIG_USB_HSO=y
CONFIG_USB_NET_INT51X1=y
CONFIG_USB_CDC_PHONET=y
CONFIG_USB_IPHETH=y
CONFIG_USB_SIERRA_NET=y
CONFIG_USB_VL600=y
CONFIG_USB_NET_CH9200=y
CONFIG_USB_NET_AQC111=y
CONFIG_USB_RTL8153_ECM=y
CONFIG_WLAN=y
CONFIG_WLAN_VENDOR_ADMTEK=y
# CONFIG_ADM8211 is not set
CONFIG_ATH_COMMON=y
CONFIG_WLAN_VENDOR_ATH=y
# CONFIG_ATH_DEBUG is not set
# CONFIG_ATH5K is not set
# CONFIG_ATH5K_PCI is not set
CONFIG_ATH9K_HW=y
CONFIG_ATH9K_COMMON=y
CONFIG_ATH9K_COMMON_DEBUG=y
CONFIG_ATH9K_BTCOEX_SUPPORT=y
CONFIG_ATH9K=y
# CONFIG_ATH9K_PCI is not set
# CONFIG_ATH9K_AHB is not set
CONFIG_ATH9K_DEBUGFS=y
# CONFIG_ATH9K_STATION_STATISTICS is not set
# CONFIG_ATH9K_DYNACK is not set
# CONFIG_ATH9K_WOW is not set
# CONFIG_ATH9K_RFKILL is not set
# CONFIG_ATH9K_CHANNEL_CONTEXT is not set
# CONFIG_ATH9K_PCOEM is not set
CONFIG_ATH9K_HTC=y
CONFIG_ATH9K_HTC_DEBUGFS=y
# CONFIG_ATH9K_HWRNG is not set
CONFIG_ATH9K_COMMON_SPECTRAL=y
CONFIG_CARL9170=y
CONFIG_CARL9170_LEDS=y
# CONFIG_CARL9170_DEBUGFS is not set
CONFIG_CARL9170_WPC=y
CONFIG_CARL9170_HWRNG=y
CONFIG_ATH6KL=y
# CONFIG_ATH6KL_SDIO is not set
CONFIG_ATH6KL_USB=y
# CONFIG_ATH6KL_DEBUG is not set
# CONFIG_ATH6KL_TRACING is not set
CONFIG_AR5523=y
# CONFIG_WIL6210 is not set
CONFIG_ATH10K=y
CONFIG_ATH10K_CE=y
# CONFIG_ATH10K_PCI is not set
# CONFIG_ATH10K_SDIO is not set
CONFIG_ATH10K_USB=y
# CONFIG_ATH10K_DEBUG is not set
# CONFIG_ATH10K_DEBUGFS is not set
CONFIG_ATH10K_LEDS=y
# CONFIG_ATH10K_TRACING is not set
# CONFIG_WCN36XX is not set
# CONFIG_ATH11K is not set
# CONFIG_ATH12K is not set
CONFIG_WLAN_VENDOR_ATMEL=y
CONFIG_AT76C50X_USB=y
CONFIG_WLAN_VENDOR_BROADCOM=y
# CONFIG_B43 is not set
# CONFIG_B43LEGACY is not set
CONFIG_BRCMUTIL=y
# CONFIG_BRCMSMAC is not set
CONFIG_BRCMFMAC=y
CONFIG_BRCMFMAC_PROTO_BCDC=y
# CONFIG_BRCMFMAC_SDIO is not set
CONFIG_BRCMFMAC_USB=y
# CONFIG_BRCMFMAC_PCIE is not set
# CONFIG_BRCM_TRACING is not set
# CONFIG_BRCMDBG is not set
CONFIG_WLAN_VENDOR_INTEL=y
# CONFIG_IPW2100 is not set
# CONFIG_IPW2200 is not set
# CONFIG_IWL4965 is not set
# CONFIG_IWL3945 is not set
# CONFIG_IWLWIFI is not set
CONFIG_WLAN_VENDOR_INTERSIL=y
CONFIG_P54_COMMON=y
CONFIG_P54_USB=y
# CONFIG_P54_PCI is not set
# CONFIG_P54_SPI is not set
CONFIG_P54_LEDS=y
CONFIG_WLAN_VENDOR_MARVELL=y
CONFIG_LIBERTAS=y
CONFIG_LIBERTAS_USB=y
CONFIG_LIBERTAS_SDIO=y
CONFIG_LIBERTAS_SPI=y
# CONFIG_LIBERTAS_DEBUG is not set
CONFIG_LIBERTAS_MESH=y
CONFIG_LIBERTAS_THINFIRM=y
# CONFIG_LIBERTAS_THINFIRM_DEBUG is not set
CONFIG_LIBERTAS_THINFIRM_USB=y
CONFIG_MWIFIEX=y
# CONFIG_MWIFIEX_SDIO is not set
# CONFIG_MWIFIEX_PCIE is not set
CONFIG_MWIFIEX_USB=y
# CONFIG_MWL8K is not set
CONFIG_WLAN_VENDOR_MEDIATEK=y
CONFIG_MT7601U=y
CONFIG_MT76_CORE=y
CONFIG_MT76_LEDS=y
CONFIG_MT76_USB=y
CONFIG_MT76x02_LIB=y
CONFIG_MT76x02_USB=y
CONFIG_MT76_CONNAC_LIB=y
CONFIG_MT792x_LIB=y
CONFIG_MT792x_USB=y
CONFIG_MT76x0_COMMON=y
CONFIG_MT76x0U=y
# CONFIG_MT76x0E is not set
CONFIG_MT76x2_COMMON=y
# CONFIG_MT76x2E is not set
CONFIG_MT76x2U=y
# CONFIG_MT7603E is not set
CONFIG_MT7615_COMMON=y
# CONFIG_MT7615E is not set
CONFIG_MT7663_USB_SDIO_COMMON=y
CONFIG_MT7663U=y
# CONFIG_MT7663S is not set
# CONFIG_MT7915E is not set
CONFIG_MT7921_COMMON=y
# CONFIG_MT7921E is not set
# CONFIG_MT7921S is not set
CONFIG_MT7921U=y
# CONFIG_MT7996E is not set
CONFIG_MT7925_COMMON=y
# CONFIG_MT7925E is not set
CONFIG_MT7925U=y
CONFIG_WLAN_VENDOR_MICROCHIP=y
CONFIG_WILC1000=y
CONFIG_WILC1000_SDIO=y
# CONFIG_WILC1000_SPI is not set
# CONFIG_WILC1000_HW_OOB_INTR is not set
CONFIG_WLAN_VENDOR_PURELIFI=y
CONFIG_PLFXLC=y
CONFIG_WLAN_VENDOR_RALINK=y
CONFIG_RT2X00=y
# CONFIG_RT2400PCI is not set
# CONFIG_RT2500PCI is not set
# CONFIG_RT61PCI is not set
# CONFIG_RT2800PCI is not set
CONFIG_RT2500USB=y
CONFIG_RT73USB=y
CONFIG_RT2800USB=y
CONFIG_RT2800USB_RT33XX=y
CONFIG_RT2800USB_RT35XX=y
CONFIG_RT2800USB_RT3573=y
CONFIG_RT2800USB_RT53XX=y
CONFIG_RT2800USB_RT55XX=y
CONFIG_RT2800USB_UNKNOWN=y
CONFIG_RT2800_LIB=y
CONFIG_RT2X00_LIB_USB=y
CONFIG_RT2X00_LIB=y
CONFIG_RT2X00_LIB_FIRMWARE=y
CONFIG_RT2X00_LIB_CRYPTO=y
CONFIG_RT2X00_LIB_LEDS=y
# CONFIG_RT2X00_LIB_DEBUGFS is not set
# CONFIG_RT2X00_DEBUG is not set
CONFIG_WLAN_VENDOR_REALTEK=y
# CONFIG_RTL8180 is not set
CONFIG_RTL8187=y
CONFIG_RTL8187_LEDS=y
CONFIG_RTL_CARDS=y
CONFIG_RTL8192CE=y
CONFIG_RTL8192SE=y
CONFIG_RTL8192DE=y
CONFIG_RTL8723AE=y
CONFIG_RTL8723BE=y
CONFIG_RTL8188EE=y
CONFIG_RTL8192EE=y
CONFIG_RTL8821AE=y
CONFIG_RTL8192CU=y
# CONFIG_RTL8192DU is not set
CONFIG_RTLWIFI=y
CONFIG_RTLWIFI_PCI=y
CONFIG_RTLWIFI_USB=y
# CONFIG_RTLWIFI_DEBUG is not set
CONFIG_RTL8192C_COMMON=y
CONFIG_RTL8192D_COMMON=y
CONFIG_RTL8723_COMMON=y
CONFIG_RTLBTCOEXIST=y
CONFIG_RTL8XXXU=y
CONFIG_RTL8XXXU_UNTESTED=y
CONFIG_RTW88=y
CONFIG_RTW88_CORE=y
CONFIG_RTW88_USB=y
CONFIG_RTW88_8822B=y
CONFIG_RTW88_8822C=y
CONFIG_RTW88_8723X=y
CONFIG_RTW88_8723D=y
CONFIG_RTW88_8821C=y
# CONFIG_RTW88_8822BE is not set
# CONFIG_RTW88_8822BS is not set
CONFIG_RTW88_8822BU=y
# CONFIG_RTW88_8822CE is not set
# CONFIG_RTW88_8822CS is not set
CONFIG_RTW88_8822CU=y
# CONFIG_RTW88_8723DE is not set
# CONFIG_RTW88_8723DS is not set
# CONFIG_RTW88_8723CS is not set
CONFIG_RTW88_8723DU=y
# CONFIG_RTW88_8821CE is not set
# CONFIG_RTW88_8821CS is not set
CONFIG_RTW88_8821CU=y
# CONFIG_RTW88_8821AU is not set
# CONFIG_RTW88_8812AU is not set
# CONFIG_RTW88_8814AE is not set
# CONFIG_RTW88_8814AU is not set
# CONFIG_RTW88_DEBUG is not set
# CONFIG_RTW88_DEBUGFS is not set
CONFIG_RTW88_LEDS=y
CONFIG_RTW89=y
# CONFIG_RTW89_8851BE is not set
# CONFIG_RTW89_8851BU is not set
# CONFIG_RTW89_8852AE is not set
# CONFIG_RTW89_8852AU is not set
# CONFIG_RTW89_8852BE is not set
# CONFIG_RTW89_8852BU is not set
# CONFIG_RTW89_8852BTE is not set
# CONFIG_RTW89_8852CE is not set
# CONFIG_RTW89_8852CU is not set
# CONFIG_RTW89_8922AE is not set
CONFIG_WLAN_VENDOR_RSI=y
CONFIG_RSI_91X=y
# CONFIG_RSI_DEBUGFS is not set
# CONFIG_RSI_SDIO is not set
CONFIG_RSI_USB=y
# CONFIG_RSI_COEX is not set
CONFIG_WLAN_VENDOR_SILABS=y
# CONFIG_WFX is not set
CONFIG_WLAN_VENDOR_ST=y
# CONFIG_CW1200 is not set
CONFIG_WLAN_VENDOR_TI=y
# CONFIG_WL1251 is not set
# CONFIG_WL12XX is not set
# CONFIG_WL18XX is not set
# CONFIG_WLCORE is not set
CONFIG_WLAN_VENDOR_ZYDAS=y
CONFIG_ZD1211RW=y
# CONFIG_ZD1211RW_DEBUG is not set
CONFIG_WLAN_VENDOR_QUANTENNA=y
# CONFIG_QTNFMAC_PCIE is not set
# CONFIG_MAC80211_HWSIM is not set
# CONFIG_VIRT_WIFI is not set
CONFIG_WAN=y
CONFIG_HDLC=y
CONFIG_HDLC_RAW=y
CONFIG_HDLC_RAW_ETH=y
CONFIG_HDLC_CISCO=y
CONFIG_HDLC_FR=y
CONFIG_HDLC_PPP=y
CONFIG_HDLC_X25=y
# CONFIG_FRAMER is not set
# CONFIG_PCI200SYN is not set
# CONFIG_WANXL is not set
# CONFIG_PC300TOO is not set
# CONFIG_FARSYNC is not set
CONFIG_LAPBETHER=y
CONFIG_IEEE802154_DRIVERS=y
# CONFIG_IEEE802154_FAKELB is not set
# CONFIG_IEEE802154_AT86RF230 is not set
# CONFIG_IEEE802154_MRF24J40 is not set
# CONFIG_IEEE802154_CC2520 is not set
CONFIG_IEEE802154_ATUSB=y
# CONFIG_IEEE802154_ADF7242 is not set
# CONFIG_IEEE802154_CA8210 is not set
# CONFIG_IEEE802154_MCR20A is not set
CONFIG_IEEE802154_HWSIM=y

#
# Wireless WAN
#
# CONFIG_WWAN is not set
# end of Wireless WAN

CONFIG_VMXNET3=y
# CONFIG_FUJITSU_ES is not set
CONFIG_USB4_NET=y
CONFIG_NETDEVSIM=y
CONFIG_NET_FAILOVER=y
CONFIG_ISDN=y
CONFIG_ISDN_CAPI=y
CONFIG_MISDN=y
CONFIG_MISDN_DSP=y
CONFIG_MISDN_L1OIP=y

#
# mISDN hardware drivers
#
# CONFIG_MISDN_HFCPCI is not set
# CONFIG_MISDN_HFCMULTI is not set
CONFIG_MISDN_HFCUSB=y
# CONFIG_MISDN_AVMFRITZ is not set
# CONFIG_MISDN_SPEEDFAX is not set
# CONFIG_MISDN_INFINEON is not set
# CONFIG_MISDN_W6692 is not set
# CONFIG_MISDN_NETJET is not set

#
# Input device support
#
CONFIG_INPUT=y
CONFIG_INPUT_LEDS=y
CONFIG_INPUT_FF_MEMLESS=y
CONFIG_INPUT_SPARSEKMAP=y
# CONFIG_INPUT_MATRIXKMAP is not set
CONFIG_INPUT_VIVALDIFMAP=y

#
# Userland interfaces
#
# CONFIG_INPUT_MOUSEDEV is not set
# CONFIG_INPUT_JOYDEV is not set
CONFIG_INPUT_EVDEV=y

#
# Input Device Drivers
#
CONFIG_INPUT_KEYBOARD=y
# CONFIG_KEYBOARD_ADC is not set
# CONFIG_KEYBOARD_ADP5588 is not set
CONFIG_KEYBOARD_ATKBD=y
# CONFIG_KEYBOARD_QT1050 is not set
# CONFIG_KEYBOARD_QT1070 is not set
# CONFIG_KEYBOARD_QT2160 is not set
# CONFIG_KEYBOARD_DLINK_DIR685 is not set
# CONFIG_KEYBOARD_LKKBD is not set
# CONFIG_KEYBOARD_GPIO is not set
# CONFIG_KEYBOARD_GPIO_POLLED is not set
# CONFIG_KEYBOARD_TCA8418 is not set
# CONFIG_KEYBOARD_MATRIX is not set
# CONFIG_KEYBOARD_LM8323 is not set
# CONFIG_KEYBOARD_LM8333 is not set
# CONFIG_KEYBOARD_MAX7359 is not set
# CONFIG_KEYBOARD_MPR121 is not set
# CONFIG_KEYBOARD_NEWTON is not set
# CONFIG_KEYBOARD_OPENCORES is not set
# CONFIG_KEYBOARD_PINEPHONE is not set
# CONFIG_KEYBOARD_SAMSUNG is not set
# CONFIG_KEYBOARD_STOWAWAY is not set
# CONFIG_KEYBOARD_SUNKBD is not set
# CONFIG_KEYBOARD_OMAP4 is not set
# CONFIG_KEYBOARD_TM2_TOUCHKEY is not set
# CONFIG_KEYBOARD_TWL4030 is not set
# CONFIG_KEYBOARD_XTKBD is not set
# CONFIG_KEYBOARD_CROS_EC is not set
# CONFIG_KEYBOARD_CAP11XX is not set
# CONFIG_KEYBOARD_BCM is not set
# CONFIG_KEYBOARD_CYPRESS_SF is not set
CONFIG_INPUT_MOUSE=y
CONFIG_MOUSE_PS2=y
CONFIG_MOUSE_PS2_ALPS=y
CONFIG_MOUSE_PS2_BYD=y
CONFIG_MOUSE_PS2_LOGIPS2PP=y
CONFIG_MOUSE_PS2_SYNAPTICS=y
CONFIG_MOUSE_PS2_SYNAPTICS_SMBUS=y
CONFIG_MOUSE_PS2_CYPRESS=y
CONFIG_MOUSE_PS2_LIFEBOOK=y
CONFIG_MOUSE_PS2_TRACKPOINT=y
# CONFIG_MOUSE_PS2_ELANTECH is not set
# CONFIG_MOUSE_PS2_SENTELIC is not set
# CONFIG_MOUSE_PS2_TOUCHKIT is not set
CONFIG_MOUSE_PS2_FOCALTECH=y
# CONFIG_MOUSE_PS2_VMMOUSE is not set
CONFIG_MOUSE_PS2_SMBUS=y
# CONFIG_MOUSE_SERIAL is not set
CONFIG_MOUSE_APPLETOUCH=y
CONFIG_MOUSE_BCM5974=y
# CONFIG_MOUSE_CYAPA is not set
# CONFIG_MOUSE_ELAN_I2C is not set
# CONFIG_MOUSE_VSXXXAA is not set
# CONFIG_MOUSE_GPIO is not set
# CONFIG_MOUSE_SYNAPTICS_I2C is not set
CONFIG_MOUSE_SYNAPTICS_USB=y
CONFIG_INPUT_JOYSTICK=y
# CONFIG_JOYSTICK_ANALOG is not set
# CONFIG_JOYSTICK_A3D is not set
# CONFIG_JOYSTICK_ADC is not set
# CONFIG_JOYSTICK_ADI is not set
# CONFIG_JOYSTICK_COBRA is not set
# CONFIG_JOYSTICK_GF2K is not set
# CONFIG_JOYSTICK_GRIP is not set
# CONFIG_JOYSTICK_GRIP_MP is not set
# CONFIG_JOYSTICK_GUILLEMOT is not set
# CONFIG_JOYSTICK_INTERACT is not set
# CONFIG_JOYSTICK_SIDEWINDER is not set
# CONFIG_JOYSTICK_TMDC is not set
CONFIG_JOYSTICK_IFORCE=y
CONFIG_JOYSTICK_IFORCE_USB=y
# CONFIG_JOYSTICK_IFORCE_232 is not set
# CONFIG_JOYSTICK_WARRIOR is not set
# CONFIG_JOYSTICK_MAGELLAN is not set
# CONFIG_JOYSTICK_SPACEORB is not set
# CONFIG_JOYSTICK_SPACEBALL is not set
# CONFIG_JOYSTICK_STINGER is not set
# CONFIG_JOYSTICK_TWIDJOY is not set
# CONFIG_JOYSTICK_ZHENHUA is not set
# CONFIG_JOYSTICK_DB9 is not set
# CONFIG_JOYSTICK_GAMECON is not set
# CONFIG_JOYSTICK_TURBOGRAFX is not set
# CONFIG_JOYSTICK_AS5011 is not set
# CONFIG_JOYSTICK_JOYDUMP is not set
CONFIG_JOYSTICK_XPAD=y
CONFIG_JOYSTICK_XPAD_FF=y
CONFIG_JOYSTICK_XPAD_LEDS=y
# CONFIG_JOYSTICK_WALKERA0701 is not set
# CONFIG_JOYSTICK_PSXPAD_SPI is not set
CONFIG_JOYSTICK_PXRC=y
# CONFIG_JOYSTICK_QWIIC is not set
# CONFIG_JOYSTICK_FSIA6B is not set
# CONFIG_JOYSTICK_SENSEHAT is not set
# CONFIG_JOYSTICK_SEESAW is not set
CONFIG_INPUT_TABLET=y
CONFIG_TABLET_USB_ACECAD=y
CONFIG_TABLET_USB_AIPTEK=y
CONFIG_TABLET_USB_HANWANG=y
CONFIG_TABLET_USB_KBTAB=y
CONFIG_TABLET_USB_PEGASUS=y
# CONFIG_TABLET_SERIAL_WACOM4 is not set
CONFIG_INPUT_TOUCHSCREEN=y
# CONFIG_TOUCHSCREEN_ADS7846 is not set
# CONFIG_TOUCHSCREEN_AD7877 is not set
# CONFIG_TOUCHSCREEN_AD7879 is not set
# CONFIG_TOUCHSCREEN_ADC is not set
# CONFIG_TOUCHSCREEN_AR1021_I2C is not set
# CONFIG_TOUCHSCREEN_ATMEL_MXT is not set
# CONFIG_TOUCHSCREEN_AUO_PIXCIR is not set
# CONFIG_TOUCHSCREEN_BU21013 is not set
# CONFIG_TOUCHSCREEN_BU21029 is not set
# CONFIG_TOUCHSCREEN_CHIPONE_ICN8318 is not set
# CONFIG_TOUCHSCREEN_CHIPONE_ICN8505 is not set
# CONFIG_TOUCHSCREEN_CY8CTMA140 is not set
# CONFIG_TOUCHSCREEN_CY8CTMG110 is not set
# CONFIG_TOUCHSCREEN_CYTTSP_CORE is not set
# CONFIG_TOUCHSCREEN_CYTTSP5 is not set
# CONFIG_TOUCHSCREEN_DYNAPRO is not set
# CONFIG_TOUCHSCREEN_HAMPSHIRE is not set
# CONFIG_TOUCHSCREEN_EETI is not set
# CONFIG_TOUCHSCREEN_EGALAX is not set
# CONFIG_TOUCHSCREEN_EGALAX_SERIAL is not set
# CONFIG_TOUCHSCREEN_EXC3000 is not set
# CONFIG_TOUCHSCREEN_FUJITSU is not set
# CONFIG_TOUCHSCREEN_GOODIX is not set
# CONFIG_TOUCHSCREEN_GOODIX_BERLIN_I2C is not set
# CONFIG_TOUCHSCREEN_GOODIX_BERLIN_SPI is not set
# CONFIG_TOUCHSCREEN_HIDEEP is not set
# CONFIG_TOUCHSCREEN_HIMAX_HX852X is not set
# CONFIG_TOUCHSCREEN_HYCON_HY46XX is not set
# CONFIG_TOUCHSCREEN_HYNITRON_CSTXXX is not set
# CONFIG_TOUCHSCREEN_HYNITRON_CST816X is not set
# CONFIG_TOUCHSCREEN_ILI210X is not set
# CONFIG_TOUCHSCREEN_ILITEK is not set
# CONFIG_TOUCHSCREEN_S6SY761 is not set
# CONFIG_TOUCHSCREEN_GUNZE is not set
# CONFIG_TOUCHSCREEN_EKTF2127 is not set
# CONFIG_TOUCHSCREEN_ELAN is not set
# CONFIG_TOUCHSCREEN_ELO is not set
# CONFIG_TOUCHSCREEN_WACOM_W8001 is not set
# CONFIG_TOUCHSCREEN_WACOM_I2C is not set
# CONFIG_TOUCHSCREEN_MAX11801 is not set
# CONFIG_TOUCHSCREEN_MMS114 is not set
# CONFIG_TOUCHSCREEN_MELFAS_MIP4 is not set
# CONFIG_TOUCHSCREEN_MSG2638 is not set
# CONFIG_TOUCHSCREEN_MTOUCH is not set
# CONFIG_TOUCHSCREEN_NOVATEK_NVT_TS is not set
# CONFIG_TOUCHSCREEN_IMAGIS is not set
# CONFIG_TOUCHSCREEN_IMX6UL_TSC is not set
# CONFIG_TOUCHSCREEN_INEXIO is not set
# CONFIG_TOUCHSCREEN_PENMOUNT is not set
# CONFIG_TOUCHSCREEN_EDT_FT5X06 is not set
# CONFIG_TOUCHSCREEN_TOUCHRIGHT is not set
# CONFIG_TOUCHSCREEN_TOUCHWIN is not set
# CONFIG_TOUCHSCREEN_PIXCIR is not set
# CONFIG_TOUCHSCREEN_WDT87XX_I2C is not set
CONFIG_TOUCHSCREEN_USB_COMPOSITE=y
CONFIG_TOUCHSCREEN_USB_EGALAX=y
CONFIG_TOUCHSCREEN_USB_PANJIT=y
CONFIG_TOUCHSCREEN_USB_3M=y
CONFIG_TOUCHSCREEN_USB_ITM=y
CONFIG_TOUCHSCREEN_USB_ETURBO=y
CONFIG_TOUCHSCREEN_USB_GUNZE=y
CONFIG_TOUCHSCREEN_USB_DMC_TSC10=y
CONFIG_TOUCHSCREEN_USB_IRTOUCH=y
CONFIG_TOUCHSCREEN_USB_IDEALTEK=y
CONFIG_TOUCHSCREEN_USB_GENERAL_TOUCH=y
CONFIG_TOUCHSCREEN_USB_GOTOP=y
CONFIG_TOUCHSCREEN_USB_JASTEC=y
CONFIG_TOUCHSCREEN_USB_ELO=y
CONFIG_TOUCHSCREEN_USB_E2I=y
CONFIG_TOUCHSCREEN_USB_ZYTRONIC=y
CONFIG_TOUCHSCREEN_USB_ETT_TC45USB=y
CONFIG_TOUCHSCREEN_USB_NEXIO=y
CONFIG_TOUCHSCREEN_USB_EASYTOUCH=y
# CONFIG_TOUCHSCREEN_TOUCHIT213 is not set
# CONFIG_TOUCHSCREEN_TSC_SERIO is not set
# CONFIG_TOUCHSCREEN_TSC2004 is not set
# CONFIG_TOUCHSCREEN_TSC2005 is not set
# CONFIG_TOUCHSCREEN_TSC2007 is not set
# CONFIG_TOUCHSCREEN_RM_TS is not set
# CONFIG_TOUCHSCREEN_SILEAD is not set
# CONFIG_TOUCHSCREEN_SIS_I2C is not set
# CONFIG_TOUCHSCREEN_ST1232 is not set
# CONFIG_TOUCHSCREEN_STMFTS is not set
CONFIG_TOUCHSCREEN_SUR40=y
# CONFIG_TOUCHSCREEN_SURFACE3_SPI is not set
# CONFIG_TOUCHSCREEN_SX8654 is not set
# CONFIG_TOUCHSCREEN_TPS6507X is not set
# CONFIG_TOUCHSCREEN_ZET6223 is not set
# CONFIG_TOUCHSCREEN_ZFORCE is not set
# CONFIG_TOUCHSCREEN_COLIBRI_VF50 is not set
# CONFIG_TOUCHSCREEN_ROHM_BU21023 is not set
# CONFIG_TOUCHSCREEN_IQS5XX is not set
# CONFIG_TOUCHSCREEN_IQS7211 is not set
# CONFIG_TOUCHSCREEN_ZINITIX is not set
# CONFIG_TOUCHSCREEN_HIMAX_HX83112B is not set
CONFIG_INPUT_MISC=y
# CONFIG_INPUT_AD714X is not set
# CONFIG_INPUT_ATMEL_CAPTOUCH is not set
# CONFIG_INPUT_AW86927 is not set
# CONFIG_INPUT_BMA150 is not set
# CONFIG_INPUT_E3X0_BUTTON is not set
# CONFIG_INPUT_PCSPKR is not set
# CONFIG_INPUT_MMA8450 is not set
# CONFIG_INPUT_APANEL is not set
# CONFIG_INPUT_GPIO_BEEPER is not set
# CONFIG_INPUT_GPIO_DECODER is not set
# CONFIG_INPUT_GPIO_VIBRA is not set
# CONFIG_INPUT_ATLAS_BTNS is not set
CONFIG_INPUT_ATI_REMOTE2=y
CONFIG_INPUT_KEYSPAN_REMOTE=y
# CONFIG_INPUT_KXTJ9 is not set
CONFIG_INPUT_POWERMATE=y
CONFIG_INPUT_YEALINK=y
CONFIG_INPUT_CM109=y
# CONFIG_INPUT_REGULATOR_HAPTIC is not set
# CONFIG_INPUT_RETU_PWRBUTTON is not set
# CONFIG_INPUT_TWL4030_PWRBUTTON is not set
# CONFIG_INPUT_TWL4030_VIBRA is not set
# CONFIG_INPUT_UINPUT is not set
# CONFIG_INPUT_PCF8574 is not set
# CONFIG_INPUT_GPIO_ROTARY_ENCODER is not set
# CONFIG_INPUT_DA7280_HAPTICS is not set
# CONFIG_INPUT_ADXL34X is not set
CONFIG_INPUT_IMS_PCU=y
# CONFIG_INPUT_IQS269A is not set
# CONFIG_INPUT_IQS626A is not set
# CONFIG_INPUT_IQS7222 is not set
# CONFIG_INPUT_CMA3000 is not set
# CONFIG_INPUT_IDEAPAD_SLIDEBAR is not set
# CONFIG_INPUT_DRV260X_HAPTICS is not set
# CONFIG_INPUT_DRV2665_HAPTICS is not set
# CONFIG_INPUT_DRV2667_HAPTICS is not set
CONFIG_RMI4_CORE=y
# CONFIG_RMI4_I2C is not set
# CONFIG_RMI4_SPI is not set
# CONFIG_RMI4_SMB is not set
CONFIG_RMI4_F03=y
CONFIG_RMI4_F03_SERIO=y
CONFIG_RMI4_2D_SENSOR=y
CONFIG_RMI4_F11=y
CONFIG_RMI4_F12=y
# CONFIG_RMI4_F1A is not set
# CONFIG_RMI4_F21 is not set
CONFIG_RMI4_F30=y
# CONFIG_RMI4_F34 is not set
CONFIG_RMI4_F3A=y
# CONFIG_RMI4_F54 is not set
# CONFIG_RMI4_F55 is not set

#
# Hardware I/O ports
#
CONFIG_SERIO=y
CONFIG_ARCH_MIGHT_HAVE_PC_SERIO=y
CONFIG_SERIO_I8042=y
CONFIG_SERIO_SERPORT=y
# CONFIG_SERIO_CT82C710 is not set
# CONFIG_SERIO_PARKBD is not set
# CONFIG_SERIO_PCIPS2 is not set
CONFIG_SERIO_LIBPS2=y
# CONFIG_SERIO_RAW is not set
# CONFIG_SERIO_ALTERA_PS2 is not set
# CONFIG_SERIO_PS2MULT is not set
# CONFIG_SERIO_ARC_PS2 is not set
# CONFIG_SERIO_APBPS2 is not set
# CONFIG_SERIO_GPIO_PS2 is not set
# CONFIG_USERIO is not set
# CONFIG_GAMEPORT is not set
# end of Hardware I/O ports
# end of Input device support

#
# Character devices
#
CONFIG_TTY=y
CONFIG_VT=y
CONFIG_CONSOLE_TRANSLATIONS=y
CONFIG_VT_CONSOLE=y
CONFIG_VT_CONSOLE_SLEEP=y
# CONFIG_VT_HW_CONSOLE_BINDING is not set
CONFIG_UNIX98_PTYS=y
# CONFIG_LEGACY_PTYS is not set
CONFIG_LEGACY_TIOCSTI=y
CONFIG_LDISC_AUTOLOAD=y

#
# Serial drivers
#
CONFIG_SERIAL_EARLYCON=y
CONFIG_SERIAL_8250=y
CONFIG_SERIAL_8250_PNP=y
# CONFIG_SERIAL_8250_16550A_VARIANTS is not set
# CONFIG_SERIAL_8250_FINTEK is not set
CONFIG_SERIAL_8250_CONSOLE=y
CONFIG_SERIAL_8250_DMA=y
CONFIG_SERIAL_8250_PCILIB=y
CONFIG_SERIAL_8250_PCI=y
CONFIG_SERIAL_8250_EXAR=y
# CONFIG_SERIAL_8250_CS is not set
CONFIG_SERIAL_8250_NR_UARTS=32
CONFIG_SERIAL_8250_RUNTIME_UARTS=4
CONFIG_SERIAL_8250_EXTENDED=y
CONFIG_SERIAL_8250_SHARE_IRQ=y
CONFIG_SERIAL_8250_DETECT_IRQ=y
CONFIG_SERIAL_8250_RSA=y
CONFIG_SERIAL_8250_MANY_PORTS=y
# CONFIG_SERIAL_8250_PCI1XXXX is not set
# CONFIG_SERIAL_8250_DW is not set
# CONFIG_SERIAL_8250_RT288X is not set
CONFIG_SERIAL_8250_LPSS=y
CONFIG_SERIAL_8250_MID=y
CONFIG_SERIAL_8250_PERICOM=y
# CONFIG_SERIAL_8250_NI is not set
# CONFIG_SERIAL_OF_PLATFORM is not set
CONFIG_SERIAL_8250_DWLIB=y

#
# Non-8250 serial port support
#
# CONFIG_SERIAL_MAX3100 is not set
# CONFIG_SERIAL_MAX310X is not set
# CONFIG_SERIAL_UARTLITE is not set
CONFIG_SERIAL_CORE=y
CONFIG_SERIAL_CORE_CONSOLE=y
# CONFIG_SERIAL_JSM is not set
# CONFIG_SERIAL_SIFIVE is not set
# CONFIG_SERIAL_LANTIQ is not set
# CONFIG_SERIAL_SCCNXP is not set
# CONFIG_SERIAL_SC16IS7XX is not set
# CONFIG_SERIAL_ALTERA_JTAGUART is not set
# CONFIG_SERIAL_ALTERA_UART is not set
# CONFIG_SERIAL_XILINX_PS_UART is not set
# CONFIG_SERIAL_ARC is not set
# CONFIG_SERIAL_RP2 is not set
# CONFIG_SERIAL_FSL_LPUART is not set
# CONFIG_SERIAL_FSL_LINFLEXUART is not set
# CONFIG_SERIAL_CONEXANT_DIGICOLOR is not set
# CONFIG_SERIAL_SPRD is not set
# end of Serial drivers

CONFIG_SERIAL_MCTRL_GPIO=y
CONFIG_SERIAL_NONSTANDARD=y
# CONFIG_MOXA_INTELLIO is not set
# CONFIG_MOXA_SMARTIO is not set
# CONFIG_N_HDLC is not set
# CONFIG_IPWIRELESS is not set
# CONFIG_N_GSM is not set
# CONFIG_NOZOMI is not set
# CONFIG_NULL_TTY is not set
CONFIG_HVC_DRIVER=y
CONFIG_SERIAL_DEV_BUS=y
# CONFIG_SERIAL_DEV_CTRL_TTYPORT is not set
# CONFIG_TTY_PRINTK is not set
# CONFIG_PRINTER is not set
# CONFIG_PPDEV is not set
CONFIG_VIRTIO_CONSOLE=y
# CONFIG_IPMI_HANDLER is not set
CONFIG_HW_RANDOM=y
# CONFIG_HW_RANDOM_TIMERIOMEM is not set
# CONFIG_HW_RANDOM_INTEL is not set
# CONFIG_HW_RANDOM_AMD is not set
# CONFIG_HW_RANDOM_BA431 is not set
# CONFIG_HW_RANDOM_VIA is not set
CONFIG_HW_RANDOM_VIRTIO=y
# CONFIG_HW_RANDOM_CCTRNG is not set
# CONFIG_HW_RANDOM_XIPHERA is not set
# CONFIG_APPLICOM is not set
# CONFIG_DEVMEM is not set
CONFIG_NVRAM=y
# CONFIG_DEVPORT is not set
CONFIG_HPET=y
# CONFIG_HPET_MMAP is not set
# CONFIG_HANGCHECK_TIMER is not set
# CONFIG_TCG_TPM is not set
# CONFIG_TELCLOCK is not set
CONFIG_XILLYBUS_CLASS=y
# CONFIG_XILLYBUS is not set
CONFIG_XILLYUSB=y
# end of Character devices

#
# I2C support
#
CONFIG_I2C=y
CONFIG_ACPI_I2C_OPREGION=y
CONFIG_I2C_BOARDINFO=y
# CONFIG_I2C_CHARDEV is not set
CONFIG_I2C_MUX=y

#
# Multiplexer I2C Chip support
#
# CONFIG_I2C_ARB_GPIO_CHALLENGE is not set
# CONFIG_I2C_MUX_GPIO is not set
# CONFIG_I2C_MUX_GPMUX is not set
# CONFIG_I2C_MUX_LTC4306 is not set
# CONFIG_I2C_MUX_PCA9541 is not set
# CONFIG_I2C_MUX_PCA954x is not set
# CONFIG_I2C_MUX_REG is not set
# CONFIG_I2C_MUX_MLXCPLD is not set
# end of Multiplexer I2C Chip support

CONFIG_I2C_HELPER_AUTO=y
CONFIG_I2C_SMBUS=y
CONFIG_I2C_ALGOBIT=y

#
# I2C Hardware Bus support
#

#
# PC SMBus host controller drivers
#
# CONFIG_I2C_ALI1535 is not set
# CONFIG_I2C_ALI1563 is not set
# CONFIG_I2C_ALI15X3 is not set
# CONFIG_I2C_AMD756 is not set
# CONFIG_I2C_AMD8111 is not set
# CONFIG_I2C_AMD_MP2 is not set
CONFIG_I2C_I801=y
# CONFIG_I2C_ISCH is not set
# CONFIG_I2C_ISMT is not set
# CONFIG_I2C_PIIX4 is not set
# CONFIG_I2C_CHT_WC is not set
# CONFIG_I2C_NFORCE2 is not set
# CONFIG_I2C_NVIDIA_GPU is not set
# CONFIG_I2C_SIS5595 is not set
# CONFIG_I2C_SIS630 is not set
# CONFIG_I2C_SIS96X is not set
# CONFIG_I2C_VIA is not set
# CONFIG_I2C_VIAPRO is not set
# CONFIG_I2C_ZHAOXIN is not set

#
# ACPI drivers
#
# CONFIG_I2C_SCMI is not set

#
# I2C system bus drivers (mostly embedded / system-on-chip)
#
# CONFIG_I2C_CBUS_GPIO is not set
CONFIG_I2C_DESIGNWARE_CORE=y
CONFIG_I2C_DESIGNWARE_PLATFORM=y
# CONFIG_I2C_DESIGNWARE_AMDPSP is not set
# CONFIG_I2C_DESIGNWARE_BAYTRAIL is not set
# CONFIG_I2C_DESIGNWARE_PCI is not set
# CONFIG_I2C_EMEV2 is not set
# CONFIG_I2C_GPIO is not set
# CONFIG_I2C_OCORES is not set
# CONFIG_I2C_PCA_PLATFORM is not set
# CONFIG_I2C_RK3X is not set
# CONFIG_I2C_SIMTEC is not set
# CONFIG_I2C_XILINX is not set

#
# External I2C/SMBus adapter drivers
#
CONFIG_I2C_DIOLAN_U2C=y
CONFIG_I2C_DLN2=y
CONFIG_I2C_LJCA=y
CONFIG_I2C_CP2615=y
# CONFIG_I2C_PARPORT is not set
# CONFIG_I2C_PCI1XXXX is not set
CONFIG_I2C_ROBOTFUZZ_OSIF=y
# CONFIG_I2C_TAOS_EVM is not set
CONFIG_I2C_TINY_USB=y
CONFIG_I2C_VIPERBOARD=y

#
# Other I2C/SMBus bus drivers
#
# CONFIG_I2C_MLXCPLD is not set
# CONFIG_I2C_CROS_EC_TUNNEL is not set
# CONFIG_I2C_VIRTIO is not set
# end of I2C Hardware Bus support

# CONFIG_I2C_STUB is not set
# CONFIG_I2C_SLAVE is not set
# CONFIG_I2C_DEBUG_CORE is not set
# CONFIG_I2C_DEBUG_ALGO is not set
# CONFIG_I2C_DEBUG_BUS is not set
# end of I2C support

# CONFIG_I3C is not set
CONFIG_SPI=y
# CONFIG_SPI_DEBUG is not set
CONFIG_SPI_MASTER=y
# CONFIG_SPI_MEM is not set

#
# SPI Master Controller Drivers
#
# CONFIG_SPI_ALTERA is not set
# CONFIG_SPI_AXI_SPI_ENGINE is not set
# CONFIG_SPI_BITBANG is not set
# CONFIG_SPI_BUTTERFLY is not set
# CONFIG_SPI_CADENCE is not set
# CONFIG_SPI_CADENCE_QUADSPI is not set
# CONFIG_SPI_CH341 is not set
# CONFIG_SPI_DESIGNWARE is not set
CONFIG_SPI_DLN2=y
# CONFIG_SPI_GPIO is not set
# CONFIG_SPI_LM70_LLP is not set
# CONFIG_SPI_FSL_SPI is not set
CONFIG_SPI_LJCA=y
# CONFIG_SPI_MICROCHIP_CORE_QSPI is not set
# CONFIG_SPI_MICROCHIP_CORE_SPI is not set
# CONFIG_SPI_LANTIQ_SSC is not set
# CONFIG_SPI_OC_TINY is not set
# CONFIG_SPI_PCI1XXXX is not set
# CONFIG_SPI_PXA2XX is not set
# CONFIG_SPI_SC18IS602 is not set
# CONFIG_SPI_SIFIVE is not set
# CONFIG_SPI_MXIC is not set
# CONFIG_SPI_VIRTIO is not set
# CONFIG_SPI_XCOMM is not set
# CONFIG_SPI_XILINX is not set

#
# SPI Multiplexer support
#
# CONFIG_SPI_MUX is not set

#
# SPI Protocol Masters
#
# CONFIG_SPI_SPIDEV is not set
# CONFIG_SPI_LOOPBACK_TEST is not set
# CONFIG_SPI_TLE62X0 is not set
# CONFIG_SPI_SLAVE is not set
CONFIG_SPI_DYNAMIC=y
# CONFIG_SPMI is not set
# CONFIG_HSI is not set
CONFIG_PPS=y
# CONFIG_PPS_DEBUG is not set

#
# PPS clients support
#
# CONFIG_PPS_CLIENT_KTIMER is not set
# CONFIG_PPS_CLIENT_LDISC is not set
# CONFIG_PPS_CLIENT_PARPORT is not set
# CONFIG_PPS_CLIENT_GPIO is not set
# CONFIG_PPS_GENERATOR is not set

#
# PTP clock support
#
CONFIG_PTP_1588_CLOCK=y
CONFIG_PTP_1588_CLOCK_OPTIONAL=y

#
# Enable PHYLIB and NETWORK_PHY_TIMESTAMPING to see the additional clocks.
#
CONFIG_PTP_1588_CLOCK_KVM=y
CONFIG_PTP_1588_CLOCK_VMCLOCK=y
# CONFIG_PTP_1588_CLOCK_IDT82P33 is not set
# CONFIG_PTP_1588_CLOCK_IDTCM is not set
# CONFIG_PTP_1588_CLOCK_FC3W is not set
# CONFIG_PTP_1588_CLOCK_MOCK is not set
# CONFIG_PTP_1588_CLOCK_VMW is not set
# CONFIG_PTP_NETC_V4_TIMER is not set
# end of PTP clock support

#
# DPLL device support
#
# CONFIG_ZL3073X_I2C is not set
# CONFIG_ZL3073X_SPI is not set
# end of DPLL device support

# CONFIG_PINCTRL is not set
CONFIG_GPIOLIB_LEGACY=y
CONFIG_GPIOLIB=y
CONFIG_GPIOLIB_FASTPATH_LIMIT=512
CONFIG_OF_GPIO=y
CONFIG_GPIO_ACPI=y
CONFIG_GPIOLIB_IRQCHIP=y
# CONFIG_DEBUG_GPIO is not set
# CONFIG_GPIO_SYSFS is not set
# CONFIG_GPIO_CDEV is not set

#
# Memory mapped GPIO drivers
#
# CONFIG_GPIO_74XX_MMIO is not set
# CONFIG_GPIO_ALTERA is not set
# CONFIG_GPIO_AMDPT is not set
# CONFIG_GPIO_CADENCE is not set
# CONFIG_GPIO_DWAPB is not set
# CONFIG_GPIO_EXAR is not set
# CONFIG_GPIO_FTGPIO010 is not set
# CONFIG_GPIO_GENERIC_PLATFORM is not set
# CONFIG_GPIO_GRANITERAPIDS is not set
# CONFIG_GPIO_GRGPIO is not set
# CONFIG_GPIO_HLWD is not set
# CONFIG_GPIO_LOGICVC is not set
# CONFIG_GPIO_MB86S7X is not set
# CONFIG_GPIO_POLARFIRE_SOC is not set
# CONFIG_GPIO_SIFIVE is not set
# CONFIG_GPIO_SYSCON is not set
# CONFIG_GPIO_XILINX is not set
# CONFIG_GPIO_AMD_FCH is not set
# end of Memory mapped GPIO drivers

#
# Port-mapped I/O GPIO drivers
#
# CONFIG_GPIO_VX855 is not set
# CONFIG_GPIO_F7188X is not set
# CONFIG_GPIO_IT87 is not set
# CONFIG_GPIO_SCH311X is not set
# CONFIG_GPIO_WINBOND is not set
# CONFIG_GPIO_WS16C48 is not set
# end of Port-mapped I/O GPIO drivers

#
# I2C GPIO expanders
#
# CONFIG_GPIO_ADNP is not set
# CONFIG_GPIO_FXL6408 is not set
# CONFIG_GPIO_DS4520 is not set
# CONFIG_GPIO_GW_PLD is not set
# CONFIG_GPIO_MAX7300 is not set
# CONFIG_GPIO_MAX732X is not set
# CONFIG_GPIO_PCA953X is not set
# CONFIG_GPIO_PCA9570 is not set
# CONFIG_GPIO_PCF857X is not set
# CONFIG_GPIO_TPIC2810 is not set
# end of I2C GPIO expanders

#
# MFD GPIO expanders
#
# CONFIG_GPIO_CROS_EC is not set
CONFIG_GPIO_DLN2=y
CONFIG_GPIO_LJCA=y
# CONFIG_GPIO_TWL4030 is not set
# CONFIG_GPIO_WHISKEY_COVE is not set
# end of MFD GPIO expanders

#
# PCI GPIO expanders
#
# CONFIG_GPIO_AMD8111 is not set
# CONFIG_GPIO_BT8XX is not set
# CONFIG_GPIO_ML_IOH is not set
# CONFIG_GPIO_PCI_IDIO_16 is not set
# CONFIG_GPIO_PCIE_IDIO_24 is not set
# CONFIG_GPIO_RDC321X is not set
# CONFIG_GPIO_SODAVILLE is not set
# end of PCI GPIO expanders

#
# SPI GPIO expanders
#
# CONFIG_GPIO_74X164 is not set
# CONFIG_GPIO_MAX3191X is not set
# CONFIG_GPIO_MAX7301 is not set
# CONFIG_GPIO_MC33880 is not set
# CONFIG_GPIO_PISOSR is not set
# CONFIG_GPIO_XRA1403 is not set
# end of SPI GPIO expanders

#
# USB GPIO expanders
#
CONFIG_GPIO_VIPERBOARD=y
# CONFIG_GPIO_MPSSE is not set
# end of USB GPIO expanders

#
# Virtual GPIO drivers
#
# CONFIG_GPIO_AGGREGATOR is not set
# CONFIG_GPIO_LATCH is not set
# CONFIG_GPIO_LINE_MUX is not set
# CONFIG_GPIO_MOCKUP is not set
# CONFIG_GPIO_VIRTIO is not set
# CONFIG_GPIO_SIM is not set
# end of Virtual GPIO drivers

#
# GPIO Debugging utilities
#
# CONFIG_GPIO_SLOPPY_LOGIC_ANALYZER is not set
# CONFIG_GPIO_VIRTUSER is not set
# end of GPIO Debugging utilities

CONFIG_W1=y
# CONFIG_W1_CON is not set

#
# 1-wire Bus Masters
#
# CONFIG_W1_MASTER_AMD_AXI is not set
# CONFIG_W1_MASTER_MATROX is not set
CONFIG_W1_MASTER_DS2490=y
# CONFIG_W1_MASTER_DS2482 is not set
# CONFIG_W1_MASTER_GPIO is not set
# CONFIG_W1_MASTER_SGI is not set
# CONFIG_W1_MASTER_UART is not set
# end of 1-wire Bus Masters

#
# 1-wire Slaves
#
# CONFIG_W1_SLAVE_THERM is not set
# CONFIG_W1_SLAVE_SMEM is not set
# CONFIG_W1_SLAVE_DS2405 is not set
# CONFIG_W1_SLAVE_DS2408 is not set
# CONFIG_W1_SLAVE_DS2413 is not set
# CONFIG_W1_SLAVE_DS2406 is not set
# CONFIG_W1_SLAVE_DS2423 is not set
# CONFIG_W1_SLAVE_DS2805 is not set
# CONFIG_W1_SLAVE_DS2430 is not set
# CONFIG_W1_SLAVE_DS2431 is not set
# CONFIG_W1_SLAVE_DS2433 is not set
# CONFIG_W1_SLAVE_DS2438 is not set
# CONFIG_W1_SLAVE_DS250X is not set
# CONFIG_W1_SLAVE_DS2780 is not set
# CONFIG_W1_SLAVE_DS2781 is not set
# CONFIG_W1_SLAVE_DS28E04 is not set
# CONFIG_W1_SLAVE_DS28E17 is not set
# end of 1-wire Slaves

# CONFIG_POWER_RESET is not set
# CONFIG_POWER_SEQUENCING is not set
CONFIG_POWER_SUPPLY=y
# CONFIG_POWER_SUPPLY_DEBUG is not set
CONFIG_POWER_SUPPLY_HWMON=y
# CONFIG_GENERIC_ADC_BATTERY is not set
# CONFIG_IP5XXX_POWER is not set
# CONFIG_TEST_POWER is not set
# CONFIG_CHARGER_ADP5061 is not set
# CONFIG_BATTERY_CHAGALL is not set
# CONFIG_BATTERY_CW2015 is not set
# CONFIG_BATTERY_DS2760 is not set
# CONFIG_BATTERY_DS2780 is not set
# CONFIG_BATTERY_DS2781 is not set
# CONFIG_BATTERY_DS2782 is not set
# CONFIG_BATTERY_SAMSUNG_SDI is not set
# CONFIG_BATTERY_SBS is not set
# CONFIG_CHARGER_SBS is not set
# CONFIG_MANAGER_SBS is not set
# CONFIG_BATTERY_BQ27XXX is not set
# CONFIG_BATTERY_MAX17040 is not set
# CONFIG_BATTERY_MAX17042 is not set
# CONFIG_BATTERY_MAX1720X is not set
# CONFIG_BATTERY_MAX1721X is not set
CONFIG_CHARGER_ISP1704=y
# CONFIG_CHARGER_MAX8903 is not set
# CONFIG_CHARGER_TWL4030 is not set
# CONFIG_CHARGER_TWL6030 is not set
# CONFIG_CHARGER_LP8727 is not set
# CONFIG_CHARGER_GPIO is not set
# CONFIG_CHARGER_MANAGER is not set
# CONFIG_CHARGER_LT3651 is not set
# CONFIG_CHARGER_LTC4162L is not set
# CONFIG_CHARGER_DETECTOR_MAX14656 is not set
# CONFIG_CHARGER_MAX77976 is not set
# CONFIG_CHARGER_MAX8971 is not set
# CONFIG_CHARGER_MT6360 is not set
# CONFIG_CHARGER_MT6370 is not set
# CONFIG_CHARGER_BQ2415X is not set
CONFIG_CHARGER_BQ24190=y
# CONFIG_CHARGER_BQ24257 is not set
# CONFIG_CHARGER_BQ24735 is not set
# CONFIG_CHARGER_BQ2515X is not set
# CONFIG_CHARGER_BQ25890 is not set
# CONFIG_CHARGER_BQ25980 is not set
# CONFIG_CHARGER_BQ256XX is not set
# CONFIG_CHARGER_SMB347 is not set
# CONFIG_BATTERY_GAUGE_LTC2941 is not set
# CONFIG_BATTERY_GOLDFISH is not set
# CONFIG_BATTERY_RT5033 is not set
# CONFIG_CHARGER_RT9455 is not set
# CONFIG_CHARGER_RT9467 is not set
# CONFIG_CHARGER_RT9471 is not set
# CONFIG_CHARGER_RT9756 is not set
# CONFIG_CHARGER_CROS_USBPD is not set
# CONFIG_CHARGER_CROS_PCHG is not set
# CONFIG_CHARGER_CROS_CONTROL is not set
# CONFIG_FUEL_GAUGE_STC3117 is not set
# CONFIG_CHARGER_UCS1002 is not set
# CONFIG_CHARGER_BD99954 is not set
# CONFIG_BATTERY_SURFACE is not set
# CONFIG_CHARGER_SURFACE is not set
# CONFIG_BATTERY_UG3105 is not set
# CONFIG_FUEL_GAUGE_MM8013 is not set
CONFIG_HWMON=y
# CONFIG_HWMON_DEBUG_CHIP is not set

#
# Native drivers
#
# CONFIG_SENSORS_ABITUGURU is not set
# CONFIG_SENSORS_ABITUGURU3 is not set
# CONFIG_SENSORS_AD7314 is not set
# CONFIG_SENSORS_AD7414 is not set
# CONFIG_SENSORS_AD7418 is not set
# CONFIG_SENSORS_ADM1025 is not set
# CONFIG_SENSORS_ADM1026 is not set
# CONFIG_SENSORS_ADM1029 is not set
# CONFIG_SENSORS_ADM1031 is not set
# CONFIG_SENSORS_ADM1177 is not set
# CONFIG_SENSORS_ADM9240 is not set
# CONFIG_SENSORS_ADT7310 is not set
# CONFIG_SENSORS_ADT7410 is not set
# CONFIG_SENSORS_ADT7411 is not set
# CONFIG_SENSORS_ADT7462 is not set
# CONFIG_SENSORS_ADT7470 is not set
# CONFIG_SENSORS_ADT7475 is not set
# CONFIG_SENSORS_AHT10 is not set
CONFIG_SENSORS_AQUACOMPUTER_D5NEXT=y
# CONFIG_SENSORS_AS370 is not set
# CONFIG_SENSORS_ASC7621 is not set
# CONFIG_SENSORS_ASUS_ROG_RYUJIN is not set
# CONFIG_SENSORS_AXI_FAN_CONTROL is not set
# CONFIG_SENSORS_K8TEMP is not set
# CONFIG_SENSORS_K10TEMP is not set
# CONFIG_SENSORS_FAM15H_POWER is not set
# CONFIG_SENSORS_APPLESMC is not set
# CONFIG_SENSORS_ASB100 is not set
# CONFIG_SENSORS_ATXP1 is not set
# CONFIG_SENSORS_CHIPCAP2 is not set
CONFIG_SENSORS_CORSAIR_CPRO=y
CONFIG_SENSORS_CORSAIR_PSU=y
# CONFIG_SENSORS_CROS_EC is not set
# CONFIG_SENSORS_DRIVETEMP is not set
# CONFIG_SENSORS_DS620 is not set
# CONFIG_SENSORS_DS1621 is not set
# CONFIG_SENSORS_DELL_SMM is not set
# CONFIG_SENSORS_I5K_AMB is not set
# CONFIG_SENSORS_F71805F is not set
# CONFIG_SENSORS_F71882FG is not set
# CONFIG_SENSORS_F75375S is not set
# CONFIG_SENSORS_FSCHMD is not set
# CONFIG_SENSORS_FTSTEUTATES is not set
CONFIG_SENSORS_GIGABYTE_WATERFORCE=y
# CONFIG_SENSORS_GL518SM is not set
# CONFIG_SENSORS_GL520SM is not set
# CONFIG_SENSORS_GPD is not set
# CONFIG_SENSORS_G760A is not set
# CONFIG_SENSORS_G762 is not set
# CONFIG_SENSORS_GPIO_FAN is not set
# CONFIG_SENSORS_HIH6130 is not set
# CONFIG_SENSORS_HS3001 is not set
# CONFIG_SENSORS_HTU31 is not set
# CONFIG_SENSORS_IIO_HWMON is not set
# CONFIG_SENSORS_I5500 is not set
# CONFIG_SENSORS_CORETEMP is not set
# CONFIG_SENSORS_ISL28022 is not set
# CONFIG_SENSORS_IT87 is not set
# CONFIG_SENSORS_JC42 is not set
CONFIG_SENSORS_POWERZ=y
# CONFIG_SENSORS_POWR1220 is not set
# CONFIG_SENSORS_LENOVO_EC is not set
# CONFIG_SENSORS_LINEAGE is not set
# CONFIG_SENSORS_LTC2945 is not set
# CONFIG_SENSORS_LTC2947_I2C is not set
# CONFIG_SENSORS_LTC2947_SPI is not set
# CONFIG_SENSORS_LTC2990 is not set
# CONFIG_SENSORS_LTC2991 is not set
# CONFIG_SENSORS_LTC2992 is not set
# CONFIG_SENSORS_LTC4151 is not set
# CONFIG_SENSORS_LTC4215 is not set
# CONFIG_SENSORS_LTC4222 is not set
# CONFIG_SENSORS_LTC4245 is not set
# CONFIG_SENSORS_LTC4260 is not set
# CONFIG_SENSORS_LTC4261 is not set
# CONFIG_SENSORS_LTC4282 is not set
# CONFIG_SENSORS_MAX1111 is not set
# CONFIG_SENSORS_MAX127 is not set
# CONFIG_SENSORS_MAX16065 is not set
# CONFIG_SENSORS_MAX1619 is not set
# CONFIG_SENSORS_MAX1668 is not set
# CONFIG_SENSORS_MAX197 is not set
# CONFIG_SENSORS_MAX31722 is not set
# CONFIG_SENSORS_MAX31730 is not set
# CONFIG_SENSORS_MAX31760 is not set
# CONFIG_MAX31827 is not set
# CONFIG_SENSORS_MAX6620 is not set
# CONFIG_SENSORS_MAX6621 is not set
# CONFIG_SENSORS_MAX6639 is not set
# CONFIG_SENSORS_MAX6650 is not set
# CONFIG_SENSORS_MAX6697 is not set
# CONFIG_SENSORS_MAX31790 is not set
# CONFIG_SENSORS_MC34VR500 is not set
# CONFIG_SENSORS_MCP3021 is not set
# CONFIG_SENSORS_TC654 is not set
# CONFIG_SENSORS_TPS23861 is not set
# CONFIG_SENSORS_MR75203 is not set
# CONFIG_SENSORS_ADCXX is not set
# CONFIG_SENSORS_LM63 is not set
# CONFIG_SENSORS_LM70 is not set
# CONFIG_SENSORS_LM73 is not set
# CONFIG_SENSORS_LM75 is not set
# CONFIG_SENSORS_LM77 is not set
# CONFIG_SENSORS_LM78 is not set
# CONFIG_SENSORS_LM80 is not set
# CONFIG_SENSORS_LM83 is not set
# CONFIG_SENSORS_LM85 is not set
# CONFIG_SENSORS_LM87 is not set
# CONFIG_SENSORS_LM90 is not set
# CONFIG_SENSORS_LM92 is not set
# CONFIG_SENSORS_LM93 is not set
# CONFIG_SENSORS_LM95234 is not set
# CONFIG_SENSORS_LM95241 is not set
# CONFIG_SENSORS_LM95245 is not set
# CONFIG_SENSORS_PC87360 is not set
# CONFIG_SENSORS_PC87427 is not set
# CONFIG_SENSORS_NTC_THERMISTOR is not set
# CONFIG_SENSORS_NCT6683 is not set
# CONFIG_SENSORS_NCT6775 is not set
# CONFIG_SENSORS_NCT6775_I2C is not set
# CONFIG_SENSORS_NCT7363 is not set
# CONFIG_SENSORS_NCT7802 is not set
# CONFIG_SENSORS_NCT7904 is not set
# CONFIG_SENSORS_NPCM7XX is not set
CONFIG_SENSORS_NZXT_KRAKEN2=y
# CONFIG_SENSORS_NZXT_KRAKEN3 is not set
CONFIG_SENSORS_NZXT_SMART2=y
# CONFIG_SENSORS_OCC_P8_I2C is not set
# CONFIG_SENSORS_PCF8591 is not set
# CONFIG_PMBUS is not set
# CONFIG_SENSORS_PT5161L is not set
# CONFIG_SENSORS_SBTSI is not set
# CONFIG_SENSORS_SHT15 is not set
# CONFIG_SENSORS_SHT21 is not set
# CONFIG_SENSORS_SHT3x is not set
# CONFIG_SENSORS_SHT4x is not set
# CONFIG_SENSORS_SHTC1 is not set
# CONFIG_SENSORS_SIS5595 is not set
# CONFIG_SENSORS_DME1737 is not set
# CONFIG_SENSORS_EMC1403 is not set
# CONFIG_SENSORS_EMC2103 is not set
# CONFIG_SENSORS_EMC2305 is not set
# CONFIG_SENSORS_EMC6W201 is not set
# CONFIG_SENSORS_SMSC47M1 is not set
# CONFIG_SENSORS_SMSC47M192 is not set
# CONFIG_SENSORS_SMSC47B397 is not set
# CONFIG_SENSORS_SCH5627 is not set
# CONFIG_SENSORS_SCH5636 is not set
# CONFIG_SENSORS_STTS751 is not set
# CONFIG_SENSORS_SURFACE_FAN is not set
# CONFIG_SENSORS_SURFACE_TEMP is not set
# CONFIG_SENSORS_ADC128D818 is not set
# CONFIG_SENSORS_ADS7828 is not set
# CONFIG_SENSORS_ADS7871 is not set
# CONFIG_SENSORS_AMC6821 is not set
# CONFIG_SENSORS_INA209 is not set
# CONFIG_SENSORS_INA2XX is not set
# CONFIG_SENSORS_INA238 is not set
# CONFIG_SENSORS_INA3221 is not set
# CONFIG_SENSORS_SPD5118 is not set
# CONFIG_SENSORS_TC74 is not set
# CONFIG_SENSORS_THMC50 is not set
# CONFIG_SENSORS_TMP102 is not set
# CONFIG_SENSORS_TMP103 is not set
# CONFIG_SENSORS_TMP108 is not set
# CONFIG_SENSORS_TMP401 is not set
# CONFIG_SENSORS_TMP421 is not set
# CONFIG_SENSORS_TMP464 is not set
# CONFIG_SENSORS_TMP513 is not set
# CONFIG_SENSORS_TSC1641 is not set
# CONFIG_SENSORS_VIA_CPUTEMP is not set
# CONFIG_SENSORS_VIA686A is not set
# CONFIG_SENSORS_VT1211 is not set
# CONFIG_SENSORS_VT8231 is not set
# CONFIG_SENSORS_W83773G is not set
# CONFIG_SENSORS_W83781D is not set
# CONFIG_SENSORS_W83791D is not set
# CONFIG_SENSORS_W83792D is not set
# CONFIG_SENSORS_W83793 is not set
# CONFIG_SENSORS_W83795 is not set
# CONFIG_SENSORS_W83L785TS is not set
# CONFIG_SENSORS_W83L786NG is not set
# CONFIG_SENSORS_W83627HF is not set
# CONFIG_SENSORS_W83627EHF is not set
# CONFIG_SENSORS_XGENE is not set

#
# ACPI drivers
#
# CONFIG_SENSORS_ACPI_POWER is not set
# CONFIG_SENSORS_ATK0110 is not set
# CONFIG_SENSORS_ASUS_WMI is not set
# CONFIG_SENSORS_ASUS_EC is not set
# CONFIG_SENSORS_HP_WMI is not set
CONFIG_THERMAL=y
CONFIG_THERMAL_NETLINK=y
# CONFIG_THERMAL_STATISTICS is not set
# CONFIG_THERMAL_DEBUGFS is not set
# CONFIG_THERMAL_CORE_TESTING is not set
CONFIG_THERMAL_EMERGENCY_POWEROFF_DELAY_MS=0
CONFIG_THERMAL_HWMON=y
# CONFIG_THERMAL_OF is not set
CONFIG_THERMAL_DEFAULT_GOV_STEP_WISE=y
# CONFIG_THERMAL_DEFAULT_GOV_FAIR_SHARE is not set
# CONFIG_THERMAL_DEFAULT_GOV_USER_SPACE is not set
# CONFIG_THERMAL_GOV_FAIR_SHARE is not set
CONFIG_THERMAL_GOV_STEP_WISE=y
# CONFIG_THERMAL_GOV_BANG_BANG is not set
# CONFIG_THERMAL_GOV_USER_SPACE is not set
# CONFIG_PCIE_THERMAL is not set
# CONFIG_THERMAL_EMULATION is not set
# CONFIG_THERMAL_MMIO is not set

#
# Intel thermal drivers
#
# CONFIG_INTEL_POWERCLAMP is not set
CONFIG_X86_THERMAL_VECTOR=y
CONFIG_INTEL_TCC=y
CONFIG_X86_PKG_TEMP_THERMAL=y
# CONFIG_INTEL_SOC_DTS_THERMAL is not set

#
# ACPI INT340X thermal drivers
#
# CONFIG_INT340X_THERMAL is not set
# end of ACPI INT340X thermal drivers

# CONFIG_INTEL_BXT_PMIC_THERMAL is not set
# CONFIG_INTEL_PCH_THERMAL is not set
# CONFIG_INTEL_TCC_COOLING is not set
# CONFIG_INTEL_HFI_THERMAL is not set
# end of Intel thermal drivers

# CONFIG_GENERIC_ADC_THERMAL is not set
CONFIG_WATCHDOG=y
# CONFIG_WATCHDOG_CORE is not set
# CONFIG_WATCHDOG_NOWAYOUT is not set
CONFIG_WATCHDOG_HANDLE_BOOT_ENABLED=y
CONFIG_WATCHDOG_OPEN_TIMEOUT=0
# CONFIG_WATCHDOG_SYSFS is not set
# CONFIG_WATCHDOG_HRTIMER_PRETIMEOUT is not set

#
# Watchdog Pretimeout Governors
#

#
# Watchdog Device Drivers
#
# CONFIG_SOFT_WATCHDOG is not set
# CONFIG_CROS_EC_WATCHDOG is not set
# CONFIG_GPIO_WATCHDOG is not set
# CONFIG_LENOVO_SE10_WDT is not set
# CONFIG_LENOVO_SE30_WDT is not set
# CONFIG_WDAT_WDT is not set
# CONFIG_XILINX_WATCHDOG is not set
# CONFIG_ZIIRAVE_WATCHDOG is not set
# CONFIG_CADENCE_WATCHDOG is not set
# CONFIG_DW_WATCHDOG is not set
# CONFIG_TWL4030_WATCHDOG is not set
# CONFIG_MAX63XX_WATCHDOG is not set
# CONFIG_RETU_WATCHDOG is not set
# CONFIG_ACQUIRE_WDT is not set
# CONFIG_ADVANTECH_WDT is not set
# CONFIG_ADVANTECH_EC_WDT is not set
# CONFIG_ALIM1535_WDT is not set
# CONFIG_ALIM7101_WDT is not set
# CONFIG_EBC_C384_WDT is not set
# CONFIG_EXAR_WDT is not set
# CONFIG_F71808E_WDT is not set
# CONFIG_SP5100_TCO is not set
# CONFIG_SBC_FITPC2_WATCHDOG is not set
# CONFIG_EUROTECH_WDT is not set
# CONFIG_IB700_WDT is not set
# CONFIG_IBMASR is not set
# CONFIG_WAFER_WDT is not set
# CONFIG_I6300ESB_WDT is not set
# CONFIG_IE6XX_WDT is not set
# CONFIG_INTEL_OC_WATCHDOG is not set
# CONFIG_ITCO_WDT is not set
# CONFIG_IT8712F_WDT is not set
# CONFIG_IT87_WDT is not set
# CONFIG_HP_WATCHDOG is not set
# CONFIG_SC1200_WDT is not set
# CONFIG_PC87413_WDT is not set
# CONFIG_NV_TCO is not set
# CONFIG_60XX_WDT is not set
# CONFIG_SMSC_SCH311X_WDT is not set
# CONFIG_SMSC37B787_WDT is not set
# CONFIG_TQMX86_WDT is not set
# CONFIG_VIA_WDT is not set
# CONFIG_W83627HF_WDT is not set
# CONFIG_W83877F_WDT is not set
# CONFIG_W83977F_WDT is not set
# CONFIG_MACHZ_WDT is not set
# CONFIG_SBC_EPX_C3_WATCHDOG is not set
# CONFIG_INTEL_MEI_WDT is not set
# CONFIG_NI903X_WDT is not set
# CONFIG_NIC7018_WDT is not set
# CONFIG_MEN_A21_WDT is not set

#
# PCI-based Watchdog Cards
#
# CONFIG_PCIPCWATCHDOG is not set
# CONFIG_WDTPCI is not set

#
# USB-based Watchdog Cards
#
CONFIG_USBPCWATCHDOG=y
CONFIG_SSB_POSSIBLE=y
CONFIG_SSB=y
CONFIG_SSB_PCIHOST_POSSIBLE=y
# CONFIG_SSB_PCIHOST is not set
CONFIG_SSB_PCMCIAHOST_POSSIBLE=y
# CONFIG_SSB_PCMCIAHOST is not set
CONFIG_SSB_SDIOHOST_POSSIBLE=y
# CONFIG_SSB_SDIOHOST is not set
# CONFIG_SSB_DRIVER_GPIO is not set
CONFIG_BCMA_POSSIBLE=y
CONFIG_BCMA=y
CONFIG_BCMA_HOST_PCI_POSSIBLE=y
# CONFIG_BCMA_HOST_PCI is not set
# CONFIG_BCMA_HOST_SOC is not set
# CONFIG_BCMA_DRIVER_PCI is not set
# CONFIG_BCMA_DRIVER_GMAC_CMN is not set
# CONFIG_BCMA_DRIVER_GPIO is not set
# CONFIG_BCMA_DEBUG is not set

#
# Multifunction device drivers
#
CONFIG_MFD_CORE=y
# CONFIG_MFD_ADP5585 is not set
# CONFIG_MFD_ACT8945A is not set
# CONFIG_MFD_AS3711 is not set
# CONFIG_MFD_SMPRO is not set
# CONFIG_MFD_AS3722 is not set
# CONFIG_PMIC_ADP5520 is not set
# CONFIG_MFD_AAT2870_CORE is not set
# CONFIG_MFD_ATMEL_FLEXCOM is not set
# CONFIG_MFD_ATMEL_HLCDC is not set
# CONFIG_MFD_BCM590XX is not set
# CONFIG_MFD_BD9571MWV is not set
# CONFIG_MFD_AXP20X_I2C is not set
# CONFIG_MFD_CGBC is not set
CONFIG_MFD_CROS_EC_DEV=y
# CONFIG_MFD_CS40L50_I2C is not set
# CONFIG_MFD_CS40L50_SPI is not set
# CONFIG_MFD_CS42L43_I2C is not set
# CONFIG_MFD_CS42L43_SDW is not set
# CONFIG_MFD_LOCHNAGAR is not set
# CONFIG_MFD_MADERA is not set
# CONFIG_PMIC_DA903X is not set
# CONFIG_MFD_DA9052_SPI is not set
# CONFIG_MFD_DA9052_I2C is not set
# CONFIG_MFD_DA9055 is not set
# CONFIG_MFD_DA9062 is not set
# CONFIG_MFD_DA9063 is not set
# CONFIG_MFD_DA9150 is not set
CONFIG_MFD_DLN2=y
# CONFIG_MFD_GATEWORKS_GSC is not set
# CONFIG_MFD_MC13XXX_SPI is not set
# CONFIG_MFD_MC13XXX_I2C is not set
# CONFIG_MFD_MP2629 is not set
# CONFIG_MFD_PF1550 is not set
# CONFIG_MFD_HI6421_PMIC is not set
# CONFIG_MFD_INTEL_QUARK_I2C_GPIO is not set
# CONFIG_LPC_ICH is not set
# CONFIG_LPC_SCH is not set
# CONFIG_INTEL_SOC_PMIC is not set
CONFIG_INTEL_SOC_PMIC_BXTWC=y
CONFIG_INTEL_SOC_PMIC_CHTWC=y
# CONFIG_INTEL_SOC_PMIC_CHTDC_TI is not set
# CONFIG_MFD_INTEL_LPSS_ACPI is not set
# CONFIG_MFD_INTEL_LPSS_PCI is not set
CONFIG_MFD_INTEL_PMC_BXT=y
# CONFIG_MFD_IQS62X is not set
# CONFIG_MFD_JANZ_CMODIO is not set
# CONFIG_MFD_KEMPLD is not set
# CONFIG_MFD_88PM800 is not set
# CONFIG_MFD_88PM805 is not set
# CONFIG_MFD_88PM860X is not set
# CONFIG_MFD_88PM886_PMIC is not set
# CONFIG_MFD_MAX5970 is not set
# CONFIG_MFD_MAX14577 is not set
# CONFIG_MFD_MAX77541 is not set
# CONFIG_MFD_MAX77620 is not set
# CONFIG_MFD_MAX77650 is not set
# CONFIG_MFD_MAX77686 is not set
# CONFIG_MFD_MAX77693 is not set
# CONFIG_MFD_MAX77705 is not set
# CONFIG_MFD_MAX77714 is not set
# CONFIG_MFD_MAX77759 is not set
# CONFIG_MFD_MAX77843 is not set
# CONFIG_MFD_MAX8907 is not set
# CONFIG_MFD_MAX8925 is not set
# CONFIG_MFD_MAX8997 is not set
# CONFIG_MFD_MAX8998 is not set
CONFIG_MFD_MT6360=y
CONFIG_MFD_MT6370=y
# CONFIG_MFD_MT6397 is not set
# CONFIG_MFD_MENF21BMC is not set
# CONFIG_MFD_NCT6694 is not set
# CONFIG_MFD_OCELOT is not set
# CONFIG_EZX_PCAP is not set
# CONFIG_MFD_CPCAP is not set
CONFIG_MFD_VIPERBOARD=y
# CONFIG_MFD_NTXEC is not set
CONFIG_MFD_RETU=y
# CONFIG_MFD_SY7636A is not set
# CONFIG_MFD_RDC321X is not set
# CONFIG_MFD_RT4831 is not set
# CONFIG_MFD_RT5033 is not set
# CONFIG_MFD_RT5120 is not set
# CONFIG_MFD_RC5T583 is not set
# CONFIG_MFD_RK8XX_I2C is not set
# CONFIG_MFD_RK8XX_SPI is not set
# CONFIG_MFD_RN5T618 is not set
# CONFIG_MFD_SEC_I2C is not set
# CONFIG_MFD_SI476X_CORE is not set
# CONFIG_MFD_SM501 is not set
# CONFIG_MFD_SKY81452 is not set
# CONFIG_MFD_STMPE is not set
CONFIG_MFD_SYSCON=y
# CONFIG_MFD_LP3943 is not set
# CONFIG_MFD_LP8788 is not set
# CONFIG_MFD_TI_LMU is not set
# CONFIG_MFD_BQ257XX is not set
# CONFIG_MFD_PALMAS is not set
# CONFIG_TPS6105X is not set
# CONFIG_TPS65010 is not set
# CONFIG_TPS6507X is not set
# CONFIG_MFD_TPS65086 is not set
# CONFIG_MFD_TPS65090 is not set
# CONFIG_MFD_TPS65217 is not set
# CONFIG_MFD_TI_LP873X is not set
# CONFIG_MFD_TI_LP87565 is not set
# CONFIG_MFD_TPS65218 is not set
# CONFIG_MFD_TPS65219 is not set
# CONFIG_MFD_TPS6586X is not set
# CONFIG_MFD_TPS65910 is not set
# CONFIG_MFD_TPS65912_I2C is not set
# CONFIG_MFD_TPS65912_SPI is not set
# CONFIG_MFD_TPS6594_I2C is not set
# CONFIG_MFD_TPS6594_SPI is not set
CONFIG_TWL4030_CORE=y
# CONFIG_MFD_TWL4030_AUDIO is not set
# CONFIG_TWL6040_CORE is not set
# CONFIG_MFD_LM3533 is not set
# CONFIG_MFD_TC3589X is not set
# CONFIG_MFD_TQMX86 is not set
# CONFIG_MFD_VX855 is not set
# CONFIG_MFD_ARIZONA_I2C is not set
# CONFIG_MFD_ARIZONA_SPI is not set
# CONFIG_MFD_WM8400 is not set
# CONFIG_MFD_WM831X_I2C is not set
# CONFIG_MFD_WM831X_SPI is not set
# CONFIG_MFD_WM8350_I2C is not set
# CONFIG_MFD_WM8994 is not set
# CONFIG_MFD_ROHM_BD718XX is not set
# CONFIG_MFD_ROHM_BD71828 is not set
# CONFIG_MFD_ROHM_BD957XMUF is not set
# CONFIG_MFD_ROHM_BD96801 is not set
# CONFIG_MFD_STPMIC1 is not set
# CONFIG_MFD_STMFX is not set
# CONFIG_MFD_ATC260X_I2C is not set
# CONFIG_MFD_QCOM_PM8008 is not set
# CONFIG_RAVE_SP_CORE is not set
# CONFIG_MFD_INTEL_M10_BMC_SPI is not set
# CONFIG_MFD_QNAP_MCU is not set
# CONFIG_MFD_RSMU_I2C is not set
# CONFIG_MFD_RSMU_SPI is not set
# CONFIG_MFD_UPBOARD_FPGA is not set
# CONFIG_MFD_MAX7360 is not set
# end of Multifunction device drivers

CONFIG_REGULATOR=y
# CONFIG_REGULATOR_DEBUG is not set
CONFIG_REGULATOR_FIXED_VOLTAGE=y
# CONFIG_REGULATOR_VIRTUAL_CONSUMER is not set
# CONFIG_REGULATOR_USERSPACE_CONSUMER is not set
# CONFIG_REGULATOR_NETLINK_EVENTS is not set
# CONFIG_REGULATOR_88PG86X is not set
# CONFIG_REGULATOR_ACT8865 is not set
# CONFIG_REGULATOR_AD5398 is not set
# CONFIG_REGULATOR_ADP5055 is not set
# CONFIG_REGULATOR_AW37503 is not set
# CONFIG_REGULATOR_CROS_EC is not set
# CONFIG_REGULATOR_DA9121 is not set
# CONFIG_REGULATOR_DA9210 is not set
# CONFIG_REGULATOR_DA9211 is not set
# CONFIG_REGULATOR_FAN53555 is not set
# CONFIG_REGULATOR_FAN53880 is not set
# CONFIG_REGULATOR_GPIO is not set
# CONFIG_REGULATOR_ISL9305 is not set
# CONFIG_REGULATOR_ISL6271A is not set
# CONFIG_REGULATOR_FP9931 is not set
# CONFIG_REGULATOR_LP3971 is not set
# CONFIG_REGULATOR_LP3972 is not set
# CONFIG_REGULATOR_LP872X is not set
# CONFIG_REGULATOR_LP8755 is not set
# CONFIG_REGULATOR_LTC3589 is not set
# CONFIG_REGULATOR_LTC3676 is not set
# CONFIG_REGULATOR_MAX1586 is not set
# CONFIG_REGULATOR_MAX77503 is not set
# CONFIG_REGULATOR_MAX77675 is not set
# CONFIG_REGULATOR_MAX77857 is not set
# CONFIG_REGULATOR_MAX8649 is not set
# CONFIG_REGULATOR_MAX8660 is not set
# CONFIG_REGULATOR_MAX8893 is not set
# CONFIG_REGULATOR_MAX8952 is not set
# CONFIG_REGULATOR_MAX20086 is not set
# CONFIG_REGULATOR_MAX20411 is not set
# CONFIG_REGULATOR_MAX77826 is not set
# CONFIG_REGULATOR_MAX77838 is not set
# CONFIG_REGULATOR_MCP16502 is not set
# CONFIG_REGULATOR_MP5416 is not set
# CONFIG_REGULATOR_MP8859 is not set
# CONFIG_REGULATOR_MP886X is not set
# CONFIG_REGULATOR_MPQ7920 is not set
# CONFIG_REGULATOR_MT6311 is not set
# CONFIG_REGULATOR_MT6360 is not set
# CONFIG_REGULATOR_MT6370 is not set
# CONFIG_REGULATOR_PCA9450 is not set
# CONFIG_REGULATOR_PF9453 is not set
# CONFIG_REGULATOR_PF0900 is not set
# CONFIG_REGULATOR_PF530X is not set
# CONFIG_REGULATOR_PF8X00 is not set
# CONFIG_REGULATOR_PFUZE100 is not set
# CONFIG_REGULATOR_PV88060 is not set
# CONFIG_REGULATOR_PV88080 is not set
# CONFIG_REGULATOR_PV88090 is not set
# CONFIG_REGULATOR_RAA215300 is not set
# CONFIG_REGULATOR_RT4801 is not set
# CONFIG_REGULATOR_RT4803 is not set
# CONFIG_REGULATOR_RT5133 is not set
# CONFIG_REGULATOR_RT5190A is not set
# CONFIG_REGULATOR_RT5739 is not set
# CONFIG_REGULATOR_RT5759 is not set
# CONFIG_REGULATOR_RT6160 is not set
# CONFIG_REGULATOR_RT6190 is not set
# CONFIG_REGULATOR_RT6245 is not set
# CONFIG_REGULATOR_RT8092 is not set
# CONFIG_REGULATOR_RTQ2134 is not set
# CONFIG_REGULATOR_RTMV20 is not set
# CONFIG_REGULATOR_RTQ6752 is not set
# CONFIG_REGULATOR_RTQ2208 is not set
# CONFIG_REGULATOR_SLG51000 is not set
# CONFIG_REGULATOR_SY8106A is not set
# CONFIG_REGULATOR_SY8824X is not set
# CONFIG_REGULATOR_SY8827N is not set
# CONFIG_REGULATOR_TPS51632 is not set
# CONFIG_REGULATOR_TPS62360 is not set
# CONFIG_REGULATOR_TPS6286X is not set
# CONFIG_REGULATOR_TPS6287X is not set
# CONFIG_REGULATOR_TPS65023 is not set
# CONFIG_REGULATOR_TPS6507X is not set
# CONFIG_REGULATOR_TPS65132 is not set
# CONFIG_REGULATOR_TPS65185 is not set
# CONFIG_REGULATOR_TPS6524X is not set
CONFIG_REGULATOR_TWL4030=y
# CONFIG_REGULATOR_VCTRL is not set
CONFIG_RC_CORE=y
# CONFIG_LIRC is not set
# CONFIG_RC_MAP is not set
# CONFIG_RC_DECODERS is not set
CONFIG_RC_DEVICES=y
# CONFIG_IR_ENE is not set
# CONFIG_IR_FINTEK is not set
# CONFIG_IR_GPIO_CIR is not set
# CONFIG_IR_HIX5HD2 is not set
CONFIG_IR_IGORPLUGUSB=y
CONFIG_IR_IGUANA=y
CONFIG_IR_IMON=y
CONFIG_IR_IMON_RAW=y
# CONFIG_IR_ITE_CIR is not set
CONFIG_IR_MCEUSB=y
# CONFIG_IR_NUVOTON is not set
CONFIG_IR_REDRAT3=y
# CONFIG_IR_SERIAL is not set
CONFIG_IR_STREAMZAP=y
CONFIG_IR_TOY=y
CONFIG_IR_TTUSBIR=y
# CONFIG_IR_WINBOND_CIR is not set
CONFIG_RC_ATI_REMOTE=y
# CONFIG_RC_LOOPBACK is not set
CONFIG_RC_XBOX_DVD=y
CONFIG_CEC_CORE=y

#
# CEC support
#
# CONFIG_MEDIA_CEC_RC is not set
CONFIG_MEDIA_CEC_SUPPORT=y
# CONFIG_CEC_CH7322 is not set
# CONFIG_CEC_NXP_TDA9950 is not set
# CONFIG_CEC_CROS_EC is not set
# CONFIG_CEC_GPIO is not set
# CONFIG_CEC_SECO is not set
# CONFIG_USB_EXTRON_DA_HD_4K_PLUS_CEC is not set
CONFIG_USB_PULSE8_CEC=y
CONFIG_USB_RAINSHADOW_CEC=y
# end of CEC support

CONFIG_MEDIA_SUPPORT=y
# CONFIG_MEDIA_SUPPORT_FILTER is not set
# CONFIG_MEDIA_SUBDRV_AUTOSELECT is not set

#
# Media device types
#
CONFIG_MEDIA_CAMERA_SUPPORT=y
CONFIG_MEDIA_ANALOG_TV_SUPPORT=y
CONFIG_MEDIA_DIGITAL_TV_SUPPORT=y
CONFIG_MEDIA_RADIO_SUPPORT=y
CONFIG_MEDIA_SDR_SUPPORT=y
CONFIG_MEDIA_PLATFORM_SUPPORT=y
CONFIG_MEDIA_TEST_SUPPORT=y
# end of Media device types

#
# Media core support
#
CONFIG_VIDEO_DEV=y
CONFIG_MEDIA_CONTROLLER=y
CONFIG_DVB_CORE=y
# end of Media core support

#
# Video4Linux options
#
CONFIG_VIDEO_V4L2_I2C=y
# CONFIG_VIDEO_ADV_DEBUG is not set
# CONFIG_VIDEO_FIXED_MINOR_RANGES is not set
CONFIG_VIDEO_TUNER=y
# end of Video4Linux options

#
# Media controller options
#
CONFIG_MEDIA_CONTROLLER_DVB=y
# end of Media controller options

#
# Digital TV options
#
# CONFIG_DVB_MMAP is not set
# CONFIG_DVB_NET is not set
CONFIG_DVB_MAX_ADAPTERS=16
# CONFIG_DVB_DYNAMIC_MINORS is not set
# CONFIG_DVB_DEMUX_SECTION_LOSS_LOG is not set
# CONFIG_DVB_ULE_DEBUG is not set
# end of Digital TV options

#
# Media drivers
#

#
# Media drivers
#
CONFIG_MEDIA_USB_SUPPORT=y

#
# Webcam devices
#
CONFIG_USB_GSPCA=y
CONFIG_USB_GSPCA_BENQ=y
CONFIG_USB_GSPCA_CONEX=y
CONFIG_USB_GSPCA_CPIA1=y
CONFIG_USB_GSPCA_DTCS033=y
CONFIG_USB_GSPCA_ETOMS=y
CONFIG_USB_GSPCA_FINEPIX=y
CONFIG_USB_GSPCA_JEILINJ=y
CONFIG_USB_GSPCA_JL2005BCD=y
CONFIG_USB_GSPCA_KINECT=y
CONFIG_USB_GSPCA_KONICA=y
CONFIG_USB_GSPCA_MARS=y
CONFIG_USB_GSPCA_MR97310A=y
CONFIG_USB_GSPCA_NW80X=y
CONFIG_USB_GSPCA_OV519=y
CONFIG_USB_GSPCA_OV534=y
CONFIG_USB_GSPCA_OV534_9=y
CONFIG_USB_GSPCA_PAC207=y
CONFIG_USB_GSPCA_PAC7302=y
CONFIG_USB_GSPCA_PAC7311=y
CONFIG_USB_GSPCA_SE401=y
CONFIG_USB_GSPCA_SN9C2028=y
CONFIG_USB_GSPCA_SN9C20X=y
CONFIG_USB_GSPCA_SONIXB=y
CONFIG_USB_GSPCA_SONIXJ=y
CONFIG_USB_GSPCA_SPCA1528=y
CONFIG_USB_GSPCA_SPCA500=y
CONFIG_USB_GSPCA_SPCA501=y
CONFIG_USB_GSPCA_SPCA505=y
CONFIG_USB_GSPCA_SPCA506=y
CONFIG_USB_GSPCA_SPCA508=y
CONFIG_USB_GSPCA_SPCA561=y
CONFIG_USB_GSPCA_SQ905=y
CONFIG_USB_GSPCA_SQ905C=y
CONFIG_USB_GSPCA_SQ930X=y
CONFIG_USB_GSPCA_STK014=y
CONFIG_USB_GSPCA_STK1135=y
CONFIG_USB_GSPCA_STV0680=y
CONFIG_USB_GSPCA_SUNPLUS=y
CONFIG_USB_GSPCA_T613=y
CONFIG_USB_GSPCA_TOPRO=y
CONFIG_USB_GSPCA_TOUPTEK=y
CONFIG_USB_GSPCA_TV8532=y
CONFIG_USB_GSPCA_VC032X=y
CONFIG_USB_GSPCA_VICAM=y
CONFIG_USB_GSPCA_XIRLINK_CIT=y
CONFIG_USB_GSPCA_ZC3XX=y
CONFIG_USB_GL860=y
CONFIG_USB_M5602=y
CONFIG_USB_STV06XX=y
CONFIG_USB_PWC=y
# CONFIG_USB_PWC_DEBUG is not set
CONFIG_USB_PWC_INPUT_EVDEV=y
CONFIG_USB_S2255=y
CONFIG_VIDEO_USBTV=y
CONFIG_USB_VIDEO_CLASS=y
CONFIG_USB_VIDEO_CLASS_INPUT_EVDEV=y

#
# Analog TV USB devices
#
CONFIG_VIDEO_GO7007=y
CONFIG_VIDEO_GO7007_USB=y
CONFIG_VIDEO_GO7007_LOADER=y
CONFIG_VIDEO_GO7007_USB_S2250_BOARD=y
CONFIG_VIDEO_HDPVR=y
CONFIG_VIDEO_PVRUSB2=y
CONFIG_VIDEO_PVRUSB2_SYSFS=y
CONFIG_VIDEO_PVRUSB2_DVB=y
# CONFIG_VIDEO_PVRUSB2_DEBUGIFC is not set
CONFIG_VIDEO_STK1160=y

#
# Analog/digital TV USB devices
#
CONFIG_VIDEO_AU0828=y
CONFIG_VIDEO_AU0828_V4L2=y
CONFIG_VIDEO_AU0828_RC=y
CONFIG_VIDEO_CX231XX=y
CONFIG_VIDEO_CX231XX_RC=y
CONFIG_VIDEO_CX231XX_ALSA=y
CONFIG_VIDEO_CX231XX_DVB=y

#
# Digital TV USB devices
#
CONFIG_DVB_AS102=y
CONFIG_DVB_B2C2_FLEXCOP_USB=y
# CONFIG_DVB_B2C2_FLEXCOP_USB_DEBUG is not set
CONFIG_DVB_USB_V2=y
CONFIG_DVB_USB_AF9015=y
CONFIG_DVB_USB_AF9035=y
CONFIG_DVB_USB_ANYSEE=y
CONFIG_DVB_USB_AU6610=y
CONFIG_DVB_USB_AZ6007=y
CONFIG_DVB_USB_CE6230=y
CONFIG_DVB_USB_DVBSKY=y
CONFIG_DVB_USB_EC168=y
CONFIG_DVB_USB_GL861=y
CONFIG_DVB_USB_LME2510=y
CONFIG_DVB_USB_MXL111SF=y
CONFIG_DVB_USB_RTL28XXU=y
CONFIG_DVB_USB_ZD1301=y
CONFIG_DVB_USB=y
# CONFIG_DVB_USB_DEBUG is not set
CONFIG_DVB_USB_A800=y
CONFIG_DVB_USB_AF9005=y
CONFIG_DVB_USB_AF9005_REMOTE=y
CONFIG_DVB_USB_AZ6027=y
CONFIG_DVB_USB_CINERGY_T2=y
CONFIG_DVB_USB_CXUSB=y
CONFIG_DVB_USB_CXUSB_ANALOG=y
CONFIG_DVB_USB_DIB0700=y
CONFIG_DVB_USB_DIB3000MC=y
CONFIG_DVB_USB_DIBUSB_MB=y
# CONFIG_DVB_USB_DIBUSB_MB_FAULTY is not set
CONFIG_DVB_USB_DIBUSB_MC=y
CONFIG_DVB_USB_DIGITV=y
CONFIG_DVB_USB_DTT200U=y
CONFIG_DVB_USB_DTV5100=y
CONFIG_DVB_USB_DW2102=y
CONFIG_DVB_USB_GP8PSK=y
CONFIG_DVB_USB_M920X=y
CONFIG_DVB_USB_NOVA_T_USB2=y
CONFIG_DVB_USB_OPERA1=y
CONFIG_DVB_USB_PCTV452E=y
CONFIG_DVB_USB_TECHNISAT_USB2=y
CONFIG_DVB_USB_TTUSB2=y
CONFIG_DVB_USB_UMT_010=y
CONFIG_DVB_USB_VP702X=y
CONFIG_DVB_USB_VP7045=y
CONFIG_SMS_USB_DRV=y
CONFIG_DVB_TTUSB_BUDGET=y
CONFIG_DVB_TTUSB_DEC=y

#
# Webcam, TV (analog/digital) USB devices
#
CONFIG_VIDEO_EM28XX=y
CONFIG_VIDEO_EM28XX_V4L2=y
CONFIG_VIDEO_EM28XX_ALSA=y
CONFIG_VIDEO_EM28XX_DVB=y
CONFIG_VIDEO_EM28XX_RC=y

#
# Software defined radio USB devices
#
CONFIG_USB_AIRSPY=y
CONFIG_USB_HACKRF=y
CONFIG_USB_MSI2500=y
CONFIG_MEDIA_PCI_SUPPORT=y

#
# Media capture support
#
# CONFIG_VIDEO_SOLO6X10 is not set
# CONFIG_VIDEO_TW5864 is not set
# CONFIG_VIDEO_TW68 is not set
# CONFIG_VIDEO_TW686X is not set
# CONFIG_VIDEO_ZORAN is not set

#
# Media capture/analog TV support
#
# CONFIG_VIDEO_DT3155 is not set
# CONFIG_VIDEO_IVTV is not set
# CONFIG_VIDEO_HEXIUM_GEMINI is not set
# CONFIG_VIDEO_HEXIUM_ORION is not set
# CONFIG_VIDEO_MXB is not set

#
# Media capture/analog/hybrid TV support
#
# CONFIG_VIDEO_BT848 is not set
# CONFIG_VIDEO_CX18 is not set
# CONFIG_VIDEO_CX23885 is not set
# CONFIG_VIDEO_CX25821 is not set
# CONFIG_VIDEO_CX88 is not set
CONFIG_VIDEO_SAA7134=y
# CONFIG_VIDEO_SAA7134_ALSA is not set
# CONFIG_VIDEO_SAA7134_RC is not set
# CONFIG_VIDEO_SAA7134_DVB is not set
CONFIG_VIDEO_SAA7134_GO7007=y
# CONFIG_VIDEO_SAA7164 is not set

#
# Media digital TV PCI Adapters
#
CONFIG_DVB_B2C2_FLEXCOP_PCI=y
# CONFIG_DVB_B2C2_FLEXCOP_PCI_DEBUG is not set
# CONFIG_DVB_DDBRIDGE is not set
# CONFIG_DVB_DM1105 is not set
# CONFIG_MANTIS_CORE is not set
# CONFIG_DVB_NETUP_UNIDVB is not set
# CONFIG_DVB_NGENE is not set
# CONFIG_DVB_PLUTO2 is not set
# CONFIG_DVB_PT1 is not set
# CONFIG_DVB_PT3 is not set
# CONFIG_DVB_SMIPCIE is not set
# CONFIG_DVB_BUDGET_CORE is not set
# CONFIG_VIDEO_IPU3_CIO2 is not set
# CONFIG_VIDEO_INTEL_IPU6 is not set
# CONFIG_INTEL_VSC is not set
# CONFIG_IPU_BRIDGE is not set
CONFIG_RADIO_ADAPTERS=y
# CONFIG_RADIO_MAXIRADIO is not set
# CONFIG_RADIO_SAA7706H is not set
CONFIG_RADIO_SHARK=y
CONFIG_RADIO_SHARK2=y
CONFIG_RADIO_SI4713=y
CONFIG_RADIO_TEA575X=y
# CONFIG_RADIO_TEA5764 is not set
# CONFIG_RADIO_TEF6862 is not set
CONFIG_USB_DSBR=y
CONFIG_USB_KEENE=y
CONFIG_USB_MA901=y
CONFIG_USB_MR800=y
CONFIG_USB_RAREMONO=y
CONFIG_RADIO_SI470X=y
CONFIG_USB_SI470X=y
# CONFIG_I2C_SI470X is not set
CONFIG_USB_SI4713=y
# CONFIG_PLATFORM_SI4713 is not set
CONFIG_I2C_SI4713=y
# CONFIG_MEDIA_PLATFORM_DRIVERS is not set

#
# MMC/SDIO DVB adapters
#
CONFIG_SMS_SDIO_DRV=y
# CONFIG_V4L_TEST_DRIVERS is not set
# CONFIG_DVB_TEST_DRIVERS is not set
CONFIG_MEDIA_COMMON_OPTIONS=y

#
# common driver options
#
CONFIG_CYPRESS_FIRMWARE=y
CONFIG_TTPCI_EEPROM=y
CONFIG_UVC_COMMON=y
CONFIG_VIDEO_CX2341X=y
CONFIG_VIDEO_TVEEPROM=y
CONFIG_DVB_B2C2_FLEXCOP=y
CONFIG_SMS_SIANO_MDTV=y
CONFIG_SMS_SIANO_RC=y
CONFIG_SMS_SIANO_DEBUGFS=y
CONFIG_VIDEOBUF2_CORE=y
CONFIG_VIDEOBUF2_V4L2=y
CONFIG_VIDEOBUF2_MEMOPS=y
CONFIG_VIDEOBUF2_VMALLOC=y
CONFIG_VIDEOBUF2_DMA_SG=y
# end of Media drivers

#
# Media ancillary drivers
#
CONFIG_MEDIA_ATTACH=y
# CONFIG_VIDEO_IR_I2C is not set
# CONFIG_VIDEO_CAMERA_SENSOR is not set

#
# Camera ISPs
#
# CONFIG_VIDEO_THP7312 is not set
# end of Camera ISPs

# CONFIG_VIDEO_CAMERA_LENS is not set

#
# Flash devices
#
# CONFIG_VIDEO_ADP1653 is not set
# CONFIG_VIDEO_LM3560 is not set
# CONFIG_VIDEO_LM3646 is not set
# end of Flash devices

#
# Audio decoders, processors and mixers
#
# CONFIG_VIDEO_CS3308 is not set
# CONFIG_VIDEO_CS5345 is not set
CONFIG_VIDEO_CS53L32A=y
CONFIG_VIDEO_MSP3400=y
# CONFIG_VIDEO_SONY_BTF_MPX is not set
# CONFIG_VIDEO_TDA1997X is not set
# CONFIG_VIDEO_TDA7432 is not set
# CONFIG_VIDEO_TDA9840 is not set
# CONFIG_VIDEO_TEA6415C is not set
# CONFIG_VIDEO_TEA6420 is not set
# CONFIG_VIDEO_TLV320AIC23B is not set
# CONFIG_VIDEO_TVAUDIO is not set
# CONFIG_VIDEO_UDA1342 is not set
# CONFIG_VIDEO_VP27SMPX is not set
# CONFIG_VIDEO_WM8739 is not set
CONFIG_VIDEO_WM8775=y
# end of Audio decoders, processors and mixers

#
# RDS decoders
#
# CONFIG_VIDEO_SAA6588 is not set
# end of RDS decoders

#
# Video decoders
#
# CONFIG_VIDEO_ADV7180 is not set
# CONFIG_VIDEO_ADV7183 is not set
# CONFIG_VIDEO_ADV748X is not set
# CONFIG_VIDEO_ADV7604 is not set
# CONFIG_VIDEO_ADV7842 is not set
# CONFIG_VIDEO_BT819 is not set
# CONFIG_VIDEO_BT856 is not set
# CONFIG_VIDEO_BT866 is not set
# CONFIG_VIDEO_ISL7998X is not set
# CONFIG_VIDEO_LT6911UXE is not set
# CONFIG_VIDEO_KS0127 is not set
# CONFIG_VIDEO_MAX9286 is not set
# CONFIG_VIDEO_ML86V7667 is not set
# CONFIG_VIDEO_SAA7110 is not set
CONFIG_VIDEO_SAA711X=y
# CONFIG_VIDEO_TC358743 is not set
# CONFIG_VIDEO_TC358746 is not set
# CONFIG_VIDEO_TVP514X is not set
# CONFIG_VIDEO_TVP5150 is not set
# CONFIG_VIDEO_TVP7002 is not set
# CONFIG_VIDEO_TW2804 is not set
# CONFIG_VIDEO_TW9900 is not set
# CONFIG_VIDEO_TW9903 is not set
# CONFIG_VIDEO_TW9906 is not set
# CONFIG_VIDEO_TW9910 is not set
# CONFIG_VIDEO_VPX3220 is not set

#
# Video and audio decoders
#
# CONFIG_VIDEO_SAA717X is not set
CONFIG_VIDEO_CX25840=y
# end of Video decoders

#
# Video encoders
#
# CONFIG_VIDEO_ADV7170 is not set
# CONFIG_VIDEO_ADV7175 is not set
# CONFIG_VIDEO_ADV7343 is not set
# CONFIG_VIDEO_ADV7393 is not set
# CONFIG_VIDEO_ADV7511 is not set
# CONFIG_VIDEO_AK881X is not set
# CONFIG_VIDEO_SAA7127 is not set
# CONFIG_VIDEO_SAA7185 is not set
# CONFIG_VIDEO_THS8200 is not set
# end of Video encoders

#
# Video improvement chips
#
# CONFIG_VIDEO_UPD64031A is not set
# CONFIG_VIDEO_UPD64083 is not set
# end of Video improvement chips

#
# Audio/Video compression chips
#
# CONFIG_VIDEO_SAA6752HS is not set
# end of Audio/Video compression chips

#
# SDR tuner chips
#
# CONFIG_SDR_MAX2175 is not set
# end of SDR tuner chips

#
# Miscellaneous helper chips
#
# CONFIG_VIDEO_I2C is not set
# CONFIG_VIDEO_M52790 is not set
# CONFIG_VIDEO_ST_MIPID02 is not set
# CONFIG_VIDEO_THS7303 is not set
# end of Miscellaneous helper chips

#
# Video serializers and deserializers
#
# CONFIG_VIDEO_DS90UB913 is not set
# CONFIG_VIDEO_DS90UB953 is not set
# CONFIG_VIDEO_DS90UB960 is not set
# CONFIG_VIDEO_MAX96714 is not set
# CONFIG_VIDEO_MAX96717 is not set
# end of Video serializers and deserializers

#
# Media SPI Adapters
#
# CONFIG_CXD2880_SPI_DRV is not set
# CONFIG_VIDEO_GS1662 is not set
# end of Media SPI Adapters

CONFIG_MEDIA_TUNER=y

#
# Customize TV tuners
#
# CONFIG_MEDIA_TUNER_E4000 is not set
# CONFIG_MEDIA_TUNER_FC0011 is not set
# CONFIG_MEDIA_TUNER_FC0012 is not set
# CONFIG_MEDIA_TUNER_FC0013 is not set
# CONFIG_MEDIA_TUNER_FC2580 is not set
# CONFIG_MEDIA_TUNER_IT913X is not set
# CONFIG_MEDIA_TUNER_M88RS6000T is not set
# CONFIG_MEDIA_TUNER_MAX2165 is not set
# CONFIG_MEDIA_TUNER_MC44S803 is not set
CONFIG_MEDIA_TUNER_MSI001=y
# CONFIG_MEDIA_TUNER_MT2060 is not set
# CONFIG_MEDIA_TUNER_MT2063 is not set
# CONFIG_MEDIA_TUNER_MT20XX is not set
# CONFIG_MEDIA_TUNER_MT2131 is not set
# CONFIG_MEDIA_TUNER_MT2266 is not set
# CONFIG_MEDIA_TUNER_MXL301RF is not set
# CONFIG_MEDIA_TUNER_MXL5005S is not set
# CONFIG_MEDIA_TUNER_MXL5007T is not set
# CONFIG_MEDIA_TUNER_QM1D1B0004 is not set
# CONFIG_MEDIA_TUNER_QM1D1C0042 is not set
# CONFIG_MEDIA_TUNER_QT1010 is not set
# CONFIG_MEDIA_TUNER_R820T is not set
# CONFIG_MEDIA_TUNER_SI2157 is not set
# CONFIG_MEDIA_TUNER_SIMPLE is not set
# CONFIG_MEDIA_TUNER_TDA18212 is not set
# CONFIG_MEDIA_TUNER_TDA18218 is not set
# CONFIG_MEDIA_TUNER_TDA18250 is not set
# CONFIG_MEDIA_TUNER_TDA18271 is not set
# CONFIG_MEDIA_TUNER_TDA827X is not set
# CONFIG_MEDIA_TUNER_TDA8290 is not set
# CONFIG_MEDIA_TUNER_TDA9887 is not set
# CONFIG_MEDIA_TUNER_TEA5761 is not set
# CONFIG_MEDIA_TUNER_TEA5767 is not set
# CONFIG_MEDIA_TUNER_TUA9001 is not set
# CONFIG_MEDIA_TUNER_XC2028 is not set
# CONFIG_MEDIA_TUNER_XC4000 is not set
# CONFIG_MEDIA_TUNER_XC5000 is not set
# end of Customize TV tuners

#
# Customise DVB Frontends
#

#
# Multistandard (satellite) frontends
#
# CONFIG_DVB_M88DS3103 is not set
# CONFIG_DVB_MXL5XX is not set
# CONFIG_DVB_STB0899 is not set
# CONFIG_DVB_STB6100 is not set
# CONFIG_DVB_STV090x is not set
# CONFIG_DVB_STV0910 is not set
# CONFIG_DVB_STV6110x is not set
# CONFIG_DVB_STV6111 is not set

#
# Multistandard (cable + terrestrial) frontends
#
# CONFIG_DVB_DRXK is not set
# CONFIG_DVB_MN88472 is not set
# CONFIG_DVB_MN88473 is not set
# CONFIG_DVB_SI2165 is not set
# CONFIG_DVB_TDA18271C2DD is not set

#
# DVB-S (satellite) frontends
#
# CONFIG_DVB_CX24110 is not set
# CONFIG_DVB_CX24116 is not set
# CONFIG_DVB_CX24117 is not set
# CONFIG_DVB_CX24120 is not set
# CONFIG_DVB_CX24123 is not set
# CONFIG_DVB_DS3000 is not set
# CONFIG_DVB_MB86A16 is not set
# CONFIG_DVB_MT312 is not set
# CONFIG_DVB_S5H1420 is not set
# CONFIG_DVB_SI21XX is not set
# CONFIG_DVB_STB6000 is not set
# CONFIG_DVB_STV0288 is not set
# CONFIG_DVB_STV0299 is not set
# CONFIG_DVB_STV0900 is not set
# CONFIG_DVB_STV6110 is not set
# CONFIG_DVB_TDA10071 is not set
# CONFIG_DVB_TDA10086 is not set
# CONFIG_DVB_TDA8083 is not set
# CONFIG_DVB_TDA8261 is not set
# CONFIG_DVB_TDA826X is not set
# CONFIG_DVB_TS2020 is not set
# CONFIG_DVB_TUA6100 is not set
# CONFIG_DVB_TUNER_CX24113 is not set
# CONFIG_DVB_TUNER_ITD1000 is not set
# CONFIG_DVB_VES1X93 is not set
# CONFIG_DVB_ZL10036 is not set
# CONFIG_DVB_ZL10039 is not set

#
# DVB-T (terrestrial) frontends
#
CONFIG_DVB_AF9013=y
CONFIG_DVB_AS102_FE=y
# CONFIG_DVB_CX22700 is not set
# CONFIG_DVB_CX22702 is not set
# CONFIG_DVB_CXD2820R is not set
# CONFIG_DVB_CXD2841ER is not set
CONFIG_DVB_DIB3000MB=y
CONFIG_DVB_DIB3000MC=y
# CONFIG_DVB_DIB7000M is not set
# CONFIG_DVB_DIB7000P is not set
# CONFIG_DVB_DIB9000 is not set
# CONFIG_DVB_DRXD is not set
CONFIG_DVB_EC100=y
CONFIG_DVB_GP8PSK_FE=y
# CONFIG_DVB_L64781 is not set
# CONFIG_DVB_MT352 is not set
# CONFIG_DVB_NXT6000 is not set
CONFIG_DVB_RTL2830=y
CONFIG_DVB_RTL2832=y
CONFIG_DVB_RTL2832_SDR=y
# CONFIG_DVB_S5H1432 is not set
# CONFIG_DVB_SI2168 is not set
# CONFIG_DVB_SP887X is not set
# CONFIG_DVB_STV0367 is not set
# CONFIG_DVB_TDA10048 is not set
# CONFIG_DVB_TDA1004X is not set
# CONFIG_DVB_ZD1301_DEMOD is not set
CONFIG_DVB_ZL10353=y
# CONFIG_DVB_CXD2880 is not set

#
# DVB-C (cable) frontends
#
# CONFIG_DVB_STV0297 is not set
# CONFIG_DVB_TDA10021 is not set
# CONFIG_DVB_TDA10023 is not set
# CONFIG_DVB_VES1820 is not set

#
# ATSC (North American/Korean Terrestrial/Cable DTV) frontends
#
# CONFIG_DVB_AU8522_DTV is not set
# CONFIG_DVB_AU8522_V4L is not set
# CONFIG_DVB_BCM3510 is not set
# CONFIG_DVB_LG2160 is not set
# CONFIG_DVB_LGDT3305 is not set
# CONFIG_DVB_LGDT3306A is not set
# CONFIG_DVB_LGDT330X is not set
# CONFIG_DVB_MXL692 is not set
# CONFIG_DVB_NXT200X is not set
# CONFIG_DVB_OR51132 is not set
# CONFIG_DVB_OR51211 is not set
# CONFIG_DVB_S5H1409 is not set
# CONFIG_DVB_S5H1411 is not set

#
# ISDB-T (terrestrial) frontends
#
# CONFIG_DVB_DIB8000 is not set
# CONFIG_DVB_MB86A20S is not set
# CONFIG_DVB_S921 is not set

#
# ISDB-S (satellite) & ISDB-T (terrestrial) frontends
#
# CONFIG_DVB_MN88443X is not set
# CONFIG_DVB_TC90522 is not set

#
# Digital terrestrial only tuners/PLL
#
# CONFIG_DVB_PLL is not set
# CONFIG_DVB_TUNER_DIB0070 is not set
# CONFIG_DVB_TUNER_DIB0090 is not set

#
# SEC control devices for DVB-S
#
# CONFIG_DVB_A8293 is not set
CONFIG_DVB_AF9033=y
# CONFIG_DVB_ASCOT2E is not set
# CONFIG_DVB_ATBM8830 is not set
# CONFIG_DVB_HELENE is not set
# CONFIG_DVB_HORUS3A is not set
# CONFIG_DVB_ISL6405 is not set
# CONFIG_DVB_ISL6421 is not set
# CONFIG_DVB_ISL6423 is not set
# CONFIG_DVB_IX2505V is not set
# CONFIG_DVB_LGS8GL5 is not set
# CONFIG_DVB_LGS8GXX is not set
# CONFIG_DVB_LNBH25 is not set
# CONFIG_DVB_LNBH29 is not set
# CONFIG_DVB_LNBP21 is not set
# CONFIG_DVB_LNBP22 is not set
# CONFIG_DVB_M88RS2000 is not set
# CONFIG_DVB_TDA665x is not set
# CONFIG_DVB_DRX39XYJ is not set

#
# Common Interface (EN50221) controller drivers
#
# CONFIG_DVB_CXD2099 is not set
# CONFIG_DVB_SP2 is not set
# end of Customise DVB Frontends

#
# Tools to develop new frontends
#
# CONFIG_DVB_DUMMY_FE is not set
# end of Media ancillary drivers

#
# Graphics support
#
CONFIG_APERTURE_HELPERS=y
CONFIG_SCREEN_INFO=y
CONFIG_VIDEO=y
# CONFIG_AUXDISPLAY is not set
# CONFIG_PANEL is not set
CONFIG_AGP=y
CONFIG_AGP_AMD64=y
CONFIG_AGP_INTEL=y
# CONFIG_AGP_SIS is not set
# CONFIG_AGP_VIA is not set
CONFIG_INTEL_GTT=y
# CONFIG_VGA_SWITCHEROO is not set
CONFIG_DRM=y

#
# DRM debugging options
#
# CONFIG_DRM_WERROR is not set
# CONFIG_DRM_DEBUG_MM is not set
# end of DRM debugging options

CONFIG_DRM_MIPI_DSI=y
CONFIG_DRM_KMS_HELPER=y
# CONFIG_DRM_PANIC is not set
# CONFIG_DRM_DEBUG_DP_MST_TOPOLOGY_REFS is not set
# CONFIG_DRM_DEBUG_MODESET_LOCK is not set
CONFIG_DRM_CLIENT_SELECTION=y

#
# Supported DRM clients
#
# CONFIG_DRM_FBDEV_EMULATION is not set
# CONFIG_DRM_CLIENT_LOG is not set
# end of Supported DRM clients

# CONFIG_DRM_LOAD_EDID_FIRMWARE is not set
CONFIG_DRM_DISPLAY_HELPER=y
# CONFIG_DRM_DISPLAY_DP_AUX_CEC is not set
# CONFIG_DRM_DISPLAY_DP_AUX_CHARDEV is not set
CONFIG_DRM_DISPLAY_DP_HELPER=y
CONFIG_DRM_DISPLAY_DSC_HELPER=y
CONFIG_DRM_DISPLAY_HDCP_HELPER=y
CONFIG_DRM_DISPLAY_HDMI_HELPER=y
CONFIG_DRM_TTM=y
CONFIG_DRM_BUDDY=y
CONFIG_DRM_GEM_SHMEM_HELPER=y
# CONFIG_DRM_AMDGPU is not set

#
# ARM devices
#
# CONFIG_DRM_KOMEDA is not set
# end of ARM devices

# CONFIG_DRM_AST is not set
CONFIG_DRM_BRIDGE=y
CONFIG_DRM_PANEL_BRIDGE=y
CONFIG_DRM_AUX_BRIDGE=y

#
# Display Interface Bridges
#
# CONFIG_DRM_CHIPONE_ICN6211 is not set
# CONFIG_DRM_CHRONTEL_CH7033 is not set
# CONFIG_DRM_DISPLAY_CONNECTOR is not set
# CONFIG_DRM_I2C_NXP_TDA998X is not set
# CONFIG_DRM_ITE_IT6263 is not set
# CONFIG_DRM_ITE_IT6505 is not set
# CONFIG_DRM_LONTIUM_LT8912B is not set
# CONFIG_DRM_LONTIUM_LT9211 is not set
# CONFIG_DRM_LONTIUM_LT9611 is not set
# CONFIG_DRM_LONTIUM_LT9611UXC is not set
# CONFIG_DRM_ITE_IT66121 is not set
# CONFIG_DRM_LVDS_CODEC is not set
# CONFIG_DRM_MEGACHIPS_STDPXXXX_GE_B850V3_FW is not set
# CONFIG_DRM_NWL_MIPI_DSI is not set
# CONFIG_DRM_NXP_PTN3460 is not set
# CONFIG_DRM_PARADE_PS8622 is not set
# CONFIG_DRM_PARADE_PS8640 is not set
# CONFIG_DRM_SAMSUNG_DSIM is not set
# CONFIG_DRM_SIL_SII8620 is not set
# CONFIG_DRM_SII902X is not set
# CONFIG_DRM_SII9234 is not set
# CONFIG_DRM_SIMPLE_BRIDGE is not set
# CONFIG_DRM_SOLOMON_SSD2825 is not set
# CONFIG_DRM_THINE_THC63LVD1024 is not set
# CONFIG_DRM_TOSHIBA_TC358762 is not set
# CONFIG_DRM_TOSHIBA_TC358764 is not set
# CONFIG_DRM_TOSHIBA_TC358767 is not set
# CONFIG_DRM_TOSHIBA_TC358768 is not set
# CONFIG_DRM_TOSHIBA_TC358775 is not set
# CONFIG_DRM_TI_DLPC3433 is not set
# CONFIG_DRM_TI_TDP158 is not set
# CONFIG_DRM_TI_TFP410 is not set
# CONFIG_DRM_TI_SN65DSI83 is not set
# CONFIG_DRM_TI_SN65DSI86 is not set
# CONFIG_DRM_TI_TPD12S015 is not set
# CONFIG_DRM_WAVESHARE_BRIDGE is not set
# CONFIG_DRM_ANALOGIX_ANX6345 is not set
# CONFIG_DRM_ANALOGIX_ANX78XX is not set
# CONFIG_DRM_ANALOGIX_ANX7625 is not set
# CONFIG_DRM_I2C_ADV7511 is not set
# CONFIG_DRM_CDNS_DSI is not set
# CONFIG_DRM_CDNS_MHDP8546 is not set
# end of Display Interface Bridges

# CONFIG_DRM_ETNAVIV is not set
# CONFIG_DRM_GMA500 is not set
CONFIG_DRM_GUD=y
# CONFIG_DRM_HISI_HIBMC is not set
CONFIG_DRM_I915=y
CONFIG_DRM_I915_FORCE_PROBE=""
CONFIG_DRM_I915_CAPTURE_ERROR=y
CONFIG_DRM_I915_COMPRESS_ERROR=y
CONFIG_DRM_I915_USERPTR=y
# CONFIG_DRM_I915_DP_TUNNEL is not set

#
# drm/i915 Debugging
#
# CONFIG_DRM_I915_WERROR is not set
# CONFIG_DRM_I915_REPLAY_GPU_HANGS_API is not set
# CONFIG_DRM_I915_DEBUG is not set
# CONFIG_DRM_I915_DEBUG_MMIO is not set
# CONFIG_DRM_I915_SW_FENCE_DEBUG_OBJECTS is not set
# CONFIG_DRM_I915_SW_FENCE_CHECK_DAG is not set
# CONFIG_DRM_I915_DEBUG_GUC is not set
# CONFIG_DRM_I915_SELFTEST is not set
# CONFIG_DRM_I915_LOW_LEVEL_TRACEPOINTS is not set
# CONFIG_DRM_I915_DEBUG_VBLANK_EVADE is not set
# CONFIG_DRM_I915_DEBUG_RUNTIME_PM is not set
# CONFIG_DRM_I915_DEBUG_WAKEREF is not set
# end of drm/i915 Debugging

#
# drm/i915 Profile Guided Optimisation
#
CONFIG_DRM_I915_REQUEST_TIMEOUT=20000
CONFIG_DRM_I915_FENCE_TIMEOUT=10000
CONFIG_DRM_I915_USERFAULT_AUTOSUSPEND=250
CONFIG_DRM_I915_HEARTBEAT_INTERVAL=2500
CONFIG_DRM_I915_PREEMPT_TIMEOUT=640
CONFIG_DRM_I915_PREEMPT_TIMEOUT_COMPUTE=7500
CONFIG_DRM_I915_MAX_REQUEST_BUSYWAIT=8000
CONFIG_DRM_I915_STOP_TIMEOUT=100
CONFIG_DRM_I915_TIMESLICE_DURATION=1
# end of drm/i915 Profile Guided Optimisation

# CONFIG_DRM_LOGICVC is not set
# CONFIG_DRM_MGAG200 is not set
# CONFIG_DRM_NOUVEAU is not set
CONFIG_DRM_PANEL=y

#
# Display Panels
#
# CONFIG_DRM_PANEL_ABT_Y030XX067A is not set
# CONFIG_DRM_PANEL_ARM_VERSATILE is not set
# CONFIG_DRM_PANEL_ASUS_Z00T_TM5P5_NT35596 is not set
# CONFIG_DRM_PANEL_AUO_A030JTN01 is not set
# CONFIG_DRM_PANEL_BOE_BF060Y8M_AJ0 is not set
# CONFIG_DRM_PANEL_BOE_HIMAX8279D is not set
# CONFIG_DRM_PANEL_BOE_TD4320 is not set
# CONFIG_DRM_PANEL_BOE_TH101MB31UIG002_28A is not set
# CONFIG_DRM_PANEL_BOE_TV101WUM_NL6 is not set
# CONFIG_DRM_PANEL_BOE_TV101WUM_LL2 is not set
# CONFIG_DRM_PANEL_EBBG_FT8719 is not set
# CONFIG_DRM_PANEL_ELIDA_KD35T133 is not set
# CONFIG_DRM_PANEL_FEIXIN_K101_IM2BA02 is not set
# CONFIG_DRM_PANEL_FEIYANG_FY07024DI26A30D is not set
# CONFIG_DRM_PANEL_DSI_CM is not set
# CONFIG_DRM_PANEL_LVDS is not set
# CONFIG_DRM_PANEL_HIMAX_HX8279 is not set
# CONFIG_DRM_PANEL_HIMAX_HX83102 is not set
# CONFIG_DRM_PANEL_HIMAX_HX83112A is not set
# CONFIG_DRM_PANEL_HIMAX_HX83112B is not set
# CONFIG_DRM_PANEL_HIMAX_HX8394 is not set
# CONFIG_DRM_PANEL_HYDIS_HV101HD1 is not set
# CONFIG_DRM_PANEL_ILITEK_IL9322 is not set
# CONFIG_DRM_PANEL_ILITEK_ILI9341 is not set
# CONFIG_DRM_PANEL_ILITEK_ILI9805 is not set
# CONFIG_DRM_PANEL_ILITEK_ILI9806E is not set
# CONFIG_DRM_PANEL_ILITEK_ILI9881C is not set
# CONFIG_DRM_PANEL_ILITEK_ILI9882T is not set
# CONFIG_DRM_PANEL_INNOLUX_EJ030NA is not set
# CONFIG_DRM_PANEL_INNOLUX_P079ZCA is not set
# CONFIG_DRM_PANEL_JADARD_JD9365DA_H3 is not set
# CONFIG_DRM_PANEL_JDI_LPM102A188A is not set
# CONFIG_DRM_PANEL_JDI_LT070ME05000 is not set
# CONFIG_DRM_PANEL_JDI_R63452 is not set
# CONFIG_DRM_PANEL_KHADAS_TS050 is not set
# CONFIG_DRM_PANEL_KINGDISPLAY_KD097D04 is not set
# CONFIG_DRM_PANEL_LEADTEK_LTK050H3146W is not set
# CONFIG_DRM_PANEL_LEADTEK_LTK500HD1829 is not set
# CONFIG_DRM_PANEL_LINCOLNTECH_LCD197 is not set
# CONFIG_DRM_PANEL_LG_LB035Q02 is not set
# CONFIG_DRM_PANEL_LG_LD070WX3 is not set
# CONFIG_DRM_PANEL_LG_LG4573 is not set
# CONFIG_DRM_PANEL_LG_SW43408 is not set
# CONFIG_DRM_PANEL_MAGNACHIP_D53E6EA8966 is not set
# CONFIG_DRM_PANEL_MANTIX_MLAF057WE51 is not set
# CONFIG_DRM_PANEL_NEC_NL8048HL11 is not set
# CONFIG_DRM_PANEL_NEWVISION_NV3051D is not set
# CONFIG_DRM_PANEL_NEWVISION_NV3052C is not set
# CONFIG_DRM_PANEL_NOVATEK_NT35510 is not set
# CONFIG_DRM_PANEL_NOVATEK_NT35560 is not set
# CONFIG_DRM_PANEL_NOVATEK_NT35950 is not set
# CONFIG_DRM_PANEL_NOVATEK_NT36523 is not set
# CONFIG_DRM_PANEL_NOVATEK_NT36672A is not set
# CONFIG_DRM_PANEL_NOVATEK_NT36672E is not set
# CONFIG_DRM_PANEL_NOVATEK_NT37801 is not set
# CONFIG_DRM_PANEL_NOVATEK_NT39016 is not set
# CONFIG_DRM_PANEL_OLIMEX_LCD_OLINUXINO is not set
# CONFIG_DRM_PANEL_ORISETECH_OTA5601A is not set
# CONFIG_DRM_PANEL_ORISETECH_OTM8009A is not set
# CONFIG_DRM_PANEL_OSD_OSD101T2587_53TS is not set
# CONFIG_DRM_PANEL_PANASONIC_VVX10F034N00 is not set
# CONFIG_DRM_PANEL_RASPBERRYPI_TOUCHSCREEN is not set
# CONFIG_DRM_PANEL_RAYDIUM_RM67191 is not set
# CONFIG_DRM_PANEL_RAYDIUM_RM67200 is not set
# CONFIG_DRM_PANEL_RAYDIUM_RM68200 is not set
# CONFIG_DRM_PANEL_RAYDIUM_RM692E5 is not set
# CONFIG_DRM_PANEL_RAYDIUM_RM69380 is not set
# CONFIG_DRM_PANEL_RENESAS_R61307 is not set
# CONFIG_DRM_PANEL_RENESAS_R69328 is not set
# CONFIG_DRM_PANEL_RONBO_RB070D30 is not set
# CONFIG_DRM_PANEL_SAMSUNG_AMS581VF01 is not set
# CONFIG_DRM_PANEL_SAMSUNG_AMS639RQ08 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E88A0_AMS427AP24 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E88A0_AMS452EF01 is not set
# CONFIG_DRM_PANEL_SAMSUNG_ATNA33XC20 is not set
# CONFIG_DRM_PANEL_SAMSUNG_DB7430 is not set
# CONFIG_DRM_PANEL_SAMSUNG_LD9040 is not set
# CONFIG_DRM_PANEL_SAMSUNG_LTL106HL02 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E3FA7 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6D16D0 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6D27A1 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6D7AA0 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E3FC2X01 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E3HA2 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E3HA8 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E63J0X03 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E63M0 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E8AA0 is not set
# CONFIG_DRM_PANEL_SAMSUNG_S6E8AA5X01_AMS561RA01 is not set
# CONFIG_DRM_PANEL_SAMSUNG_SOFEF00 is not set
# CONFIG_DRM_PANEL_SEIKO_43WVF1G is not set
# CONFIG_DRM_PANEL_SHARP_LQ079L1SX01 is not set
# CONFIG_DRM_PANEL_SHARP_LQ101R1SX01 is not set
# CONFIG_DRM_PANEL_SHARP_LS037V7DW01 is not set
# CONFIG_DRM_PANEL_SHARP_LS043T1LE01 is not set
# CONFIG_DRM_PANEL_SHARP_LS060T1SX01 is not set
# CONFIG_DRM_PANEL_SITRONIX_ST7701 is not set
# CONFIG_DRM_PANEL_SITRONIX_ST7703 is not set
# CONFIG_DRM_PANEL_SITRONIX_ST7789V is not set
# CONFIG_DRM_PANEL_SONY_ACX565AKM is not set
# CONFIG_DRM_PANEL_SONY_TD4353_JDI is not set
# CONFIG_DRM_PANEL_SONY_TULIP_TRULY_NT35521 is not set
# CONFIG_DRM_PANEL_STARTEK_KD070FHFID015 is not set
# CONFIG_DRM_PANEL_EDP is not set
# CONFIG_DRM_PANEL_SIMPLE is not set
# CONFIG_DRM_PANEL_SUMMIT is not set
# CONFIG_DRM_PANEL_SYNAPTICS_R63353 is not set
# CONFIG_DRM_PANEL_SYNAPTICS_TDDI is not set
# CONFIG_DRM_PANEL_TDO_TL070WSH30 is not set
# CONFIG_DRM_PANEL_TPO_TD028TTEC1 is not set
# CONFIG_DRM_PANEL_TPO_TD043MTEA1 is not set
# CONFIG_DRM_PANEL_TPO_TPG110 is not set
# CONFIG_DRM_PANEL_TRULY_NT35597_WQXGA is not set
# CONFIG_DRM_PANEL_VISIONOX_G2647FB105 is not set
# CONFIG_DRM_PANEL_VISIONOX_R66451 is not set
# CONFIG_DRM_PANEL_VISIONOX_RM69299 is not set
# CONFIG_DRM_PANEL_VISIONOX_RM692E5 is not set
# CONFIG_DRM_PANEL_VISIONOX_VTDR6130 is not set
# CONFIG_DRM_PANEL_WIDECHIPS_WS2401 is not set
# CONFIG_DRM_PANEL_XINPENG_XPP055C272 is not set
# end of Display Panels

# CONFIG_DRM_QXL is not set
# CONFIG_DRM_RADEON is not set
# CONFIG_DRM_ST7571 is not set
# CONFIG_DRM_ST7586 is not set
# CONFIG_DRM_ST7735R is not set
# CONFIG_DRM_ST7920 is not set
# CONFIG_DRM_SSD130X is not set

#
# Drivers for system framebuffers
#
# CONFIG_DRM_SIMPLEDRM is not set
# CONFIG_DRM_VESADRM is not set
# end of Drivers for system framebuffers

# CONFIG_DRM_APPLETBDRM is not set
# CONFIG_DRM_ARCPGU is not set
# CONFIG_DRM_BOCHS is not set
# CONFIG_DRM_CIRRUS_QEMU is not set
CONFIG_DRM_GM12U320=y
# CONFIG_DRM_PANEL_MIPI_DBI is not set
# CONFIG_DRM_PIXPAPER is not set
# CONFIG_TINYDRM_HX8357D is not set
# CONFIG_TINYDRM_ILI9163 is not set
# CONFIG_TINYDRM_ILI9225 is not set
# CONFIG_TINYDRM_ILI9341 is not set
# CONFIG_TINYDRM_ILI9486 is not set
# CONFIG_TINYDRM_MI0283QT is not set
# CONFIG_TINYDRM_REPAPER is not set
# CONFIG_TINYDRM_SHARP_MEMORY is not set
CONFIG_DRM_UDL=y
# CONFIG_DRM_VBOXVIDEO is not set
# CONFIG_DRM_VGEM is not set
CONFIG_DRM_VIRTIO_GPU=y
CONFIG_DRM_VIRTIO_GPU_KMS=y
# CONFIG_DRM_VKMS is not set
# CONFIG_DRM_VMWGFX is not set
# CONFIG_DRM_XE is not set
CONFIG_DRM_PANEL_ORIENTATION_QUIRKS=y

#
# Frame buffer Devices
#
CONFIG_FB=y
# CONFIG_FB_CIRRUS is not set
# CONFIG_FB_PM2 is not set
# CONFIG_FB_CYBER2000 is not set
# CONFIG_FB_ARC is not set
# CONFIG_FB_ASILIANT is not set
# CONFIG_FB_IMSTT is not set
# CONFIG_FB_VGA16 is not set
# CONFIG_FB_UVESA is not set
# CONFIG_FB_VESA is not set
# CONFIG_FB_N411 is not set
# CONFIG_FB_HGA is not set
# CONFIG_FB_OPENCORES is not set
# CONFIG_FB_S1D13XXX is not set
# CONFIG_FB_NVIDIA is not set
# CONFIG_FB_RIVA is not set
# CONFIG_FB_I740 is not set
# CONFIG_FB_RADEON is not set
# CONFIG_FB_ATY128 is not set
# CONFIG_FB_ATY is not set
# CONFIG_FB_SAVAGE is not set
# CONFIG_FB_SIS is not set
# CONFIG_FB_VIA is not set
# CONFIG_FB_NEOMAGIC is not set
# CONFIG_FB_KYRO is not set
# CONFIG_FB_3DFX is not set
# CONFIG_FB_VOODOO1 is not set
# CONFIG_FB_TRIDENT is not set
# CONFIG_FB_PM3 is not set
# CONFIG_FB_CARMINE is not set
CONFIG_FB_SMSCUFX=y
CONFIG_FB_UDL=y
# CONFIG_FB_IBM_GXT4500 is not set
# CONFIG_FB_VIRTUAL is not set
# CONFIG_FB_METRONOME is not set
# CONFIG_FB_MB862XX is not set
# CONFIG_FB_SIMPLE is not set
# CONFIG_FB_SSD1307 is not set
# CONFIG_FB_SM712 is not set
CONFIG_FB_CORE=y
CONFIG_FB_NOTIFY=y
CONFIG_FB_DEVICE=y
CONFIG_FB_SYS_FILLRECT=y
CONFIG_FB_SYS_COPYAREA=y
CONFIG_FB_SYS_IMAGEBLIT=y
# CONFIG_FB_FOREIGN_ENDIAN is not set
CONFIG_FB_SYSMEM_FOPS=y
CONFIG_FB_DEFERRED_IO=y
CONFIG_FB_SYSMEM_HELPERS=y
CONFIG_FB_SYSMEM_HELPERS_DEFERRED=y
CONFIG_FB_MODE_HELPERS=y
# CONFIG_FB_TILEBLITTING is not set
# end of Frame buffer Devices

#
# Backlight & LCD device support
#
CONFIG_LCD_CLASS_DEVICE=y
# CONFIG_LCD_L4F00242T03 is not set
# CONFIG_LCD_LMS283GF05 is not set
# CONFIG_LCD_LTV350QV is not set
# CONFIG_LCD_ILI922X is not set
# CONFIG_LCD_ILI9320 is not set
# CONFIG_LCD_TDO24M is not set
# CONFIG_LCD_VGG2432A4 is not set
# CONFIG_LCD_PLATFORM is not set
# CONFIG_LCD_AMS369FG06 is not set
# CONFIG_LCD_LMS501KF03 is not set
# CONFIG_LCD_HX8357 is not set
# CONFIG_LCD_OTM3225A is not set
CONFIG_BACKLIGHT_CLASS_DEVICE=y
# CONFIG_BACKLIGHT_AW99706 is not set
# CONFIG_BACKLIGHT_KTD253 is not set
# CONFIG_BACKLIGHT_KTD2801 is not set
# CONFIG_BACKLIGHT_KTZ8866 is not set
# CONFIG_BACKLIGHT_MT6370 is not set
# CONFIG_BACKLIGHT_APPLE is not set
# CONFIG_BACKLIGHT_QCOM_WLED is not set
# CONFIG_BACKLIGHT_SAHARA is not set
# CONFIG_BACKLIGHT_ADP8860 is not set
# CONFIG_BACKLIGHT_ADP8870 is not set
# CONFIG_BACKLIGHT_LM3509 is not set
# CONFIG_BACKLIGHT_LM3639 is not set
# CONFIG_BACKLIGHT_PANDORA is not set
# CONFIG_BACKLIGHT_GPIO is not set
# CONFIG_BACKLIGHT_LV5207LP is not set
# CONFIG_BACKLIGHT_BD6107 is not set
# CONFIG_BACKLIGHT_ARCXCNN is not set
# CONFIG_BACKLIGHT_LED is not set
# end of Backlight & LCD device support

CONFIG_HDMI=y
# CONFIG_FIRMWARE_EDID is not set

#
# Console display driver support
#
CONFIG_VGA_CONSOLE=y
CONFIG_DUMMY_CONSOLE=y
CONFIG_DUMMY_CONSOLE_COLUMNS=80
CONFIG_DUMMY_CONSOLE_ROWS=25
# CONFIG_FRAMEBUFFER_CONSOLE is not set
# end of Console display driver support

# CONFIG_LOGO is not set
# CONFIG_TRACE_GPU_MEM is not set
# end of Graphics support

# CONFIG_DRM_ACCEL is not set
CONFIG_SOUND=y
CONFIG_SND=y
CONFIG_SND_TIMER=y
CONFIG_SND_PCM=y
CONFIG_SND_HWDEP=y
CONFIG_SND_SEQ_DEVICE=y
CONFIG_SND_RAWMIDI=y
CONFIG_SND_UMP=y
CONFIG_SND_UMP_LEGACY_RAWMIDI=y
CONFIG_SND_JACK=y
CONFIG_SND_JACK_INPUT_DEV=y
# CONFIG_SND_OSSEMUL is not set
CONFIG_SND_PCM_TIMER=y
CONFIG_SND_HRTIMER=y
# CONFIG_SND_DYNAMIC_MINORS is not set
# CONFIG_SND_SUPPORT_OLD_API is not set
CONFIG_SND_PROC_FS=y
CONFIG_SND_VERBOSE_PROCFS=y
CONFIG_SND_CTL_FAST_LOOKUP=y
# CONFIG_SND_DEBUG is not set
# CONFIG_SND_CTL_INPUT_VALIDATION is not set
# CONFIG_SND_UTIMER is not set
CONFIG_SND_VMASTER=y
CONFIG_SND_DMA_SGBUF=y
CONFIG_SND_SEQUENCER=y
CONFIG_SND_SEQ_DUMMY=y
CONFIG_SND_SEQ_HRTIMER_DEFAULT=y
CONFIG_SND_SEQ_MIDI_EVENT=y
CONFIG_SND_SEQ_MIDI=y
# CONFIG_SND_SEQ_UMP is not set
CONFIG_SND_DRIVERS=y
# CONFIG_SND_PCSP is not set
# CONFIG_SND_DUMMY is not set
# CONFIG_SND_ALOOP is not set
# CONFIG_SND_PCMTEST is not set
# CONFIG_SND_VIRMIDI is not set
# CONFIG_SND_MTPAV is not set
# CONFIG_SND_MTS64 is not set
# CONFIG_SND_SERIAL_U16550 is not set
# CONFIG_SND_SERIAL_GENERIC is not set
# CONFIG_SND_MPU401 is not set
# CONFIG_SND_PORTMAN2X4 is not set
CONFIG_SND_PCI=y
# CONFIG_SND_AD1889 is not set
# CONFIG_SND_ALS300 is not set
# CONFIG_SND_ALS4000 is not set
# CONFIG_SND_ALI5451 is not set
# CONFIG_SND_ASIHPI is not set
# CONFIG_SND_ATIIXP is not set
# CONFIG_SND_ATIIXP_MODEM is not set
# CONFIG_SND_AU8810 is not set
# CONFIG_SND_AU8820 is not set
# CONFIG_SND_AU8830 is not set
# CONFIG_SND_AW2 is not set
# CONFIG_SND_AZT3328 is not set
# CONFIG_SND_BT87X is not set
# CONFIG_SND_CA0106 is not set
# CONFIG_SND_CMIPCI is not set
# CONFIG_SND_OXYGEN is not set
# CONFIG_SND_CS4281 is not set
# CONFIG_SND_CS46XX is not set
# CONFIG_SND_CTXFI is not set
# CONFIG_SND_DARLA20 is not set
# CONFIG_SND_GINA20 is not set
# CONFIG_SND_LAYLA20 is not set
# CONFIG_SND_DARLA24 is not set
# CONFIG_SND_GINA24 is not set
# CONFIG_SND_LAYLA24 is not set
# CONFIG_SND_MONA is not set
# CONFIG_SND_MIA is not set
# CONFIG_SND_ECHO3G is not set
# CONFIG_SND_INDIGO is not set
# CONFIG_SND_INDIGOIO is not set
# CONFIG_SND_INDIGODJ is not set
# CONFIG_SND_INDIGOIOX is not set
# CONFIG_SND_INDIGODJX is not set
# CONFIG_SND_EMU10K1 is not set
# CONFIG_SND_EMU10K1X is not set
# CONFIG_SND_ENS1370 is not set
# CONFIG_SND_ENS1371 is not set
# CONFIG_SND_ES1938 is not set
# CONFIG_SND_ES1968 is not set
# CONFIG_SND_FM801 is not set
# CONFIG_SND_HDSP is not set
# CONFIG_SND_HDSPM is not set
# CONFIG_SND_ICE1712 is not set
# CONFIG_SND_ICE1724 is not set
# CONFIG_SND_INTEL8X0 is not set
# CONFIG_SND_INTEL8X0M is not set
# CONFIG_SND_KORG1212 is not set
# CONFIG_SND_LOLA is not set
# CONFIG_SND_LX6464ES is not set
# CONFIG_SND_MAESTRO3 is not set
# CONFIG_SND_MIXART is not set
# CONFIG_SND_NM256 is not set
# CONFIG_SND_PCXHR is not set
# CONFIG_SND_RIPTIDE is not set
# CONFIG_SND_RME32 is not set
# CONFIG_SND_RME96 is not set
# CONFIG_SND_RME9652 is not set
# CONFIG_SND_SE6X is not set
# CONFIG_SND_SONICVIBES is not set
# CONFIG_SND_TRIDENT is not set
# CONFIG_SND_VIA82XX is not set
# CONFIG_SND_VIA82XX_MODEM is not set
# CONFIG_SND_VIRTUOSO is not set
# CONFIG_SND_VX222 is not set
# CONFIG_SND_YMFPCI is not set

#
# HD-Audio
#
CONFIG_SND_HDA=y
CONFIG_SND_HDA_HWDEP=y
# CONFIG_SND_HDA_RECONFIG is not set
# CONFIG_SND_HDA_INPUT_BEEP is not set
# CONFIG_SND_HDA_PATCH_LOADER is not set
CONFIG_SND_HDA_POWER_SAVE_DEFAULT=0
# CONFIG_SND_HDA_CTL_DEV_ID is not set
CONFIG_SND_HDA_PREALLOC_SIZE=0
CONFIG_SND_HDA_INTEL=y
# CONFIG_SND_HDA_ACPI is not set
# CONFIG_SND_HDA_CODEC_ANALOG is not set
# CONFIG_SND_HDA_CODEC_SIGMATEL is not set
# CONFIG_SND_HDA_CODEC_VIA is not set
# CONFIG_SND_HDA_CODEC_CONEXANT is not set
# CONFIG_SND_HDA_CODEC_SENARYTECH is not set
# CONFIG_SND_HDA_CODEC_CA0110 is not set
# CONFIG_SND_HDA_CODEC_CA0132 is not set
# CONFIG_SND_HDA_CODEC_CMEDIA is not set
# CONFIG_SND_HDA_CODEC_CM9825 is not set
# CONFIG_SND_HDA_CODEC_SI3054 is not set
# CONFIG_SND_HDA_GENERIC is not set
# CONFIG_SND_HDA_CODEC_REALTEK is not set
# CONFIG_SND_HDA_CODEC_CIRRUS is not set
# CONFIG_SND_HDA_CODEC_HDMI is not set
# CONFIG_SND_HDA_SCODEC_CS35L56_I2C is not set
# CONFIG_SND_HDA_SCODEC_CS35L56_SPI is not set
CONFIG_SND_HDA_CORE=y
CONFIG_SND_HDA_COMPONENT=y
CONFIG_SND_HDA_I915=y
CONFIG_SND_INTEL_NHLT=y
CONFIG_SND_INTEL_DSP_CONFIG=y
CONFIG_SND_INTEL_SOUNDWIRE_ACPI=y
# end of HD-Audio

# CONFIG_SND_SPI is not set
CONFIG_SND_USB=y
CONFIG_SND_USB_AUDIO=y
CONFIG_SND_USB_AUDIO_MIDI_V2=y
CONFIG_SND_USB_AUDIO_USE_MEDIA_CONTROLLER=y
CONFIG_SND_USB_UA101=y
CONFIG_SND_USB_USX2Y=y
CONFIG_SND_USB_CAIAQ=y
CONFIG_SND_USB_CAIAQ_INPUT=y
CONFIG_SND_USB_US122L=y
# CONFIG_SND_USB_US144MKII is not set
CONFIG_SND_USB_6FIRE=y
CONFIG_SND_USB_HIFACE=y
CONFIG_SND_BCD2000=y
CONFIG_SND_USB_LINE6=y
CONFIG_SND_USB_POD=y
CONFIG_SND_USB_PODHD=y
CONFIG_SND_USB_TONEPORT=y
CONFIG_SND_USB_VARIAX=y
CONFIG_SND_PCMCIA=y
# CONFIG_SND_VXPOCKET is not set
# CONFIG_SND_PDAUDIOCF is not set
CONFIG_SND_SOC=y
# CONFIG_SND_SOC_USB is not set

#
# Analog Devices
#
# CONFIG_SND_SOC_ADI_AXI_I2S is not set
# CONFIG_SND_SOC_ADI_AXI_SPDIF is not set
# end of Analog Devices

#
# AMD
#
# CONFIG_SND_SOC_AMD_ACP is not set
# CONFIG_SND_SOC_AMD_ACP3x is not set
# CONFIG_SND_SOC_AMD_RENOIR is not set
# CONFIG_SND_SOC_AMD_ACP5x is not set
# CONFIG_SND_SOC_AMD_ACP6x is not set
# CONFIG_SND_AMD_ACP_CONFIG is not set
# CONFIG_SND_SOC_AMD_ACP_COMMON is not set
# CONFIG_SND_SOC_AMD_RPL_ACP6x is not set
# end of AMD

#
# Apple
#
# end of Apple

#
# Atmel
#
# CONFIG_SND_SOC_MIKROE_PROTO is not set
# end of Atmel

#
# Au1x
#
# end of Au1x

#
# Broadcom
#
# CONFIG_SND_BCM63XX_I2S_WHISTLER is not set
# end of Broadcom

#
# Cirrus Logic
#
# end of Cirrus Logic

#
# DesignWare
#
# CONFIG_SND_DESIGNWARE_I2S is not set
# end of DesignWare

#
# Freescale
#

#
# Common SoC Audio options for Freescale CPUs:
#
# CONFIG_SND_SOC_FSL_ASRC is not set
# CONFIG_SND_SOC_FSL_SAI is not set
# CONFIG_SND_SOC_FSL_AUDMIX is not set
# CONFIG_SND_SOC_FSL_SSI is not set
# CONFIG_SND_SOC_FSL_SPDIF is not set
# CONFIG_SND_SOC_FSL_ESAI is not set
# CONFIG_SND_SOC_FSL_MICFIL is not set
# CONFIG_SND_SOC_FSL_XCVR is not set
# CONFIG_SND_SOC_IMX_AUDMUX is not set
# end of Freescale

#
# Google
#
# CONFIG_SND_SOC_CHV3_I2S is not set
# end of Google

#
# Hisilicon
#
# CONFIG_SND_I2S_HI6210_I2S is not set
# end of Hisilicon

#
# JZ4740
#
# end of JZ4740

#
# Kirkwood
#
# end of Kirkwood

#
# Loongson
#
# end of Loongson

#
# Intel
#
# CONFIG_SND_SOC_INTEL_SST_TOPLEVEL is not set
# CONFIG_SND_SOC_INTEL_AVS is not set
# end of Intel

#
# Mediatek
#
# CONFIG_SND_SOC_MTK_BTCVSD is not set
# end of Mediatek

#
# PXA
#
# end of PXA

#
# SoundWire (SDCA)
#
CONFIG_SND_SOC_SDCA_OPTIONAL=y
# end of SoundWire (SDCA)

#
# ST SPEAr
#
# end of ST SPEAr

#
# Spreadtrum
#
# end of Spreadtrum

#
# STMicroelectronics STM32
#
# end of STMicroelectronics STM32

#
# Tegra
#
# end of Tegra

#
# Xilinx
#
# CONFIG_SND_SOC_XILINX_I2S is not set
# CONFIG_SND_SOC_XILINX_AUDIO_FORMATTER is not set
# CONFIG_SND_SOC_XILINX_SPDIF is not set
# end of Xilinx

#
# Xtensa
#
# CONFIG_SND_SOC_XTFPGA_I2S is not set
# end of Xtensa

# CONFIG_SND_SOC_SOF_TOPLEVEL is not set
CONFIG_SND_SOC_I2C_AND_SPI=y

#
# CODEC drivers
#
# CONFIG_SND_SOC_AC97_CODEC is not set
# CONFIG_SND_SOC_ADAU1372_I2C is not set
# CONFIG_SND_SOC_ADAU1372_SPI is not set
# CONFIG_SND_SOC_ADAU1373 is not set
# CONFIG_SND_SOC_ADAU1701 is not set
# CONFIG_SND_SOC_ADAU1761_I2C is not set
# CONFIG_SND_SOC_ADAU1761_SPI is not set
# CONFIG_SND_SOC_ADAU7002 is not set
# CONFIG_SND_SOC_ADAU7118_HW is not set
# CONFIG_SND_SOC_ADAU7118_I2C is not set
# CONFIG_SND_SOC_AK4104 is not set
# CONFIG_SND_SOC_AK4118 is not set
# CONFIG_SND_SOC_AK4375 is not set
# CONFIG_SND_SOC_AK4458 is not set
# CONFIG_SND_SOC_AK4554 is not set
# CONFIG_SND_SOC_AK4613 is not set
# CONFIG_SND_SOC_AK4619 is not set
# CONFIG_SND_SOC_AK4642 is not set
# CONFIG_SND_SOC_AK5386 is not set
# CONFIG_SND_SOC_AK5558 is not set
# CONFIG_SND_SOC_ALC5623 is not set
# CONFIG_SND_SOC_AUDIO_IIO_AUX is not set
# CONFIG_SND_SOC_AW8738 is not set
# CONFIG_SND_SOC_AW88395 is not set
# CONFIG_SND_SOC_AW88166 is not set
# CONFIG_SND_SOC_AW88261 is not set
# CONFIG_SND_SOC_AW88081 is not set
# CONFIG_SND_SOC_AW87390 is not set
# CONFIG_SND_SOC_AW88399 is not set
# CONFIG_SND_SOC_BD28623 is not set
# CONFIG_SND_SOC_BT_SCO is not set
# CONFIG_SND_SOC_CHV3_CODEC is not set
# CONFIG_SND_SOC_CROS_EC_CODEC is not set
# CONFIG_SND_SOC_CS35L32 is not set
# CONFIG_SND_SOC_CS35L33 is not set
# CONFIG_SND_SOC_CS35L34 is not set
# CONFIG_SND_SOC_CS35L35 is not set
# CONFIG_SND_SOC_CS35L36 is not set
# CONFIG_SND_SOC_CS35L41_SPI is not set
# CONFIG_SND_SOC_CS35L41_I2C is not set
# CONFIG_SND_SOC_CS35L45_SPI is not set
# CONFIG_SND_SOC_CS35L45_I2C is not set
# CONFIG_SND_SOC_CS35L56_I2C is not set
# CONFIG_SND_SOC_CS35L56_SPI is not set
# CONFIG_SND_SOC_CS35L56_SDW is not set
# CONFIG_SND_SOC_CS42L42 is not set
# CONFIG_SND_SOC_CS42L42_SDW is not set
# CONFIG_SND_SOC_CS42L51_I2C is not set
# CONFIG_SND_SOC_CS42L52 is not set
# CONFIG_SND_SOC_CS42L56 is not set
# CONFIG_SND_SOC_CS42L73 is not set
# CONFIG_SND_SOC_CS42L83 is not set
# CONFIG_SND_SOC_CS42L84 is not set
# CONFIG_SND_SOC_CS4234 is not set
# CONFIG_SND_SOC_CS4265 is not set
# CONFIG_SND_SOC_CS4270 is not set
# CONFIG_SND_SOC_CS4271_I2C is not set
# CONFIG_SND_SOC_CS4271_SPI is not set
# CONFIG_SND_SOC_CS42XX8_I2C is not set
# CONFIG_SND_SOC_CS43130 is not set
# CONFIG_SND_SOC_CS4341 is not set
# CONFIG_SND_SOC_CS4349 is not set
# CONFIG_SND_SOC_CS48L32 is not set
# CONFIG_SND_SOC_CS53L30 is not set
# CONFIG_SND_SOC_CS530X_I2C is not set
# CONFIG_SND_SOC_CS530X_SPI is not set
# CONFIG_SND_SOC_CX2072X is not set
# CONFIG_SND_SOC_DA7213 is not set
# CONFIG_SND_SOC_DMIC is not set
# CONFIG_SND_SOC_ES7134 is not set
# CONFIG_SND_SOC_ES7241 is not set
# CONFIG_SND_SOC_ES8311 is not set
# CONFIG_SND_SOC_ES8316 is not set
# CONFIG_SND_SOC_ES8323 is not set
# CONFIG_SND_SOC_ES8326 is not set
# CONFIG_SND_SOC_ES8328_I2C is not set
# CONFIG_SND_SOC_ES8328_SPI is not set
# CONFIG_SND_SOC_ES8375 is not set
# CONFIG_SND_SOC_ES8389 is not set
# CONFIG_SND_SOC_FS210X is not set
# CONFIG_SND_SOC_GTM601 is not set
# CONFIG_SND_SOC_HDA is not set
# CONFIG_SND_SOC_ICS43432 is not set
# CONFIG_SND_SOC_IDT821034 is not set
# CONFIG_SND_SOC_MAX98088 is not set
# CONFIG_SND_SOC_MAX98090 is not set
# CONFIG_SND_SOC_MAX98357A is not set
# CONFIG_SND_SOC_MAX98504 is not set
# CONFIG_SND_SOC_MAX9867 is not set
# CONFIG_SND_SOC_MAX98927 is not set
# CONFIG_SND_SOC_MAX98520 is not set
# CONFIG_SND_SOC_MAX98363 is not set
# CONFIG_SND_SOC_MAX98373_I2C is not set
# CONFIG_SND_SOC_MAX98373_SDW is not set
# CONFIG_SND_SOC_MAX98388 is not set
# CONFIG_SND_SOC_MAX98390 is not set
# CONFIG_SND_SOC_MAX98396 is not set
# CONFIG_SND_SOC_MAX9860 is not set
# CONFIG_SND_SOC_MSM8916_WCD_DIGITAL is not set
# CONFIG_SND_SOC_PCM1681 is not set
# CONFIG_SND_SOC_PCM1754 is not set
# CONFIG_SND_SOC_PCM1789_I2C is not set
# CONFIG_SND_SOC_PCM179X_I2C is not set
# CONFIG_SND_SOC_PCM179X_SPI is not set
# CONFIG_SND_SOC_PCM186X_I2C is not set
# CONFIG_SND_SOC_PCM186X_SPI is not set
# CONFIG_SND_SOC_PCM3060_I2C is not set
# CONFIG_SND_SOC_PCM3060_SPI is not set
# CONFIG_SND_SOC_PCM3168A_I2C is not set
# CONFIG_SND_SOC_PCM3168A_SPI is not set
# CONFIG_SND_SOC_PCM5102A is not set
# CONFIG_SND_SOC_PCM512x_I2C is not set
# CONFIG_SND_SOC_PCM512x_SPI is not set
# CONFIG_SND_SOC_PCM6240 is not set
# CONFIG_SND_SOC_PEB2466 is not set
# CONFIG_SND_SOC_PM4125_SDW is not set
# CONFIG_SND_SOC_RT1017_SDCA_SDW is not set
# CONFIG_SND_SOC_RT1308_SDW is not set
# CONFIG_SND_SOC_RT1316_SDW is not set
# CONFIG_SND_SOC_RT1318_SDW is not set
# CONFIG_SND_SOC_RT1320_SDW is not set
# CONFIG_SND_SOC_RT5575 is not set
# CONFIG_SND_SOC_RT5616 is not set
# CONFIG_SND_SOC_RT5631 is not set
# CONFIG_SND_SOC_RT5640 is not set
# CONFIG_SND_SOC_RT5659 is not set
# CONFIG_SND_SOC_RT5682_SDW is not set
# CONFIG_SND_SOC_RT700_SDW is not set
# CONFIG_SND_SOC_RT711_SDW is not set
# CONFIG_SND_SOC_RT711_SDCA_SDW is not set
# CONFIG_SND_SOC_RT712_SDCA_SDW is not set
# CONFIG_SND_SOC_RT712_SDCA_DMIC_SDW is not set
# CONFIG_SND_SOC_RT721_SDCA_SDW is not set
# CONFIG_SND_SOC_RT722_SDCA_SDW is not set
# CONFIG_SND_SOC_RT715_SDW is not set
# CONFIG_SND_SOC_RT715_SDCA_SDW is not set
# CONFIG_SND_SOC_RT9120 is not set
# CONFIG_SND_SOC_RT9123 is not set
# CONFIG_SND_SOC_RT9123P is not set
# CONFIG_SND_SOC_RTQ9124 is not set
# CONFIG_SND_SOC_RTQ9128 is not set
# CONFIG_SND_SOC_SDW_MOCKUP is not set
# CONFIG_SND_SOC_SGTL5000 is not set
# CONFIG_SND_SOC_SIMPLE_AMPLIFIER is not set
# CONFIG_SND_SOC_SIMPLE_MUX is not set
# CONFIG_SND_SOC_SMA1303 is not set
# CONFIG_SND_SOC_SMA1307 is not set
# CONFIG_SND_SOC_SPDIF is not set
# CONFIG_SND_SOC_SRC4XXX_I2C is not set
# CONFIG_SND_SOC_SSM2305 is not set
# CONFIG_SND_SOC_SSM2518 is not set
# CONFIG_SND_SOC_SSM2602_SPI is not set
# CONFIG_SND_SOC_SSM2602_I2C is not set
# CONFIG_SND_SOC_SSM3515 is not set
# CONFIG_SND_SOC_SSM4567 is not set
# CONFIG_SND_SOC_STA32X is not set
# CONFIG_SND_SOC_STA350 is not set
# CONFIG_SND_SOC_STI_SAS is not set
# CONFIG_SND_SOC_TAS2552 is not set
# CONFIG_SND_SOC_TAS2562 is not set
# CONFIG_SND_SOC_TAS2764 is not set
# CONFIG_SND_SOC_TAS2770 is not set
# CONFIG_SND_SOC_TAS2780 is not set
# CONFIG_SND_SOC_TAS2781_I2C is not set
# CONFIG_SND_SOC_TAS5086 is not set
# CONFIG_SND_SOC_TAS571X is not set
# CONFIG_SND_SOC_TAS5720 is not set
# CONFIG_SND_SOC_TAS5805M is not set
# CONFIG_SND_SOC_TAS6424 is not set
# CONFIG_SND_SOC_TDA7419 is not set
# CONFIG_SND_SOC_TFA9879 is not set
# CONFIG_SND_SOC_TFA989X is not set
# CONFIG_SND_SOC_TLV320ADC3XXX is not set
# CONFIG_SND_SOC_TLV320AIC23_I2C is not set
# CONFIG_SND_SOC_TLV320AIC23_SPI is not set
# CONFIG_SND_SOC_TLV320AIC31XX is not set
# CONFIG_SND_SOC_TLV320AIC32X4_I2C is not set
# CONFIG_SND_SOC_TLV320AIC32X4_SPI is not set
# CONFIG_SND_SOC_TLV320AIC3X_I2C is not set
# CONFIG_SND_SOC_TLV320AIC3X_SPI is not set
# CONFIG_SND_SOC_TLV320ADCX140 is not set
# CONFIG_SND_SOC_TS3A227E is not set
# CONFIG_SND_SOC_TSCS42XX is not set
# CONFIG_SND_SOC_TSCS454 is not set
# CONFIG_SND_SOC_UDA1334 is not set
# CONFIG_SND_SOC_UDA1342 is not set
# CONFIG_SND_SOC_WCD937X_SDW is not set
# CONFIG_SND_SOC_WCD938X_SDW is not set
# CONFIG_SND_SOC_WCD939X_SDW is not set
# CONFIG_SND_SOC_WM8510 is not set
# CONFIG_SND_SOC_WM8523 is not set
# CONFIG_SND_SOC_WM8524 is not set
# CONFIG_SND_SOC_WM8580 is not set
# CONFIG_SND_SOC_WM8711 is not set
# CONFIG_SND_SOC_WM8728 is not set
# CONFIG_SND_SOC_WM8731_I2C is not set
# CONFIG_SND_SOC_WM8731_SPI is not set
# CONFIG_SND_SOC_WM8737 is not set
# CONFIG_SND_SOC_WM8741 is not set
# CONFIG_SND_SOC_WM8750 is not set
# CONFIG_SND_SOC_WM8753 is not set
# CONFIG_SND_SOC_WM8770 is not set
# CONFIG_SND_SOC_WM8776 is not set
# CONFIG_SND_SOC_WM8782 is not set
# CONFIG_SND_SOC_WM8804_I2C is not set
# CONFIG_SND_SOC_WM8804_SPI is not set
# CONFIG_SND_SOC_WM8903 is not set
# CONFIG_SND_SOC_WM8904 is not set
# CONFIG_SND_SOC_WM8940 is not set
# CONFIG_SND_SOC_WM8960 is not set
# CONFIG_SND_SOC_WM8961 is not set
# CONFIG_SND_SOC_WM8962 is not set
# CONFIG_SND_SOC_WM8974 is not set
# CONFIG_SND_SOC_WM8978 is not set
# CONFIG_SND_SOC_WM8985 is not set
# CONFIG_SND_SOC_WSA881X is not set
# CONFIG_SND_SOC_WSA883X is not set
# CONFIG_SND_SOC_WSA884X is not set
# CONFIG_SND_SOC_ZL38060 is not set
# CONFIG_SND_SOC_MAX9759 is not set
# CONFIG_SND_SOC_MT6351 is not set
# CONFIG_SND_SOC_MT6357 is not set
# CONFIG_SND_SOC_MT6358 is not set
# CONFIG_SND_SOC_MT6660 is not set
# CONFIG_SND_SOC_NAU8315 is not set
# CONFIG_SND_SOC_NAU8325 is not set
# CONFIG_SND_SOC_NAU8540 is not set
# CONFIG_SND_SOC_NAU8810 is not set
# CONFIG_SND_SOC_NAU8821 is not set
# CONFIG_SND_SOC_NAU8822 is not set
# CONFIG_SND_SOC_NAU8824 is not set
# CONFIG_SND_SOC_NTP8918 is not set
# CONFIG_SND_SOC_NTP8835 is not set
# CONFIG_SND_SOC_TPA6130A2 is not set
# CONFIG_SND_SOC_LPASS_WSA_MACRO is not set
# CONFIG_SND_SOC_LPASS_VA_MACRO is not set
# CONFIG_SND_SOC_LPASS_RX_MACRO is not set
# CONFIG_SND_SOC_LPASS_TX_MACRO is not set
# end of CODEC drivers

#
# Generic drivers
#
# CONFIG_SND_SIMPLE_CARD is not set
# CONFIG_SND_AUDIO_GRAPH_CARD is not set
# CONFIG_SND_AUDIO_GRAPH_CARD2 is not set
# CONFIG_SND_TEST_COMPONENT is not set
# end of Generic drivers

CONFIG_SND_X86=y
# CONFIG_HDMI_LPE_AUDIO is not set
# CONFIG_SND_VIRTIO is not set
CONFIG_HID_SUPPORT=y
CONFIG_HID=y
CONFIG_HID_BATTERY_STRENGTH=y
CONFIG_HIDRAW=y
CONFIG_UHID=y
CONFIG_HID_GENERIC=y
# CONFIG_HID_HAPTIC is not set

#
# Special HID drivers
#
CONFIG_HID_A4TECH=y
CONFIG_HID_ACCUTOUCH=y
CONFIG_HID_ACRUX=y
CONFIG_HID_ACRUX_FF=y
CONFIG_HID_APPLE=y
CONFIG_HID_APPLEIR=y
# CONFIG_HID_APPLETB_BL is not set
# CONFIG_HID_APPLETB_KBD is not set
CONFIG_HID_ASUS=y
CONFIG_HID_AUREAL=y
CONFIG_HID_BELKIN=y
CONFIG_HID_BETOP_FF=y
CONFIG_HID_BIGBEN_FF=y
CONFIG_HID_CHERRY=y
CONFIG_HID_CHICONY=y
CONFIG_HID_CORSAIR=y
CONFIG_HID_COUGAR=y
CONFIG_HID_MACALLY=y
CONFIG_HID_PRODIKEYS=y
CONFIG_HID_CMEDIA=y
CONFIG_HID_CP2112=y
CONFIG_HID_CREATIVE_SB0540=y
CONFIG_HID_CYPRESS=y
CONFIG_HID_DRAGONRISE=y
CONFIG_DRAGONRISE_FF=y
CONFIG_HID_EMS_FF=y
CONFIG_HID_ELAN=y
CONFIG_HID_ELECOM=y
CONFIG_HID_ELO=y
CONFIG_HID_EVISION=y
CONFIG_HID_EZKEY=y
CONFIG_HID_FT260=y
CONFIG_HID_GEMBIRD=y
CONFIG_HID_GFRM=y
CONFIG_HID_GLORIOUS=y
CONFIG_HID_HOLTEK=y
CONFIG_HOLTEK_FF=y
CONFIG_HID_VIVALDI_COMMON=y
# CONFIG_HID_GOODIX_SPI is not set
CONFIG_HID_GOOGLE_HAMMER=y
CONFIG_HID_GOOGLE_STADIA_FF=y
CONFIG_HID_VIVALDI=y
CONFIG_HID_GT683R=y
CONFIG_HID_KEYTOUCH=y
CONFIG_HID_KYE=y
# CONFIG_HID_KYSONA is not set
CONFIG_HID_UCLOGIC=y
CONFIG_HID_WALTOP=y
CONFIG_HID_VIEWSONIC=y
CONFIG_HID_VRC2=y
CONFIG_HID_XIAOMI=y
CONFIG_HID_GYRATION=y
CONFIG_HID_ICADE=y
CONFIG_HID_ITE=y
CONFIG_HID_JABRA=y
CONFIG_HID_TWINHAN=y
CONFIG_HID_KENSINGTON=y
CONFIG_HID_LCPOWER=y
CONFIG_HID_LED=y
CONFIG_HID_LENOVO=y
CONFIG_HID_LETSKETCH=y
CONFIG_HID_LOGITECH=y
CONFIG_HID_LOGITECH_DJ=y
CONFIG_HID_LOGITECH_HIDPP=y
CONFIG_LOGITECH_FF=y
CONFIG_LOGIRUMBLEPAD2_FF=y
CONFIG_LOGIG940_FF=y
CONFIG_LOGIWHEELS_FF=y
CONFIG_HID_MAGICMOUSE=y
CONFIG_HID_MALTRON=y
CONFIG_HID_MAYFLASH=y
CONFIG_HID_MEGAWORLD_FF=y
CONFIG_HID_REDRAGON=y
CONFIG_HID_MICROSOFT=y
CONFIG_HID_MONTEREY=y
CONFIG_HID_MULTITOUCH=y
CONFIG_HID_NINTENDO=y
CONFIG_NINTENDO_FF=y
CONFIG_HID_NTI=y
CONFIG_HID_NTRIG=y
CONFIG_HID_NVIDIA_SHIELD=y
CONFIG_NVIDIA_SHIELD_FF=y
CONFIG_HID_ORTEK=y
CONFIG_HID_PANTHERLORD=y
CONFIG_PANTHERLORD_FF=y
CONFIG_HID_PENMOUNT=y
CONFIG_HID_PETALYNX=y
CONFIG_HID_PICOLCD=y
CONFIG_HID_PICOLCD_FB=y
CONFIG_HID_PICOLCD_BACKLIGHT=y
CONFIG_HID_PICOLCD_LCD=y
CONFIG_HID_PICOLCD_LEDS=y
CONFIG_HID_PICOLCD_CIR=y
CONFIG_HID_PLANTRONICS=y
CONFIG_HID_PLAYSTATION=y
CONFIG_PLAYSTATION_FF=y
CONFIG_HID_PXRC=y
# CONFIG_HID_RAPOO is not set
CONFIG_HID_RAZER=y
CONFIG_HID_PRIMAX=y
CONFIG_HID_RETRODE=y
CONFIG_HID_ROCCAT=y
CONFIG_HID_SAITEK=y
CONFIG_HID_SAMSUNG=y
CONFIG_HID_SEMITEK=y
CONFIG_HID_SIGMAMICRO=y
CONFIG_HID_SONY=y
CONFIG_SONY_FF=y
CONFIG_HID_SPEEDLINK=y
CONFIG_HID_STEAM=y
CONFIG_STEAM_FF=y
CONFIG_HID_STEELSERIES=y
CONFIG_HID_SUNPLUS=y
CONFIG_HID_RMI=y
CONFIG_HID_GREENASIA=y
CONFIG_GREENASIA_FF=y
CONFIG_HID_SMARTJOYPLUS=y
CONFIG_SMARTJOYPLUS_FF=y
CONFIG_HID_TIVO=y
CONFIG_HID_TOPSEED=y
CONFIG_HID_TOPRE=y
CONFIG_HID_THINGM=y
CONFIG_HID_THRUSTMASTER=y
CONFIG_THRUSTMASTER_FF=y
CONFIG_HID_UDRAW_PS3=y
CONFIG_HID_U2FZERO=y
# CONFIG_HID_UNIVERSAL_PIDFF is not set
CONFIG_HID_WACOM=y
CONFIG_HID_WIIMOTE=y
# CONFIG_HID_WINWING is not set
CONFIG_HID_XINMO=y
CONFIG_HID_ZEROPLUS=y
CONFIG_ZEROPLUS_FF=y
CONFIG_HID_ZYDACRON=y
CONFIG_HID_SENSOR_HUB=y
CONFIG_HID_SENSOR_CUSTOM_SENSOR=y
CONFIG_HID_ALPS=y
CONFIG_HID_MCP2200=y
CONFIG_HID_MCP2221=y
# end of Special HID drivers

#
# HID-BPF support
#
# end of HID-BPF support

CONFIG_I2C_HID=y
CONFIG_I2C_HID_ACPI=y
CONFIG_I2C_HID_OF=y
# CONFIG_I2C_HID_OF_ELAN is not set
# CONFIG_I2C_HID_OF_GOODIX is not set
CONFIG_I2C_HID_CORE=y

#
# Intel ISH HID support
#
CONFIG_INTEL_ISH_HID=y
CONFIG_INTEL_ISH_FIRMWARE_DOWNLOADER=y
# end of Intel ISH HID support

#
# AMD SFH HID Support
#
CONFIG_AMD_SFH_HID=y
# end of AMD SFH HID Support

#
# Surface System Aggregator Module HID support
#
CONFIG_SURFACE_HID=y
CONFIG_SURFACE_KBD=y
# end of Surface System Aggregator Module HID support

CONFIG_SURFACE_HID_CORE=y

#
# Intel THC HID Support
#
# CONFIG_INTEL_THC_HID is not set
# end of Intel THC HID Support

#
# USB HID support
#
CONFIG_USB_HID=y
CONFIG_HID_PID=y
CONFIG_USB_HIDDEV=y
# end of USB HID support

CONFIG_USB_OHCI_LITTLE_ENDIAN=y
CONFIG_USB_SUPPORT=y
CONFIG_USB_COMMON=y
CONFIG_USB_LED_TRIG=y
CONFIG_USB_ULPI_BUS=y
CONFIG_USB_CONN_GPIO=y
CONFIG_USB_ARCH_HAS_HCD=y
CONFIG_USB=y
CONFIG_USB_PCI=y
CONFIG_USB_PCI_AMD=y
CONFIG_USB_ANNOUNCE_NEW_DEVICES=y

#
# Miscellaneous USB options
#
CONFIG_USB_DEFAULT_PERSIST=y
# CONFIG_USB_FEW_INIT_RETRIES is not set
CONFIG_USB_DYNAMIC_MINORS=y
CONFIG_USB_OTG=y
# CONFIG_USB_OTG_PRODUCTLIST is not set
# CONFIG_USB_OTG_DISABLE_EXTERNAL_HUB is not set
CONFIG_USB_OTG_FSM=y
CONFIG_USB_LEDS_TRIGGER_USBPORT=y
CONFIG_USB_AUTOSUSPEND_DELAY=2
CONFIG_USB_DEFAULT_AUTHORIZATION_MODE=1
CONFIG_USB_MON=y

#
# USB Host Controller Drivers
#
CONFIG_USB_C67X00_HCD=y
CONFIG_USB_XHCI_HCD=y
CONFIG_USB_XHCI_DBGCAP=y
CONFIG_USB_XHCI_PCI=y
CONFIG_USB_XHCI_PCI_RENESAS=y
CONFIG_USB_XHCI_PLATFORM=y
# CONFIG_USB_XHCI_SIDEBAND is not set
CONFIG_USB_EHCI_HCD=y
CONFIG_USB_EHCI_ROOT_HUB_TT=y
CONFIG_USB_EHCI_TT_NEWSCHED=y
CONFIG_USB_EHCI_PCI=y
CONFIG_USB_EHCI_FSL=y
CONFIG_USB_EHCI_HCD_PLATFORM=y
CONFIG_USB_OXU210HP_HCD=y
CONFIG_USB_ISP116X_HCD=y
CONFIG_USB_MAX3421_HCD=y
CONFIG_USB_OHCI_HCD=y
CONFIG_USB_OHCI_HCD_PCI=y
# CONFIG_USB_OHCI_HCD_SSB is not set
CONFIG_USB_OHCI_HCD_PLATFORM=y
CONFIG_USB_UHCI_HCD=y
CONFIG_USB_SL811_HCD=y
CONFIG_USB_SL811_HCD_ISO=y
CONFIG_USB_SL811_CS=y
CONFIG_USB_R8A66597_HCD=y
CONFIG_USB_HCD_BCMA=y
CONFIG_USB_HCD_SSB=y
# CONFIG_USB_HCD_TEST_MODE is not set

#
# USB Device Class drivers
#
CONFIG_USB_ACM=y
CONFIG_USB_PRINTER=y
CONFIG_USB_WDM=y
CONFIG_USB_TMC=y

#
# NOTE: USB_STORAGE depends on SCSI but BLK_DEV_SD may also be needed; see USB_STORAGE Help for more info
#
CONFIG_USB_STORAGE=y
# CONFIG_USB_STORAGE_DEBUG is not set
CONFIG_USB_STORAGE_REALTEK=y
CONFIG_REALTEK_AUTOPM=y
CONFIG_USB_STORAGE_DATAFAB=y
CONFIG_USB_STORAGE_FREECOM=y
CONFIG_USB_STORAGE_ISD200=y
CONFIG_USB_STORAGE_USBAT=y
CONFIG_USB_STORAGE_SDDR09=y
CONFIG_USB_STORAGE_SDDR55=y
CONFIG_USB_STORAGE_JUMPSHOT=y
CONFIG_USB_STORAGE_ALAUDA=y
CONFIG_USB_STORAGE_ONETOUCH=y
CONFIG_USB_STORAGE_KARMA=y
CONFIG_USB_STORAGE_CYPRESS_ATACB=y
CONFIG_USB_STORAGE_ENE_UB6250=y
CONFIG_USB_UAS=y

#
# USB Imaging devices
#
CONFIG_USB_MDC800=y
CONFIG_USB_MICROTEK=y
CONFIG_USBIP_CORE=y
CONFIG_USBIP_VHCI_HCD=y
CONFIG_USBIP_VHCI_HC_PORTS=8
CONFIG_USBIP_VHCI_NR_HCS=16
CONFIG_USBIP_HOST=y
CONFIG_USBIP_VUDC=y
# CONFIG_USBIP_DEBUG is not set

#
# USB dual-mode controller drivers
#
CONFIG_USB_CDNS_SUPPORT=y
CONFIG_USB_CDNS_HOST=y
CONFIG_USB_CDNS3=y
CONFIG_USB_CDNS3_GADGET=y
CONFIG_USB_CDNS3_HOST=y
CONFIG_USB_CDNS3_PCI_WRAP=y
CONFIG_USB_CDNSP_PCI=y
CONFIG_USB_CDNSP_GADGET=y
CONFIG_USB_CDNSP_HOST=y
CONFIG_USB_MUSB_HDRC=y
# CONFIG_USB_MUSB_HOST is not set
# CONFIG_USB_MUSB_GADGET is not set
CONFIG_USB_MUSB_DUAL_ROLE=y

#
# Platform Glue Layer
#

#
# MUSB DMA mode
#
CONFIG_MUSB_PIO_ONLY=y
CONFIG_USB_DWC3=y
CONFIG_USB_DWC3_ULPI=y
# CONFIG_USB_DWC3_HOST is not set
# CONFIG_USB_DWC3_GADGET is not set
CONFIG_USB_DWC3_DUAL_ROLE=y

#
# Platform Glue Driver Support
#
CONFIG_USB_DWC3_PCI=y
CONFIG_USB_DWC3_HAPS=y
CONFIG_USB_DWC3_OF_SIMPLE=y
# CONFIG_USB_DWC3_GENERIC_PLAT is not set
# CONFIG_USB_DWC3_GOOGLE is not set
CONFIG_USB_DWC2=y
CONFIG_USB_DWC2_HOST=y

#
# Gadget/Dual-role mode requires USB Gadget support to be enabled
#
# CONFIG_USB_DWC2_PERIPHERAL is not set
# CONFIG_USB_DWC2_DUAL_ROLE is not set
CONFIG_USB_DWC2_PCI=y
# CONFIG_USB_DWC2_DEBUG is not set
# CONFIG_USB_DWC2_TRACK_MISSED_SOFS is not set
CONFIG_USB_CHIPIDEA=y
CONFIG_USB_CHIPIDEA_UDC=y
CONFIG_USB_CHIPIDEA_HOST=y
CONFIG_USB_CHIPIDEA_PCI=y
CONFIG_USB_CHIPIDEA_MSM=y
CONFIG_USB_CHIPIDEA_NPCM=y
# CONFIG_USB_CHIPIDEA_IMX is not set
CONFIG_USB_CHIPIDEA_GENERIC=y
# CONFIG_USB_CHIPIDEA_TEGRA is not set
CONFIG_USB_ISP1760=y
CONFIG_USB_ISP1760_HCD=y
CONFIG_USB_ISP1761_UDC=y
# CONFIG_USB_ISP1760_HOST_ROLE is not set
# CONFIG_USB_ISP1760_GADGET_ROLE is not set
CONFIG_USB_ISP1760_DUAL_ROLE=y

#
# USB port drivers
#
CONFIG_USB_SERIAL=y
CONFIG_USB_SERIAL_CONSOLE=y
CONFIG_USB_SERIAL_GENERIC=y
CONFIG_USB_SERIAL_SIMPLE=y
CONFIG_USB_SERIAL_AIRCABLE=y
CONFIG_USB_SERIAL_ARK3116=y
CONFIG_USB_SERIAL_BELKIN=y
CONFIG_USB_SERIAL_CH341=y
CONFIG_USB_SERIAL_WHITEHEAT=y
CONFIG_USB_SERIAL_DIGI_ACCELEPORT=y
CONFIG_USB_SERIAL_CP210X=y
CONFIG_USB_SERIAL_CYPRESS_M8=y
CONFIG_USB_SERIAL_EMPEG=y
CONFIG_USB_SERIAL_FTDI_SIO=y
CONFIG_USB_SERIAL_VISOR=y
CONFIG_USB_SERIAL_IPAQ=y
CONFIG_USB_SERIAL_IR=y
CONFIG_USB_SERIAL_EDGEPORT=y
CONFIG_USB_SERIAL_EDGEPORT_TI=y
CONFIG_USB_SERIAL_F81232=y
CONFIG_USB_SERIAL_F8153X=y
CONFIG_USB_SERIAL_GARMIN=y
CONFIG_USB_SERIAL_IPW=y
CONFIG_USB_SERIAL_IUU=y
CONFIG_USB_SERIAL_KEYSPAN_PDA=y
CONFIG_USB_SERIAL_KEYSPAN=y
CONFIG_USB_SERIAL_KLSI=y
CONFIG_USB_SERIAL_KOBIL_SCT=y
CONFIG_USB_SERIAL_MCT_U232=y
CONFIG_USB_SERIAL_METRO=y
CONFIG_USB_SERIAL_MOS7720=y
CONFIG_USB_SERIAL_MOS7715_PARPORT=y
CONFIG_USB_SERIAL_MOS7840=y
CONFIG_USB_SERIAL_MXUPORT=y
CONFIG_USB_SERIAL_NAVMAN=y
CONFIG_USB_SERIAL_PL2303=y
CONFIG_USB_SERIAL_OTI6858=y
CONFIG_USB_SERIAL_QCAUX=y
CONFIG_USB_SERIAL_QUALCOMM=y
CONFIG_USB_SERIAL_SPCP8X5=y
CONFIG_USB_SERIAL_SAFE=y
# CONFIG_USB_SERIAL_SAFE_PADDED is not set
CONFIG_USB_SERIAL_SIERRAWIRELESS=y
CONFIG_USB_SERIAL_SYMBOL=y
CONFIG_USB_SERIAL_TI=y
CONFIG_USB_SERIAL_CYBERJACK=y
CONFIG_USB_SERIAL_WWAN=y
CONFIG_USB_SERIAL_OPTION=y
CONFIG_USB_SERIAL_OMNINET=y
CONFIG_USB_SERIAL_OPTICON=y
CONFIG_USB_SERIAL_XSENS_MT=y
CONFIG_USB_SERIAL_WISHBONE=y
CONFIG_USB_SERIAL_SSU100=y
CONFIG_USB_SERIAL_QT2=y
CONFIG_USB_SERIAL_UPD78F0730=y
CONFIG_USB_SERIAL_XR=y
CONFIG_USB_SERIAL_DEBUG=y

#
# USB Miscellaneous drivers
#
CONFIG_USB_USS720=y
CONFIG_USB_EMI62=y
CONFIG_USB_EMI26=y
CONFIG_USB_ADUTUX=y
CONFIG_USB_SEVSEG=y
CONFIG_USB_LEGOTOWER=y
CONFIG_USB_LCD=y
CONFIG_USB_CYPRESS_CY7C63=y
CONFIG_USB_CYTHERM=y
CONFIG_USB_IDMOUSE=y
CONFIG_USB_APPLEDISPLAY=y
CONFIG_APPLE_MFI_FASTCHARGE=y
CONFIG_USB_LJCA=y
# CONFIG_USB_USBIO is not set
CONFIG_USB_SISUSBVGA=y
CONFIG_USB_LD=y
CONFIG_USB_TRANCEVIBRATOR=y
CONFIG_USB_IOWARRIOR=y
CONFIG_USB_TEST=y
CONFIG_USB_EHSET_TEST_FIXTURE=y
CONFIG_USB_ISIGHTFW=y
CONFIG_USB_YUREX=y
CONFIG_USB_EZUSB_FX2=y
CONFIG_USB_HUB_USB251XB=y
CONFIG_USB_HSIC_USB3503=y
CONFIG_USB_HSIC_USB4604=y
CONFIG_USB_LINK_LAYER_TEST=y
CONFIG_USB_CHAOSKEY=y
# CONFIG_USB_ONBOARD_DEV is not set
CONFIG_USB_ATM=y
CONFIG_USB_SPEEDTOUCH=y
CONFIG_USB_CXACRU=y
CONFIG_USB_UEAGLEATM=y
CONFIG_USB_XUSBATM=y

#
# USB Physical Layer drivers
#
CONFIG_USB_PHY=y
CONFIG_NOP_USB_XCEIV=y
CONFIG_TAHVO_USB=y
CONFIG_TAHVO_USB_HOST_BY_DEFAULT=y
CONFIG_USB_ISP1301=y
# end of USB Physical Layer drivers

CONFIG_USB_GADGET=y
# CONFIG_USB_GADGET_DEBUG is not set
CONFIG_USB_GADGET_DEBUG_FILES=y
CONFIG_USB_GADGET_DEBUG_FS=y
CONFIG_USB_GADGET_VBUS_DRAW=2
CONFIG_USB_GADGET_STORAGE_NUM_BUFFERS=2
CONFIG_U_SERIAL_CONSOLE=y

#
# USB Peripheral Controller
#
CONFIG_USB_GR_UDC=y
CONFIG_USB_R8A66597=y
CONFIG_USB_PXA27X=y
CONFIG_USB_SNP_CORE=y
# CONFIG_USB_SNP_UDC_PLAT is not set
# CONFIG_USB_M66592 is not set
CONFIG_USB_BDC_UDC=y
CONFIG_USB_AMD5536UDC=y
CONFIG_USB_NET2280=y
CONFIG_USB_GOKU=y
CONFIG_USB_EG20T=y
# CONFIG_USB_GADGET_XILINX is not set
CONFIG_USB_MAX3420_UDC=y
CONFIG_USB_CDNS2_UDC=y
# CONFIG_USB_DUMMY_HCD is not set
# end of USB Peripheral Controller

CONFIG_USB_LIBCOMPOSITE=y
CONFIG_USB_F_ACM=y
CONFIG_USB_F_SS_LB=y
CONFIG_USB_U_SERIAL=y
CONFIG_USB_U_ETHER=y
CONFIG_USB_U_AUDIO=y
CONFIG_USB_F_SERIAL=y
CONFIG_USB_F_OBEX=y
CONFIG_USB_F_NCM=y
CONFIG_USB_F_ECM=y
CONFIG_USB_F_PHONET=y
CONFIG_USB_F_EEM=y
CONFIG_USB_F_SUBSET=y
CONFIG_USB_F_RNDIS=y
CONFIG_USB_F_MASS_STORAGE=y
CONFIG_USB_F_FS=y
CONFIG_USB_F_UAC1=y
CONFIG_USB_F_UAC1_LEGACY=y
CONFIG_USB_F_UAC2=y
CONFIG_USB_F_UVC=y
CONFIG_USB_F_MIDI=y
CONFIG_USB_F_MIDI2=y
CONFIG_USB_F_HID=y
CONFIG_USB_F_PRINTER=y
CONFIG_USB_F_TCM=y
CONFIG_USB_CONFIGFS=y
CONFIG_USB_CONFIGFS_SERIAL=y
CONFIG_USB_CONFIGFS_ACM=y
CONFIG_USB_CONFIGFS_OBEX=y
CONFIG_USB_CONFIGFS_NCM=y
CONFIG_USB_CONFIGFS_ECM=y
CONFIG_USB_CONFIGFS_ECM_SUBSET=y
CONFIG_USB_CONFIGFS_RNDIS=y
CONFIG_USB_CONFIGFS_EEM=y
CONFIG_USB_CONFIGFS_PHONET=y
CONFIG_USB_CONFIGFS_MASS_STORAGE=y
CONFIG_USB_CONFIGFS_F_LB_SS=y
CONFIG_USB_CONFIGFS_F_FS=y
CONFIG_USB_CONFIGFS_F_UAC1=y
CONFIG_USB_CONFIGFS_F_UAC1_LEGACY=y
CONFIG_USB_CONFIGFS_F_UAC2=y
CONFIG_USB_CONFIGFS_F_MIDI=y
CONFIG_USB_CONFIGFS_F_MIDI2=y
CONFIG_USB_CONFIGFS_F_HID=y
CONFIG_USB_CONFIGFS_F_UVC=y
CONFIG_USB_CONFIGFS_F_PRINTER=y
CONFIG_USB_CONFIGFS_F_TCM=y

#
# USB Gadget precomposed configurations
#
# CONFIG_USB_ZERO is not set
# CONFIG_USB_AUDIO is not set
# CONFIG_USB_ETH is not set
# CONFIG_USB_G_NCM is not set
CONFIG_USB_GADGETFS=y
# CONFIG_USB_FUNCTIONFS is not set
# CONFIG_USB_MASS_STORAGE is not set
# CONFIG_USB_GADGET_TARGET is not set
# CONFIG_USB_G_SERIAL is not set
# CONFIG_USB_MIDI_GADGET is not set
# CONFIG_USB_G_PRINTER is not set
# CONFIG_USB_CDC_COMPOSITE is not set
# CONFIG_USB_G_NOKIA is not set
# CONFIG_USB_G_ACM_MS is not set
# CONFIG_USB_G_MULTI is not set
# CONFIG_USB_G_HID is not set
# CONFIG_USB_G_DBGP is not set
# CONFIG_USB_G_WEBCAM is not set
CONFIG_USB_RAW_GADGET=y
# end of USB Gadget precomposed configurations

CONFIG_TYPEC=y
CONFIG_TYPEC_TCPM=y
CONFIG_TYPEC_TCPCI=y
CONFIG_TYPEC_RT1711H=y
CONFIG_TYPEC_MT6360=y
CONFIG_TYPEC_TCPCI_MT6370=y
CONFIG_TYPEC_TCPCI_MAXIM=y
CONFIG_TYPEC_FUSB302=y
CONFIG_TYPEC_WCOVE=y
CONFIG_TYPEC_UCSI=y
CONFIG_UCSI_CCG=y
CONFIG_UCSI_ACPI=y
CONFIG_UCSI_STM32G0=y
# CONFIG_CROS_EC_UCSI is not set
CONFIG_TYPEC_TPS6598X=y
CONFIG_TYPEC_ANX7411=y
CONFIG_TYPEC_RT1719=y
CONFIG_TYPEC_HD3SS3220=y
CONFIG_TYPEC_STUSB160X=y
CONFIG_TYPEC_WUSB3801=y

#
# USB Type-C Multiplexer/DeMultiplexer Switch support
#
CONFIG_TYPEC_MUX_FSA4480=y
CONFIG_TYPEC_MUX_GPIO_SBU=y
CONFIG_TYPEC_MUX_PI3USB30532=y
CONFIG_TYPEC_MUX_INTEL_PMC=y
# CONFIG_TYPEC_MUX_IT5205 is not set
CONFIG_TYPEC_MUX_NB7VPQ904M=y
# CONFIG_TYPEC_MUX_PS883X is not set
CONFIG_TYPEC_MUX_PTN36502=y
# CONFIG_TYPEC_MUX_TUSB1046 is not set
CONFIG_TYPEC_MUX_WCD939X_USBSS=y
# end of USB Type-C Multiplexer/DeMultiplexer Switch support

#
# USB Type-C Alternate Mode drivers
#
CONFIG_TYPEC_DP_ALTMODE=y
CONFIG_TYPEC_NVIDIA_ALTMODE=y
# CONFIG_TYPEC_TBT_ALTMODE is not set
# end of USB Type-C Alternate Mode drivers

CONFIG_USB_ROLE_SWITCH=y
CONFIG_USB_ROLES_INTEL_XHCI=y
CONFIG_MMC=y
# CONFIG_PWRSEQ_EMMC is not set
# CONFIG_PWRSEQ_SD8787 is not set
# CONFIG_PWRSEQ_SIMPLE is not set
# CONFIG_MMC_BLOCK is not set
# CONFIG_SDIO_UART is not set
# CONFIG_MMC_TEST is not set

#
# MMC/SD/SDIO Host Controller Drivers
#
# CONFIG_MMC_DEBUG is not set
# CONFIG_MMC_SDHCI is not set
# CONFIG_MMC_WBSD is not set
# CONFIG_MMC_TIFM_SD is not set
# CONFIG_MMC_SPI is not set
# CONFIG_MMC_SDRICOH_CS is not set
# CONFIG_MMC_CB710 is not set
# CONFIG_MMC_VIA_SDMMC is not set
CONFIG_MMC_VUB300=y
CONFIG_MMC_USHC=y
# CONFIG_MMC_USDHI6ROL0 is not set
CONFIG_MMC_REALTEK_USB=y
# CONFIG_MMC_CQHCI is not set
# CONFIG_MMC_HSQ is not set
# CONFIG_MMC_TOSHIBA_PCI is not set
# CONFIG_MMC_MTK is not set
# CONFIG_SCSI_UFSHCD is not set
CONFIG_MEMSTICK=y
# CONFIG_MEMSTICK_DEBUG is not set

#
# MemoryStick drivers
#
# CONFIG_MEMSTICK_UNSAFE_RESUME is not set
# CONFIG_MSPRO_BLOCK is not set
# CONFIG_MS_BLOCK is not set

#
# MemoryStick Host Controller Drivers
#
# CONFIG_MEMSTICK_TIFM_MS is not set
# CONFIG_MEMSTICK_JMICRON_38X is not set
# CONFIG_MEMSTICK_R592 is not set
CONFIG_MEMSTICK_REALTEK_USB=y
CONFIG_NEW_LEDS=y
CONFIG_LEDS_CLASS=y
# CONFIG_LEDS_CLASS_FLASH is not set
CONFIG_LEDS_CLASS_MULTICOLOR=y
# CONFIG_LEDS_BRIGHTNESS_HW_CHANGED is not set

#
# LED drivers
#
# CONFIG_LEDS_AN30259A is not set
# CONFIG_LEDS_APU is not set
# CONFIG_LEDS_OSRAM_AMS_AS3668 is not set
# CONFIG_LEDS_AW200XX is not set
# CONFIG_LEDS_AW2013 is not set
# CONFIG_LEDS_BCM6328 is not set
# CONFIG_LEDS_BCM6358 is not set
# CONFIG_LEDS_CHT_WCOVE is not set
# CONFIG_LEDS_CR0014114 is not set
# CONFIG_LEDS_CROS_EC is not set
# CONFIG_LEDS_EL15203000 is not set
# CONFIG_LEDS_LM3530 is not set
# CONFIG_LEDS_LM3532 is not set
# CONFIG_LEDS_LM3642 is not set
# CONFIG_LEDS_LM3692X is not set
# CONFIG_LEDS_PCA9532 is not set
# CONFIG_LEDS_GPIO is not set
# CONFIG_LEDS_LP3944 is not set
# CONFIG_LEDS_LP3952 is not set
# CONFIG_LEDS_LP50XX is not set
# CONFIG_LEDS_LP55XX_COMMON is not set
# CONFIG_LEDS_LP8860 is not set
# CONFIG_LEDS_LP8864 is not set
# CONFIG_LEDS_PCA955X is not set
# CONFIG_LEDS_PCA963X is not set
# CONFIG_LEDS_PCA995X is not set
# CONFIG_LEDS_DAC124S085 is not set
# CONFIG_LEDS_REGULATOR is not set
# CONFIG_LEDS_BD2606MVV is not set
# CONFIG_LEDS_BD2802 is not set
# CONFIG_LEDS_INTEL_SS4200 is not set
# CONFIG_LEDS_LT3593 is not set
# CONFIG_LEDS_TCA6507 is not set
# CONFIG_LEDS_TLC591XX is not set
# CONFIG_LEDS_LM355x is not set
# CONFIG_LEDS_IS31FL319X is not set
# CONFIG_LEDS_IS31FL32XX is not set

#
# LED driver for blink(1) USB RGB LED is under Special HID drivers (HID_THINGM)
#
# CONFIG_LEDS_BLINKM is not set
# CONFIG_LEDS_SYSCON is not set
# CONFIG_LEDS_MLXCPLD is not set
# CONFIG_LEDS_MLXREG is not set
# CONFIG_LEDS_USER is not set
# CONFIG_LEDS_NIC78BX is not set
# CONFIG_LEDS_SPI_BYTE is not set
# CONFIG_LEDS_LM3697 is not set
# CONFIG_LEDS_ST1202 is not set
# CONFIG_LEDS_LGM is not set

#
# Flash and Torch LED drivers
#

#
# RGB LED drivers
#
# CONFIG_LEDS_GROUP_MULTICOLOR is not set
# CONFIG_LEDS_KTD202X is not set
# CONFIG_LEDS_LP5812 is not set
# CONFIG_LEDS_NCP5623 is not set
# CONFIG_LEDS_MT6370_RGB is not set

#
# LED Triggers
#
CONFIG_LEDS_TRIGGERS=y
# CONFIG_LEDS_TRIGGER_TIMER is not set
# CONFIG_LEDS_TRIGGER_ONESHOT is not set
# CONFIG_LEDS_TRIGGER_DISK is not set
# CONFIG_LEDS_TRIGGER_HEARTBEAT is not set
# CONFIG_LEDS_TRIGGER_BACKLIGHT is not set
# CONFIG_LEDS_TRIGGER_CPU is not set
# CONFIG_LEDS_TRIGGER_ACTIVITY is not set
# CONFIG_LEDS_TRIGGER_GPIO is not set
# CONFIG_LEDS_TRIGGER_DEFAULT_ON is not set

#
# iptables trigger is under Netfilter config (LED target)
#
# CONFIG_LEDS_TRIGGER_TRANSIENT is not set
# CONFIG_LEDS_TRIGGER_CAMERA is not set
# CONFIG_LEDS_TRIGGER_PANIC is not set
# CONFIG_LEDS_TRIGGER_NETDEV is not set
# CONFIG_LEDS_TRIGGER_PATTERN is not set
# CONFIG_LEDS_TRIGGER_TTY is not set
# CONFIG_LEDS_TRIGGER_INPUT_EVENTS is not set

#
# Simatic LED drivers
#
# CONFIG_ACCESSIBILITY is not set
CONFIG_INFINIBAND=y
CONFIG_INFINIBAND_USER_MAD=y
CONFIG_INFINIBAND_USER_ACCESS=y
CONFIG_INFINIBAND_USER_MEM=y
CONFIG_INFINIBAND_ON_DEMAND_PAGING=y
CONFIG_INFINIBAND_ADDR_TRANS=y
CONFIG_INFINIBAND_ADDR_TRANS_CONFIGFS=y
CONFIG_INFINIBAND_VIRT_DMA=y
# CONFIG_INFINIBAND_EFA is not set
# CONFIG_INFINIBAND_ERDMA is not set
CONFIG_MLX4_INFINIBAND=y
# CONFIG_INFINIBAND_MTHCA is not set
# CONFIG_INFINIBAND_OCRDMA is not set
# CONFIG_INFINIBAND_USNIC is not set
# CONFIG_INFINIBAND_VMWARE_PVRDMA is not set
# CONFIG_INFINIBAND_RDMAVT is not set
CONFIG_RDMA_RXE=y
CONFIG_RDMA_SIW=y
CONFIG_INFINIBAND_IPOIB=y
CONFIG_INFINIBAND_IPOIB_CM=y
CONFIG_INFINIBAND_IPOIB_DEBUG=y
# CONFIG_INFINIBAND_IPOIB_DEBUG_DATA is not set
CONFIG_INFINIBAND_SRP=y
# CONFIG_INFINIBAND_SRPT is not set
CONFIG_INFINIBAND_ISER=y
CONFIG_INFINIBAND_RTRS=y
CONFIG_INFINIBAND_RTRS_CLIENT=y
# CONFIG_INFINIBAND_RTRS_SERVER is not set
# CONFIG_INFINIBAND_OPA_VNIC is not set
CONFIG_EDAC_ATOMIC_SCRUB=y
CONFIG_EDAC_SUPPORT=y
CONFIG_EDAC=y
# CONFIG_EDAC_DEBUG is not set
# CONFIG_EDAC_DECODE_MCE is not set
# CONFIG_EDAC_SCRUB is not set
# CONFIG_EDAC_ECS is not set
# CONFIG_EDAC_MEM_REPAIR is not set
# CONFIG_EDAC_E752X is not set
# CONFIG_EDAC_I82975X is not set
# CONFIG_EDAC_I3000 is not set
# CONFIG_EDAC_I3200 is not set
# CONFIG_EDAC_IE31200 is not set
# CONFIG_EDAC_X38 is not set
# CONFIG_EDAC_I5400 is not set
# CONFIG_EDAC_I7CORE is not set
# CONFIG_EDAC_I5100 is not set
# CONFIG_EDAC_I7300 is not set
# CONFIG_EDAC_SBRIDGE is not set
# CONFIG_EDAC_SKX is not set
# CONFIG_EDAC_I10NM is not set
# CONFIG_EDAC_IMH is not set
# CONFIG_EDAC_PND2 is not set
# CONFIG_EDAC_IGEN6 is not set
CONFIG_RTC_LIB=y
CONFIG_RTC_MC146818_LIB=y
CONFIG_RTC_CLASS=y
# CONFIG_RTC_HCTOSYS is not set
CONFIG_RTC_SYSTOHC=y
CONFIG_RTC_SYSTOHC_DEVICE="rtc0"
# CONFIG_RTC_DEBUG is not set
CONFIG_RTC_NVMEM=y

#
# RTC interfaces
#
CONFIG_RTC_INTF_SYSFS=y
CONFIG_RTC_INTF_PROC=y
CONFIG_RTC_INTF_DEV=y
# CONFIG_RTC_INTF_DEV_UIE_EMUL is not set
# CONFIG_RTC_DRV_TEST is not set

#
# I2C RTC drivers
#
# CONFIG_RTC_DRV_ABB5ZES3 is not set
# CONFIG_RTC_DRV_ABEOZ9 is not set
# CONFIG_RTC_DRV_ABX80X is not set
# CONFIG_RTC_DRV_DS1307 is not set
# CONFIG_RTC_DRV_DS1374 is not set
# CONFIG_RTC_DRV_DS1672 is not set
# CONFIG_RTC_DRV_HYM8563 is not set
# CONFIG_RTC_DRV_MAX6900 is not set
# CONFIG_RTC_DRV_MAX31335 is not set
# CONFIG_RTC_DRV_NCT3018Y is not set
# CONFIG_RTC_DRV_RS5C372 is not set
# CONFIG_RTC_DRV_ISL1208 is not set
# CONFIG_RTC_DRV_ISL12022 is not set
# CONFIG_RTC_DRV_ISL12026 is not set
# CONFIG_RTC_DRV_X1205 is not set
# CONFIG_RTC_DRV_PCF8523 is not set
# CONFIG_RTC_DRV_PCF85363 is not set
# CONFIG_RTC_DRV_PCF8563 is not set
# CONFIG_RTC_DRV_PCF8583 is not set
# CONFIG_RTC_DRV_M41T80 is not set
# CONFIG_RTC_DRV_BQ32K is not set
# CONFIG_RTC_DRV_TWL4030 is not set
# CONFIG_RTC_DRV_S35390A is not set
# CONFIG_RTC_DRV_FM3130 is not set
# CONFIG_RTC_DRV_RX8010 is not set
# CONFIG_RTC_DRV_RX8111 is not set
# CONFIG_RTC_DRV_RX8581 is not set
# CONFIG_RTC_DRV_RX8025 is not set
# CONFIG_RTC_DRV_EM3027 is not set
# CONFIG_RTC_DRV_RV3028 is not set
# CONFIG_RTC_DRV_RV3032 is not set
# CONFIG_RTC_DRV_RV8803 is not set
# CONFIG_RTC_DRV_SD2405AL is not set
# CONFIG_RTC_DRV_SD3078 is not set

#
# SPI RTC drivers
#
# CONFIG_RTC_DRV_M41T93 is not set
# CONFIG_RTC_DRV_M41T94 is not set
# CONFIG_RTC_DRV_DS1302 is not set
# CONFIG_RTC_DRV_DS1305 is not set
# CONFIG_RTC_DRV_DS1343 is not set
# CONFIG_RTC_DRV_DS1347 is not set
# CONFIG_RTC_DRV_DS1390 is not set
# CONFIG_RTC_DRV_MAX6916 is not set
# CONFIG_RTC_DRV_R9701 is not set
# CONFIG_RTC_DRV_RX4581 is not set
# CONFIG_RTC_DRV_RS5C348 is not set
# CONFIG_RTC_DRV_MAX6902 is not set
# CONFIG_RTC_DRV_PCF2123 is not set
# CONFIG_RTC_DRV_MCP795 is not set
CONFIG_RTC_I2C_AND_SPI=y

#
# SPI and I2C RTC drivers
#
# CONFIG_RTC_DRV_DS3232 is not set
# CONFIG_RTC_DRV_PCF2127 is not set
# CONFIG_RTC_DRV_PCF85063 is not set
# CONFIG_RTC_DRV_RV3029C2 is not set
# CONFIG_RTC_DRV_RX6110 is not set

#
# Platform RTC drivers
#
CONFIG_RTC_DRV_CMOS=y
# CONFIG_RTC_DRV_DS1286 is not set
# CONFIG_RTC_DRV_DS1511 is not set
# CONFIG_RTC_DRV_DS1553 is not set
# CONFIG_RTC_DRV_DS1685_FAMILY is not set
# CONFIG_RTC_DRV_DS1742 is not set
# CONFIG_RTC_DRV_DS2404 is not set
# CONFIG_RTC_DRV_STK17TA8 is not set
# CONFIG_RTC_DRV_M48T86 is not set
# CONFIG_RTC_DRV_M48T35 is not set
# CONFIG_RTC_DRV_M48T59 is not set
# CONFIG_RTC_DRV_MSM6242 is not set
# CONFIG_RTC_DRV_RP5C01 is not set
# CONFIG_RTC_DRV_ZYNQMP is not set
# CONFIG_RTC_DRV_CROS_EC is not set

#
# on-CPU RTC drivers
#
# CONFIG_RTC_DRV_CADENCE is not set
# CONFIG_RTC_DRV_FTRTC010 is not set
# CONFIG_RTC_DRV_R7301 is not set
# CONFIG_RTC_DRV_GOLDFISH is not set

#
# HID Sensor RTC drivers
#
CONFIG_RTC_DRV_HID_SENSOR_TIME=y
CONFIG_DMADEVICES=y
# CONFIG_DMADEVICES_DEBUG is not set

#
# DMA Devices
#
CONFIG_DMA_ENGINE=y
CONFIG_DMA_VIRTUAL_CHANNELS=y
CONFIG_DMA_ACPI=y
CONFIG_DMA_OF=y
# CONFIG_ALTERA_MSGDMA is not set
# CONFIG_DW_AXI_DMAC is not set
# CONFIG_FSL_EDMA is not set
# CONFIG_INTEL_IDMA64 is not set
# CONFIG_INTEL_IDXD is not set
# CONFIG_INTEL_IDXD_COMPAT is not set
# CONFIG_INTEL_IOATDMA is not set
# CONFIG_PLX_DMA is not set
# CONFIG_XILINX_DMA is not set
# CONFIG_XILINX_XDMA is not set
# CONFIG_XILINX_ZYNQMP_DPDMA is not set
# CONFIG_AMD_PTDMA is not set
# CONFIG_AMD_QDMA is not set
# CONFIG_QCOM_HIDMA_MGMT is not set
# CONFIG_QCOM_HIDMA is not set
CONFIG_DW_DMAC_CORE=y
# CONFIG_DW_DMAC is not set
# CONFIG_DW_DMAC_PCI is not set
# CONFIG_DW_EDMA is not set
CONFIG_HSU_DMA=y
# CONFIG_SF_PDMA is not set
# CONFIG_INTEL_LDMA is not set

#
# DMA Clients
#
# CONFIG_ASYNC_TX_DMA is not set
# CONFIG_DMATEST is not set

#
# DMABUF options
#
CONFIG_SYNC_FILE=y
# CONFIG_SW_SYNC is not set
# CONFIG_UDMABUF is not set
# CONFIG_DMABUF_MOVE_NOTIFY is not set
# CONFIG_DMABUF_DEBUG is not set
# CONFIG_DMABUF_SELFTESTS is not set
# CONFIG_DMABUF_HEAPS is not set
# end of DMABUF options

# CONFIG_UIO is not set
# CONFIG_VFIO is not set
# CONFIG_VIRT_DRIVERS is not set
CONFIG_TSM=y
CONFIG_VIRTIO_ANCHOR=y
CONFIG_VIRTIO=y
CONFIG_VIRTIO_PCI_LIB=y
CONFIG_VIRTIO_PCI_LIB_LEGACY=y
CONFIG_VIRTIO_MENU=y
CONFIG_VIRTIO_PCI=y
CONFIG_VIRTIO_PCI_ADMIN_LEGACY=y
CONFIG_VIRTIO_PCI_LEGACY=y
# CONFIG_VIRTIO_BALLOON is not set
CONFIG_VIRTIO_INPUT=y
# CONFIG_VIRTIO_MMIO is not set
CONFIG_VIRTIO_DMA_SHARED_BUFFER=y
# CONFIG_VIRTIO_DEBUG is not set
# CONFIG_VIRTIO_RTC is not set
# CONFIG_VDPA is not set
CONFIG_VHOST_IOTLB=y
CONFIG_VHOST_RING=y
CONFIG_VHOST_MENU=y
# CONFIG_VHOST_NET is not set
# CONFIG_VHOST_SCSI is not set
# CONFIG_VHOST_VSOCK is not set
# CONFIG_VHOST_CROSS_ENDIAN_LEGACY is not set
CONFIG_VHOST_ENABLE_FORK_OWNER_CONTROL=y

#
# Microsoft Hyper-V guest support
#
# CONFIG_HYPERV is not set
# end of Microsoft Hyper-V guest support

CONFIG_GREYBUS=y
# CONFIG_GREYBUS_BEAGLEPLAY is not set
CONFIG_GREYBUS_ES2=y
CONFIG_COMEDI=y
# CONFIG_COMEDI_DEBUG is not set
CONFIG_COMEDI_DEFAULT_BUF_SIZE_KB=2048
CONFIG_COMEDI_DEFAULT_BUF_MAXSIZE_KB=20480
# CONFIG_COMEDI_MISC_DRIVERS is not set
# CONFIG_COMEDI_PCI_DRIVERS is not set
# CONFIG_COMEDI_PCMCIA_DRIVERS is not set
CONFIG_COMEDI_USB_DRIVERS=y
CONFIG_COMEDI_DT9812=y
CONFIG_COMEDI_NI_USB6501=y
CONFIG_COMEDI_USBDUX=y
CONFIG_COMEDI_USBDUXFAST=y
CONFIG_COMEDI_USBDUXSIGMA=y
CONFIG_COMEDI_VMK80XX=y
# CONFIG_COMEDI_8255_SA is not set
# CONFIG_COMEDI_KCOMEDILIB is not set
# CONFIG_COMEDI_TESTS is not set
# CONFIG_GPIB is not set
CONFIG_STAGING=y
# CONFIG_RTL8723BS is not set

#
# IIO staging drivers
#

#
# Accelerometers
#
# CONFIG_ADIS16203 is not set
# end of Accelerometers

#
# Analog to digital converters
#
# CONFIG_AD7816 is not set
# end of Analog to digital converters

#
# Analog digital bi-direction converters
#
# CONFIG_ADT7316 is not set
# end of Analog digital bi-direction converters

#
# Direct Digital Synthesis
#
# CONFIG_AD9832 is not set
# CONFIG_AD9834 is not set
# end of Direct Digital Synthesis

#
# Network Analyzer, Impedance Converters
#
# CONFIG_AD5933 is not set
# end of Network Analyzer, Impedance Converters
# end of IIO staging drivers

# CONFIG_FB_SM750 is not set
# CONFIG_STAGING_MEDIA is not set
# CONFIG_FB_TFT is not set
# CONFIG_MOST_COMPONENTS is not set
# CONFIG_GREYBUS_AUDIO is not set
# CONFIG_GREYBUS_BOOTROM is not set
# CONFIG_GREYBUS_FIRMWARE is not set
CONFIG_GREYBUS_HID=y
# CONFIG_GREYBUS_LOG is not set
# CONFIG_GREYBUS_LOOPBACK is not set
# CONFIG_GREYBUS_POWER is not set
# CONFIG_GREYBUS_RAW is not set
# CONFIG_GREYBUS_VIBRATOR is not set
CONFIG_GREYBUS_BRIDGED_PHY=y
# CONFIG_GREYBUS_GPIO is not set
# CONFIG_GREYBUS_I2C is not set
# CONFIG_GREYBUS_SDIO is not set
# CONFIG_GREYBUS_SPI is not set
# CONFIG_GREYBUS_UART is not set
CONFIG_GREYBUS_USB=y
# CONFIG_XIL_AXIS_FIFO is not set
# CONFIG_VME_BUS is not set
# CONFIG_GOLDFISH is not set
CONFIG_CHROME_PLATFORMS=y
# CONFIG_CHROMEOS_ACPI is not set
# CONFIG_CHROMEOS_LAPTOP is not set
# CONFIG_CHROMEOS_PSTORE is not set
# CONFIG_CHROMEOS_TBMC is not set
# CONFIG_CHROMEOS_OF_HW_PROBER is not set
CONFIG_CROS_EC=y
# CONFIG_CROS_EC_I2C is not set
CONFIG_CROS_EC_ISHTP=y
# CONFIG_CROS_EC_SPI is not set
# CONFIG_CROS_EC_UART is not set
# CONFIG_CROS_EC_LPC is not set
CONFIG_CROS_EC_PROTO=y
# CONFIG_CROS_KBD_LED_BACKLIGHT is not set
# CONFIG_CROS_EC_CHARDEV is not set
# CONFIG_CROS_EC_LIGHTBAR is not set
# CONFIG_CROS_EC_VBC is not set
# CONFIG_CROS_EC_DEBUGFS is not set
# CONFIG_CROS_EC_SENSORHUB is not set
# CONFIG_CROS_EC_SYSFS is not set
CONFIG_CROS_EC_TYPEC_ALTMODES=y
CONFIG_CROS_EC_TYPEC=y
CONFIG_CROS_HPS_I2C=y
CONFIG_CROS_USBPD_NOTIFY=y
# CONFIG_CHROMEOS_PRIVACY_SCREEN is not set
CONFIG_CROS_TYPEC_SWITCH=y
# CONFIG_MELLANOX_PLATFORM is not set
CONFIG_SURFACE_PLATFORMS=y
# CONFIG_SURFACE3_WMI is not set
# CONFIG_SURFACE_3_POWER_OPREGION is not set
# CONFIG_SURFACE_ACPI_NOTIFY is not set
# CONFIG_SURFACE_AGGREGATOR_CDEV is not set
# CONFIG_SURFACE_AGGREGATOR_HUB is not set
CONFIG_SURFACE_AGGREGATOR_REGISTRY=y
# CONFIG_SURFACE_AGGREGATOR_TABLET_SWITCH is not set
# CONFIG_SURFACE_DTX is not set
# CONFIG_SURFACE_GPE is not set
# CONFIG_SURFACE_HOTPLUG is not set
# CONFIG_SURFACE_PLATFORM_PROFILE is not set
# CONFIG_SURFACE_PRO3_BUTTON is not set
CONFIG_SURFACE_AGGREGATOR=y
CONFIG_SURFACE_AGGREGATOR_BUS=y
CONFIG_X86_PLATFORM_DEVICES=y
CONFIG_WMI_BMOF=y
# CONFIG_HUAWEI_WMI is not set
# CONFIG_X86_PLATFORM_DRIVERS_UNIWILL is not set
# CONFIG_MXM_WMI is not set
# CONFIG_NVIDIA_WMI_EC_BACKLIGHT is not set
# CONFIG_XIAOMI_WMI is not set
# CONFIG_REDMI_WMI is not set
# CONFIG_GIGABYTE_WMI is not set
# CONFIG_ACERHDF is not set
# CONFIG_ACER_WIRELESS is not set
# CONFIG_ACER_WMI is not set

#
# AMD HSMP Driver
#
# CONFIG_AMD_HSMP_ACPI is not set
# CONFIG_AMD_HSMP_PLAT is not set
# end of AMD HSMP Driver

CONFIG_AMD_PMF=y
CONFIG_AMD_PMF_DEBUG=y
# CONFIG_AMD_PMC is not set
# CONFIG_AMD_HFI is not set
# CONFIG_AMD_3D_VCACHE is not set
# CONFIG_AMD_WBRF is not set
# CONFIG_AMD_ISP_PLATFORM is not set
# CONFIG_ADV_SWBUTTON is not set
# CONFIG_APPLE_GMUX is not set
# CONFIG_ASUS_LAPTOP is not set
# CONFIG_ASUS_WIRELESS is not set
# CONFIG_ASUS_ARMOURY is not set
CONFIG_ASUS_WMI=y
# CONFIG_ASUS_WMI_DEPRECATED_ATTRS is not set
# CONFIG_ASUS_NB_WMI is not set
CONFIG_ASUS_TF103C_DOCK=y
# CONFIG_AYANEO_EC is not set
CONFIG_EEEPC_LAPTOP=y
# CONFIG_EEEPC_WMI is not set
# CONFIG_X86_PLATFORM_DRIVERS_DELL is not set
# CONFIG_AMILO_RFKILL is not set
# CONFIG_FUJITSU_LAPTOP is not set
# CONFIG_FUJITSU_TABLET is not set
# CONFIG_GPD_POCKET_FAN is not set
# CONFIG_X86_PLATFORM_DRIVERS_HP is not set
# CONFIG_WIRELESS_HOTKEY is not set
# CONFIG_IBM_RTL is not set
# CONFIG_SENSORS_HDAPS is not set
# CONFIG_INTEL_ATOMISP2_PM is not set
# CONFIG_INTEL_IFS is not set
# CONFIG_INTEL_SAR_INT1092 is not set
# CONFIG_INTEL_SKL_INT3472 is not set

#
# Intel Speed Select Technology interface support
#
# CONFIG_INTEL_SPEED_SELECT_INTERFACE is not set
# end of Intel Speed Select Technology interface support

# CONFIG_INTEL_WMI_SBL_FW_UPDATE is not set
# CONFIG_INTEL_WMI_THUNDERBOLT is not set

#
# Intel Uncore Frequency Control
#
# CONFIG_INTEL_UNCORE_FREQ_CONTROL is not set
# end of Intel Uncore Frequency Control

# CONFIG_INTEL_HID_EVENT is not set
# CONFIG_INTEL_VBTN is not set
# CONFIG_INTEL_EHL_PSE_IO is not set
# CONFIG_INTEL_INT0002_VGPIO is not set
# CONFIG_INTEL_OAKTRAIL is not set
# CONFIG_INTEL_BXTWC_PMIC_TMU is not set
CONFIG_INTEL_CHTWC_INT33FE=y
CONFIG_INTEL_ISHTP_ECLITE=y
# CONFIG_INTEL_PUNIT_IPC is not set
# CONFIG_INTEL_RST is not set
# CONFIG_INTEL_SMARTCONNECT is not set
# CONFIG_INTEL_TURBO_MAX_3 is not set
# CONFIG_INTEL_VSEC is not set
# CONFIG_IDEAPAD_LAPTOP is not set
# CONFIG_LENOVO_WMI_HOTKEY_UTILITIES is not set
# CONFIG_LENOVO_WMI_CAMERA is not set
# CONFIG_THINKPAD_ACPI is not set
# CONFIG_THINKPAD_LMI is not set
# CONFIG_YOGABOOK is not set
# CONFIG_YT2_1380 is not set
# CONFIG_LENOVO_WMI_GAMEZONE is not set
# CONFIG_LENOVO_WMI_TUNING is not set
# CONFIG_ACPI_QUICKSTART is not set
# CONFIG_MEEGOPAD_ANX7428 is not set
# CONFIG_MSI_EC is not set
# CONFIG_MSI_LAPTOP is not set
# CONFIG_MSI_WMI is not set
# CONFIG_MSI_WMI_PLATFORM is not set
# CONFIG_PCENGINES_APU2 is not set
# CONFIG_PORTWELL_EC is not set
# CONFIG_BARCO_P50_GPIO is not set
# CONFIG_SAMSUNG_GALAXYBOOK is not set
# CONFIG_SAMSUNG_LAPTOP is not set
# CONFIG_SAMSUNG_Q10 is not set
# CONFIG_ACPI_TOSHIBA is not set
# CONFIG_TOSHIBA_BT_RFKILL is not set
# CONFIG_TOSHIBA_HAPS is not set
# CONFIG_TOSHIBA_WMI is not set
# CONFIG_ACPI_CMPC is not set
# CONFIG_COMPAL_LAPTOP is not set
# CONFIG_LG_LAPTOP is not set
# CONFIG_PANASONIC_LAPTOP is not set
# CONFIG_SONY_LAPTOP is not set
# CONFIG_SYSTEM76_ACPI is not set
# CONFIG_TOPSTAR_LAPTOP is not set
# CONFIG_SERIAL_MULTI_INSTANTIATE is not set
# CONFIG_INSPUR_PLATFORM_PROFILE is not set
# CONFIG_DASHARO_ACPI is not set
# CONFIG_INTEL_IPS is not set
CONFIG_INTEL_SCU_IPC=y
# CONFIG_INTEL_SCU_PCI is not set
# CONFIG_INTEL_SCU_PLATFORM is not set
# CONFIG_SIEMENS_SIMATIC_IPC is not set
# CONFIG_SILICOM_PLATFORM is not set
# CONFIG_WINMATE_FM07_KEYS is not set
# CONFIG_OXP_EC is not set
# CONFIG_TUXEDO_NB04_WMI_AB is not set
CONFIG_P2SB=y
CONFIG_ACPI_WMI=y
# CONFIG_ACPI_WMI_LEGACY_DEVICE_NAMES is not set
CONFIG_HAVE_CLK=y
CONFIG_HAVE_CLK_PREPARE=y
CONFIG_COMMON_CLK=y
# CONFIG_LMK04832 is not set
# CONFIG_COMMON_CLK_MAX9485 is not set
# CONFIG_COMMON_CLK_SI5341 is not set
# CONFIG_COMMON_CLK_SI5351 is not set
# CONFIG_COMMON_CLK_SI514 is not set
# CONFIG_COMMON_CLK_SI544 is not set
# CONFIG_COMMON_CLK_SI570 is not set
# CONFIG_COMMON_CLK_CDCE706 is not set
# CONFIG_COMMON_CLK_CDCE925 is not set
# CONFIG_COMMON_CLK_CS2000_CP is not set
# CONFIG_CLK_TWL is not set
# CONFIG_COMMON_CLK_AXI_CLKGEN is not set
# CONFIG_COMMON_CLK_RS9_PCIE is not set
# CONFIG_COMMON_CLK_SI521XX is not set
# CONFIG_COMMON_CLK_VC3 is not set
# CONFIG_COMMON_CLK_VC5 is not set
# CONFIG_COMMON_CLK_VC7 is not set
# CONFIG_COMMON_CLK_FIXED_MMIO is not set
# CONFIG_CLK_LGM_CGU is not set
# CONFIG_XILINX_VCU is not set
# CONFIG_COMMON_CLK_XLNX_CLKWZRD is not set
# CONFIG_HWSPINLOCK is not set

#
# Clock Source drivers
#
CONFIG_CLKEVT_I8253=y
CONFIG_I8253_LOCK=y
CONFIG_CLKBLD_I8253=y
# end of Clock Source drivers

CONFIG_MAILBOX=y
# CONFIG_PLATFORM_MHU is not set
CONFIG_PCC=y
# CONFIG_ALTERA_MBOX is not set
# CONFIG_MAILBOX_TEST is not set
CONFIG_IOMMU_IOVA=y
CONFIG_IOMMU_API=y
CONFIG_IOMMU_SUPPORT=y

#
# Generic IOMMU Pagetable Support
#
# end of Generic IOMMU Pagetable Support

# CONFIG_IOMMU_DEBUGFS is not set
# CONFIG_IOMMU_DEFAULT_DMA_STRICT is not set
CONFIG_IOMMU_DEFAULT_DMA_LAZY=y
# CONFIG_IOMMU_DEFAULT_PASSTHROUGH is not set
CONFIG_OF_IOMMU=y
CONFIG_IOMMU_DMA=y
CONFIG_IOMMU_SVA=y
CONFIG_IOMMU_IOPF=y
CONFIG_AMD_IOMMU=y
CONFIG_DMAR_TABLE=y
CONFIG_INTEL_IOMMU=y
# CONFIG_INTEL_IOMMU_SVM is not set
# CONFIG_INTEL_IOMMU_DEFAULT_ON is not set
CONFIG_INTEL_IOMMU_SCALABLE_MODE_DEFAULT_ON=y
CONFIG_INTEL_IOMMU_PERF_EVENTS=y
# CONFIG_IOMMUFD is not set
# CONFIG_IRQ_REMAP is not set
# CONFIG_VIRTIO_IOMMU is not set
CONFIG_GENERIC_PT=y
# CONFIG_DEBUG_GENERIC_PT is not set
CONFIG_IOMMU_PT=y
CONFIG_IOMMU_PT_AMDV1=y
CONFIG_IOMMU_PT_VTDSS=y
CONFIG_IOMMU_PT_X86_64=y

#
# Remoteproc drivers
#
# CONFIG_REMOTEPROC is not set
# end of Remoteproc drivers

#
# Rpmsg drivers
#
# CONFIG_RPMSG_QCOM_GLINK_RPM is not set
# CONFIG_RPMSG_VIRTIO is not set
# end of Rpmsg drivers

CONFIG_SOUNDWIRE=y

#
# SoundWire Devices
#
# CONFIG_SOUNDWIRE_AMD is not set
# CONFIG_SOUNDWIRE_INTEL is not set
# CONFIG_SOUNDWIRE_QCOM is not set

#
# SOC (System On Chip) specific Drivers
#

#
# Amlogic SoC drivers
#
# end of Amlogic SoC drivers

#
# Broadcom SoC drivers
#
# end of Broadcom SoC drivers

#
# NXP/Freescale QorIQ SoC drivers
#
# end of NXP/Freescale QorIQ SoC drivers

#
# fujitsu SoC drivers
#
# end of fujitsu SoC drivers

#
# i.MX SoC drivers
#
# end of i.MX SoC drivers

#
# Enable LiteX SoC Builder specific drivers
#
# CONFIG_LITEX_SOC_CONTROLLER is not set
# end of Enable LiteX SoC Builder specific drivers

# CONFIG_WPCM450_SOC is not set

#
# Qualcomm SoC drivers
#
# end of Qualcomm SoC drivers

# CONFIG_SOC_TI is not set

#
# Xilinx SoC drivers
#
# end of Xilinx SoC drivers
# end of SOC (System On Chip) specific Drivers

#
# PM Domains
#

#
# Amlogic PM Domains
#
# end of Amlogic PM Domains

#
# Broadcom PM Domains
#
# end of Broadcom PM Domains

#
# i.MX PM Domains
#
# end of i.MX PM Domains

#
# Qualcomm PM Domains
#
# end of Qualcomm PM Domains
# end of PM Domains

# CONFIG_PM_DEVFREQ is not set
CONFIG_EXTCON=y

#
# Extcon Device Drivers
#
# CONFIG_EXTCON_ADC_JACK is not set
# CONFIG_EXTCON_FSA9480 is not set
# CONFIG_EXTCON_GPIO is not set
# CONFIG_EXTCON_INTEL_INT3496 is not set
CONFIG_EXTCON_INTEL_CHT_WC=y
# CONFIG_EXTCON_LC824206XA is not set
# CONFIG_EXTCON_MAX3355 is not set
# CONFIG_EXTCON_MAX14526 is not set
CONFIG_EXTCON_PTN5150=y
# CONFIG_EXTCON_RT8973A is not set
# CONFIG_EXTCON_SM5502 is not set
# CONFIG_EXTCON_USB_GPIO is not set
# CONFIG_EXTCON_USBC_CROS_EC is not set
CONFIG_EXTCON_USBC_TUSB320=y
# CONFIG_MEMORY is not set
CONFIG_IIO=y
CONFIG_IIO_BUFFER=y
# CONFIG_IIO_BUFFER_CB is not set
# CONFIG_IIO_BUFFER_DMA is not set
# CONFIG_IIO_BUFFER_DMAENGINE is not set
# CONFIG_IIO_BUFFER_HW_CONSUMER is not set
CONFIG_IIO_KFIFO_BUF=y
CONFIG_IIO_TRIGGERED_BUFFER=y
# CONFIG_IIO_CONFIGFS is not set
CONFIG_IIO_TRIGGER=y
CONFIG_IIO_CONSUMERS_PER_TRIGGER=2
# CONFIG_IIO_SW_DEVICE is not set
# CONFIG_IIO_SW_TRIGGER is not set
# CONFIG_IIO_TRIGGERED_EVENT is not set

#
# Accelerometers
#
# CONFIG_ADIS16201 is not set
# CONFIG_ADIS16209 is not set
# CONFIG_ADXL313_I2C is not set
# CONFIG_ADXL313_SPI is not set
# CONFIG_ADXL345_I2C is not set
# CONFIG_ADXL345_SPI is not set
# CONFIG_ADXL355_I2C is not set
# CONFIG_ADXL355_SPI is not set
# CONFIG_ADXL367_SPI is not set
# CONFIG_ADXL367_I2C is not set
# CONFIG_ADXL372_SPI is not set
# CONFIG_ADXL372_I2C is not set
# CONFIG_ADXL380_SPI is not set
# CONFIG_ADXL380_I2C is not set
# CONFIG_BMA180 is not set
# CONFIG_BMA220 is not set
# CONFIG_BMA400 is not set
# CONFIG_BMC150_ACCEL is not set
# CONFIG_BMI088_ACCEL is not set
# CONFIG_DA280 is not set
# CONFIG_DA311 is not set
# CONFIG_DMARD06 is not set
# CONFIG_DMARD09 is not set
# CONFIG_DMARD10 is not set
# CONFIG_FXLS8962AF_I2C is not set
# CONFIG_FXLS8962AF_SPI is not set
CONFIG_HID_SENSOR_ACCEL_3D=y
# CONFIG_IIO_ST_ACCEL_3AXIS is not set
# CONFIG_IIO_KX022A_SPI is not set
# CONFIG_IIO_KX022A_I2C is not set
# CONFIG_KXSD9 is not set
# CONFIG_KXCJK1013 is not set
# CONFIG_MC3230 is not set
# CONFIG_MMA7455_I2C is not set
# CONFIG_MMA7455_SPI is not set
# CONFIG_MMA7660 is not set
# CONFIG_MMA8452 is not set
# CONFIG_MMA9551 is not set
# CONFIG_MMA9553 is not set
# CONFIG_MSA311 is not set
# CONFIG_MXC4005 is not set
# CONFIG_MXC6255 is not set
# CONFIG_SCA3000 is not set
# CONFIG_SCA3300 is not set
# CONFIG_STK8312 is not set
# CONFIG_STK8BA50 is not set
# end of Accelerometers

#
# Analog to digital converters
#
# CONFIG_AD4000 is not set
# CONFIG_AD4030 is not set
# CONFIG_AD4080 is not set
# CONFIG_AD4130 is not set
# CONFIG_AD4134 is not set
# CONFIG_AD4170_4 is not set
# CONFIG_AD4695 is not set
# CONFIG_AD7091R5 is not set
# CONFIG_AD7091R8 is not set
# CONFIG_AD7124 is not set
# CONFIG_AD7173 is not set
# CONFIG_AD7191 is not set
# CONFIG_AD7192 is not set
# CONFIG_AD7266 is not set
# CONFIG_AD7280 is not set
# CONFIG_AD7291 is not set
# CONFIG_AD7292 is not set
# CONFIG_AD7298 is not set
# CONFIG_AD7380 is not set
# CONFIG_AD7476 is not set
# CONFIG_AD7606_IFACE_PARALLEL is not set
# CONFIG_AD7606_IFACE_SPI is not set
# CONFIG_AD7766 is not set
# CONFIG_AD7768_1 is not set
# CONFIG_AD7779 is not set
# CONFIG_AD7780 is not set
# CONFIG_AD7791 is not set
# CONFIG_AD7793 is not set
# CONFIG_AD7887 is not set
# CONFIG_AD7923 is not set
# CONFIG_AD7944 is not set
# CONFIG_AD7949 is not set
# CONFIG_AD799X is not set
# CONFIG_AD9467 is not set
# CONFIG_ADE9000 is not set
# CONFIG_CC10001_ADC is not set
CONFIG_DLN2_ADC=y
# CONFIG_ENVELOPE_DETECTOR is not set
# CONFIG_GEHC_PMC_ADC is not set
# CONFIG_HI8435 is not set
# CONFIG_HX711 is not set
# CONFIG_INA2XX_ADC is not set
# CONFIG_LTC2309 is not set
# CONFIG_LTC2471 is not set
# CONFIG_LTC2485 is not set
# CONFIG_LTC2496 is not set
# CONFIG_LTC2497 is not set
# CONFIG_MAX1027 is not set
# CONFIG_MAX11100 is not set
# CONFIG_MAX1118 is not set
# CONFIG_MAX11205 is not set
# CONFIG_MAX11410 is not set
# CONFIG_MAX1241 is not set
# CONFIG_MAX1363 is not set
# CONFIG_MAX14001 is not set
# CONFIG_MAX34408 is not set
# CONFIG_MAX9611 is not set
# CONFIG_MCP320X is not set
# CONFIG_MCP3422 is not set
# CONFIG_MCP3564 is not set
# CONFIG_MCP3911 is not set
# CONFIG_MEDIATEK_MT6360_ADC is not set
# CONFIG_MEDIATEK_MT6370_ADC is not set
# CONFIG_NAU7802 is not set
# CONFIG_NCT7201 is not set
# CONFIG_PAC1921 is not set
# CONFIG_PAC1934 is not set
# CONFIG_ROHM_BD79112 is not set
# CONFIG_ROHM_BD79124 is not set
# CONFIG_RICHTEK_RTQ6056 is not set
# CONFIG_SD_ADC_MODULATOR is not set
# CONFIG_TI_ADC081C is not set
# CONFIG_TI_ADC0832 is not set
# CONFIG_TI_ADC084S021 is not set
# CONFIG_TI_ADC108S102 is not set
# CONFIG_TI_ADC12138 is not set
# CONFIG_TI_ADC128S052 is not set
# CONFIG_TI_ADC161S626 is not set
# CONFIG_TI_ADS1015 is not set
# CONFIG_TI_ADS1018 is not set
# CONFIG_TI_ADS1100 is not set
# CONFIG_TI_ADS1119 is not set
# CONFIG_TI_ADS124S08 is not set
# CONFIG_TI_ADS1298 is not set
# CONFIG_TI_ADS131E08 is not set
# CONFIG_TI_ADS131M02 is not set
# CONFIG_TI_ADS7138 is not set
# CONFIG_TI_ADS7924 is not set
# CONFIG_TI_ADS7950 is not set
# CONFIG_TI_ADS8344 is not set
# CONFIG_TI_ADS8688 is not set
# CONFIG_TI_LMP92064 is not set
# CONFIG_TI_TLC4541 is not set
# CONFIG_TI_TSC2046 is not set
# CONFIG_TWL4030_MADC is not set
# CONFIG_TWL6030_GPADC is not set
# CONFIG_VF610_ADC is not set
CONFIG_VIPERBOARD_ADC=y
# CONFIG_XILINX_XADC is not set
# end of Analog to digital converters

#
# Analog to digital and digital to analog converters
#
# CONFIG_AD74115 is not set
# CONFIG_AD74413R is not set
# end of Analog to digital and digital to analog converters

#
# Analog Front Ends
#
# CONFIG_IIO_RESCALE is not set
# end of Analog Front Ends

#
# Amplifiers
#
# CONFIG_AD8366 is not set
# CONFIG_ADA4250 is not set
# CONFIG_ADL8113 is not set
# CONFIG_HMC425 is not set
# end of Amplifiers

#
# Capacitance to digital converters
#
# CONFIG_AD7150 is not set
# CONFIG_AD7746 is not set
# end of Capacitance to digital converters

#
# Chemical Sensors
#
# CONFIG_AOSONG_AGS02MA is not set
# CONFIG_ATLAS_PH_SENSOR is not set
# CONFIG_ATLAS_EZO_SENSOR is not set
# CONFIG_BME680 is not set
# CONFIG_CCS811 is not set
# CONFIG_ENS160 is not set
# CONFIG_IAQCORE is not set
# CONFIG_MHZ19B is not set
# CONFIG_PMS7003 is not set
# CONFIG_SCD30_CORE is not set
# CONFIG_SCD4X is not set
# CONFIG_SEN0322 is not set
# CONFIG_SENSIRION_SGP30 is not set
# CONFIG_SENSIRION_SGP40 is not set
# CONFIG_SPS30_I2C is not set
# CONFIG_SPS30_SERIAL is not set
# CONFIG_SENSEAIR_SUNRISE_CO2 is not set
# CONFIG_VZ89X is not set
# end of Chemical Sensors

#
# Hid Sensor IIO Common
#
CONFIG_HID_SENSOR_IIO_COMMON=y
CONFIG_HID_SENSOR_IIO_TRIGGER=y
# end of Hid Sensor IIO Common

#
# IIO SCMI Sensors
#
# end of IIO SCMI Sensors

#
# SSP Sensor Common
#
# CONFIG_IIO_SSP_SENSORHUB is not set
# end of SSP Sensor Common

#
# Digital to analog converters
#
# CONFIG_AD3530R is not set
# CONFIG_AD3552R_HS is not set
# CONFIG_AD3552R is not set
# CONFIG_AD5064 is not set
# CONFIG_AD5360 is not set
# CONFIG_AD5380 is not set
# CONFIG_AD5421 is not set
# CONFIG_AD5446_SPI is not set
# CONFIG_AD5446_I2C is not set
# CONFIG_AD5449 is not set
# CONFIG_AD5592R is not set
# CONFIG_AD5593R is not set
# CONFIG_AD5504 is not set
# CONFIG_AD5624R_SPI is not set
# CONFIG_AD9739A is not set
# CONFIG_LTC2688 is not set
# CONFIG_AD5686_SPI is not set
# CONFIG_AD5696_I2C is not set
# CONFIG_AD5755 is not set
# CONFIG_AD5758 is not set
# CONFIG_AD5761 is not set
# CONFIG_AD5764 is not set
# CONFIG_AD5766 is not set
# CONFIG_AD5770R is not set
# CONFIG_AD5791 is not set
# CONFIG_AD7293 is not set
# CONFIG_AD7303 is not set
# CONFIG_AD8460 is not set
# CONFIG_AD8801 is not set
# CONFIG_BD79703 is not set
# CONFIG_DPOT_DAC is not set
# CONFIG_DS4424 is not set
# CONFIG_LTC1660 is not set
# CONFIG_LTC2632 is not set
# CONFIG_LTC2664 is not set
# CONFIG_M62332 is not set
# CONFIG_MAX517 is not set
# CONFIG_MAX22007 is not set
# CONFIG_MAX5522 is not set
# CONFIG_MAX5821 is not set
# CONFIG_MCP4725 is not set
# CONFIG_MCP4728 is not set
# CONFIG_MCP47FEB02 is not set
# CONFIG_MCP4821 is not set
# CONFIG_MCP4922 is not set
# CONFIG_TI_DAC082S085 is not set
# CONFIG_TI_DAC5571 is not set
# CONFIG_TI_DAC7311 is not set
# CONFIG_TI_DAC7612 is not set
# CONFIG_VF610_DAC is not set
# end of Digital to analog converters

#
# IIO dummy driver
#
# end of IIO dummy driver

#
# Filters
#
# CONFIG_ADMV8818 is not set
# end of Filters

#
# Frequency Synthesizers DDS/PLL
#

#
# Clock Generator/Distribution
#
# CONFIG_AD9523 is not set
# end of Clock Generator/Distribution

#
# Phase-Locked Loop (PLL) frequency synthesizers
#
# CONFIG_ADF4350 is not set
# CONFIG_ADF4371 is not set
# CONFIG_ADF4377 is not set
# CONFIG_ADMFM2000 is not set
# CONFIG_ADMV1013 is not set
# CONFIG_ADMV1014 is not set
# CONFIG_ADMV4420 is not set
# CONFIG_ADRF6780 is not set
# end of Phase-Locked Loop (PLL) frequency synthesizers
# end of Frequency Synthesizers DDS/PLL

#
# Digital gyroscope sensors
#
# CONFIG_ADIS16080 is not set
# CONFIG_ADIS16130 is not set
# CONFIG_ADIS16136 is not set
# CONFIG_ADIS16260 is not set
# CONFIG_ADXRS290 is not set
# CONFIG_ADXRS450 is not set
# CONFIG_BMG160 is not set
# CONFIG_FXAS21002C is not set
CONFIG_HID_SENSOR_GYRO_3D=y
# CONFIG_MPU3050_I2C is not set
# CONFIG_IIO_ST_GYRO_3AXIS is not set
# CONFIG_ITG3200 is not set
# end of Digital gyroscope sensors

#
# Health Sensors
#

#
# Heart Rate Monitors
#
# CONFIG_AFE4403 is not set
# CONFIG_AFE4404 is not set
# CONFIG_MAX30100 is not set
# CONFIG_MAX30102 is not set
# end of Heart Rate Monitors
# end of Health Sensors

#
# Humidity sensors
#
# CONFIG_AM2315 is not set
# CONFIG_DHT11 is not set
# CONFIG_ENS210 is not set
# CONFIG_HDC100X is not set
# CONFIG_HDC2010 is not set
# CONFIG_HDC3020 is not set
CONFIG_HID_SENSOR_HUMIDITY=y
# CONFIG_HTS221 is not set
# CONFIG_HTU21 is not set
# CONFIG_SI7005 is not set
# CONFIG_SI7020 is not set
# end of Humidity sensors

#
# Inertial measurement units
#
# CONFIG_ADIS16400 is not set
# CONFIG_ADIS16460 is not set
# CONFIG_ADIS16475 is not set
# CONFIG_ADIS16480 is not set
# CONFIG_ADIS16550 is not set
# CONFIG_BMI160_I2C is not set
# CONFIG_BMI160_SPI is not set
# CONFIG_BMI270_I2C is not set
# CONFIG_BMI270_SPI is not set
# CONFIG_BMI323_I2C is not set
# CONFIG_BMI323_SPI is not set
# CONFIG_BOSCH_BNO055_SERIAL is not set
# CONFIG_BOSCH_BNO055_I2C is not set
# CONFIG_FXOS8700_I2C is not set
# CONFIG_FXOS8700_SPI is not set
# CONFIG_KMX61 is not set
# CONFIG_INV_ICM42600_I2C is not set
# CONFIG_INV_ICM42600_SPI is not set
# CONFIG_INV_ICM45600_I2C is not set
# CONFIG_INV_ICM45600_SPI is not set
# CONFIG_INV_MPU6050_I2C is not set
# CONFIG_INV_MPU6050_SPI is not set
# CONFIG_SMI240 is not set
# CONFIG_SMI330_I2C is not set
# CONFIG_SMI330_SPI is not set
# CONFIG_IIO_ST_LSM6DSX is not set
# CONFIG_IIO_ST_LSM9DS0 is not set
# end of Inertial measurement units

#
# Light sensors
#
# CONFIG_ACPI_ALS is not set
# CONFIG_ADJD_S311 is not set
# CONFIG_ADUX1020 is not set
# CONFIG_AL3000A is not set
# CONFIG_AL3010 is not set
# CONFIG_AL3320A is not set
# CONFIG_APDS9160 is not set
# CONFIG_APDS9300 is not set
# CONFIG_APDS9306 is not set
# CONFIG_APDS9960 is not set
# CONFIG_AS73211 is not set
# CONFIG_BH1745 is not set
# CONFIG_BH1750 is not set
# CONFIG_BH1780 is not set
# CONFIG_CM32181 is not set
# CONFIG_CM3232 is not set
# CONFIG_CM3323 is not set
# CONFIG_CM3605 is not set
# CONFIG_CM36651 is not set
# CONFIG_GP2AP002 is not set
# CONFIG_GP2AP020A00F is not set
# CONFIG_SENSORS_ISL29018 is not set
# CONFIG_SENSORS_ISL29028 is not set
# CONFIG_ISL29125 is not set
# CONFIG_ISL76682 is not set
CONFIG_HID_SENSOR_ALS=y
CONFIG_HID_SENSOR_PROX=y
# CONFIG_JSA1212 is not set
# CONFIG_ROHM_BU27034 is not set
# CONFIG_RPR0521 is not set
# CONFIG_LTR390 is not set
# CONFIG_LTR501 is not set
# CONFIG_LTRF216A is not set
# CONFIG_LV0104CS is not set
# CONFIG_MAX44000 is not set
# CONFIG_MAX44009 is not set
# CONFIG_NOA1305 is not set
# CONFIG_OPT3001 is not set
# CONFIG_OPT4001 is not set
# CONFIG_OPT4060 is not set
# CONFIG_PA12203001 is not set
# CONFIG_SI1133 is not set
# CONFIG_SI1145 is not set
# CONFIG_STK3310 is not set
# CONFIG_ST_UVIS25 is not set
# CONFIG_TCS3414 is not set
# CONFIG_TCS3472 is not set
# CONFIG_SENSORS_TSL2563 is not set
# CONFIG_TSL2583 is not set
# CONFIG_TSL2591 is not set
# CONFIG_TSL2772 is not set
# CONFIG_TSL4531 is not set
# CONFIG_US5182D is not set
# CONFIG_VCNL4000 is not set
# CONFIG_VCNL4035 is not set
# CONFIG_VEML3235 is not set
# CONFIG_VEML6030 is not set
# CONFIG_VEML6040 is not set
# CONFIG_VEML6046X00 is not set
# CONFIG_VEML6070 is not set
# CONFIG_VEML6075 is not set
# CONFIG_VL6180 is not set
# CONFIG_ZOPT2201 is not set
# end of Light sensors

#
# Magnetometer sensors
#
# CONFIG_AF8133J is not set
# CONFIG_AK8974 is not set
# CONFIG_AK8975 is not set
# CONFIG_AK09911 is not set
# CONFIG_ALS31300 is not set
# CONFIG_BMC150_MAGN_I2C is not set
# CONFIG_BMC150_MAGN_SPI is not set
# CONFIG_MAG3110 is not set
CONFIG_HID_SENSOR_MAGNETOMETER_3D=y
# CONFIG_MMC35240 is not set
# CONFIG_MMC5633 is not set
# CONFIG_IIO_ST_MAGN_3AXIS is not set
# CONFIG_INFINEON_TLV493D is not set
# CONFIG_SENSORS_HMC5843_I2C is not set
# CONFIG_SENSORS_HMC5843_SPI is not set
# CONFIG_SENSORS_RM3100_I2C is not set
# CONFIG_SENSORS_RM3100_SPI is not set
# CONFIG_SI7210 is not set
# CONFIG_TI_TMAG5273 is not set
# CONFIG_YAMAHA_YAS530 is not set
# end of Magnetometer sensors

#
# Multiplexers
#
# CONFIG_IIO_MUX is not set
# end of Multiplexers

#
# Inclinometer sensors
#
CONFIG_HID_SENSOR_INCLINOMETER_3D=y
CONFIG_HID_SENSOR_DEVICE_ROTATION=y
# end of Inclinometer sensors

#
# Triggers - standalone
#
# CONFIG_IIO_INTERRUPT_TRIGGER is not set
# CONFIG_IIO_SYSFS_TRIGGER is not set
# end of Triggers - standalone

#
# Linear and angular position sensors
#
CONFIG_HID_SENSOR_CUSTOM_INTEL_HINGE=y
# end of Linear and angular position sensors

#
# Digital potentiometers
#
# CONFIG_AD5110 is not set
# CONFIG_AD5272 is not set
# CONFIG_DS1803 is not set
# CONFIG_MAX5432 is not set
# CONFIG_MAX5481 is not set
# CONFIG_MAX5487 is not set
# CONFIG_MCP4018 is not set
# CONFIG_MCP4131 is not set
# CONFIG_MCP4531 is not set
# CONFIG_MCP41010 is not set
# CONFIG_TPL0102 is not set
# CONFIG_X9250 is not set
# end of Digital potentiometers

#
# Digital potentiostats
#
# CONFIG_LMP91000 is not set
# end of Digital potentiostats

#
# Pressure sensors
#
# CONFIG_ABP060MG is not set
# CONFIG_ABP2030PA_I2C is not set
# CONFIG_ABP2030PA_SPI is not set
# CONFIG_ROHM_BM1390 is not set
# CONFIG_BMP280 is not set
# CONFIG_DLHL60D is not set
# CONFIG_DPS310 is not set
CONFIG_HID_SENSOR_PRESS=y
# CONFIG_HP03 is not set
# CONFIG_HSC030PA is not set
# CONFIG_ICP10100 is not set
# CONFIG_MPL115_I2C is not set
# CONFIG_MPL115_SPI is not set
# CONFIG_MPL3115 is not set
# CONFIG_MPRLS0025PA_I2C is not set
# CONFIG_MPRLS0025PA_SPI is not set
# CONFIG_MS5611 is not set
# CONFIG_MS5637 is not set
# CONFIG_SDP500 is not set
# CONFIG_IIO_ST_PRESS is not set
# CONFIG_T5403 is not set
# CONFIG_HP206C is not set
# CONFIG_ZPA2326 is not set
# CONFIG_ADP810 is not set
# end of Pressure sensors

#
# Lightning sensors
#
# CONFIG_AS3935 is not set
# end of Lightning sensors

#
# Proximity and distance sensors
#
# CONFIG_CROS_EC_MKBP_PROXIMITY is not set
# CONFIG_D3323AA is not set
# CONFIG_HX9023S is not set
# CONFIG_IRSD200 is not set
# CONFIG_ISL29501 is not set
# CONFIG_LIDAR_LITE_V2 is not set
# CONFIG_MB1232 is not set
# CONFIG_PING is not set
# CONFIG_RFD77402 is not set
# CONFIG_SRF04 is not set
# CONFIG_SX9310 is not set
# CONFIG_SX9324 is not set
# CONFIG_SX9360 is not set
# CONFIG_SX9500 is not set
# CONFIG_SRF08 is not set
# CONFIG_VCNL3020 is not set
# CONFIG_VL53L0X_I2C is not set
# CONFIG_AW96103 is not set
# end of Proximity and distance sensors

#
# Resolver to digital converters
#
# CONFIG_AD2S90 is not set
# CONFIG_AD2S1200 is not set
# CONFIG_AD2S1210 is not set
# end of Resolver to digital converters

#
# Temperature sensors
#
# CONFIG_LTC2983 is not set
# CONFIG_MAXIM_THERMOCOUPLE is not set
CONFIG_HID_SENSOR_TEMP=y
# CONFIG_MLX90614 is not set
# CONFIG_MLX90632 is not set
# CONFIG_MLX90635 is not set
# CONFIG_TMP006 is not set
# CONFIG_TMP007 is not set
# CONFIG_TMP117 is not set
# CONFIG_TSYS01 is not set
# CONFIG_TSYS02D is not set
# CONFIG_MAX30208 is not set
# CONFIG_MAX31856 is not set
# CONFIG_MAX31865 is not set
# CONFIG_MCP9600 is not set
# end of Temperature sensors

# CONFIG_NTB is not set
# CONFIG_PWM is not set

#
# IRQ chip support
#
CONFIG_IRQCHIP=y
CONFIG_IRQ_MSI_LIB=y
# CONFIG_AL_FIC is not set
# CONFIG_XILINX_INTC is not set
# end of IRQ chip support

# CONFIG_IPACK_BUS is not set
CONFIG_RESET_CONTROLLER=y
# CONFIG_RESET_GPIO is not set
# CONFIG_RESET_INTEL_GW is not set
# CONFIG_RESET_SIMPLE is not set
# CONFIG_RESET_TI_SYSCON is not set
# CONFIG_RESET_TI_TPS380X is not set

#
# PHY Subsystem
#
CONFIG_GENERIC_PHY=y
# CONFIG_PHY_GOOGLE_USB is not set
CONFIG_USB_LGM_PHY=y
# CONFIG_PHY_CAN_TRANSCEIVER is not set
# CONFIG_PHY_NXP_PTN3222 is not set

#
# PHY drivers for Broadcom platforms
#
# CONFIG_BCM_KONA_USB2_PHY is not set
# end of PHY drivers for Broadcom platforms

# CONFIG_PHY_CADENCE_TORRENT is not set
# CONFIG_PHY_CADENCE_DPHY is not set
# CONFIG_PHY_CADENCE_DPHY_RX is not set
# CONFIG_PHY_CADENCE_SIERRA is not set
# CONFIG_PHY_CADENCE_SALVO is not set
# CONFIG_PHY_PXA_28NM_HSIC is not set
# CONFIG_PHY_PXA_28NM_USB2 is not set
CONFIG_PHY_CPCAP_USB=y
# CONFIG_PHY_MAPPHONE_MDM6600 is not set
# CONFIG_PHY_OCELOT_SERDES is not set
CONFIG_PHY_QCOM_USB_HS=y
CONFIG_PHY_QCOM_USB_HSIC=y
CONFIG_PHY_SAMSUNG_USB2=y
CONFIG_PHY_TUSB1210=y
# CONFIG_PHY_INTEL_LGM_COMBO is not set
# CONFIG_PHY_INTEL_LGM_EMMC is not set
# end of PHY Subsystem

# CONFIG_POWERCAP is not set
# CONFIG_MCB is not set

#
# Performance monitor support
#
# CONFIG_DWC_PCIE_PMU is not set
# end of Performance monitor support

CONFIG_RAS=y
CONFIG_USB4=y
# CONFIG_USB4_DEBUGFS_WRITE is not set
# CONFIG_USB4_DMA_TEST is not set

#
# Android
#
# CONFIG_ANDROID_BINDER_IPC is not set
# end of Android

# CONFIG_LIBNVDIMM is not set
# CONFIG_DAX is not set
CONFIG_NVMEM=y
CONFIG_NVMEM_SYSFS=y
CONFIG_NVMEM_LAYOUTS=y

#
# Layout Types
#
# CONFIG_NVMEM_LAYOUT_SL28_VPD is not set
# CONFIG_NVMEM_LAYOUT_ONIE_TLV is not set
# CONFIG_NVMEM_LAYOUT_U_BOOT_ENV is not set
# end of Layout Types

# CONFIG_NVMEM_RMEM is not set

#
# HW tracing support
#
# CONFIG_STM is not set
# CONFIG_INTEL_TH is not set
# end of HW tracing support

# CONFIG_FPGA is not set
# CONFIG_FSI is not set
CONFIG_TEE=y
CONFIG_AMDTEE=y
# CONFIG_SIOX is not set
# CONFIG_SLIMBUS is not set
# CONFIG_INTERCONNECT is not set
# CONFIG_COUNTER is not set
CONFIG_MOST=y
CONFIG_MOST_USB_HDM=y
# CONFIG_MOST_CDEV is not set
# CONFIG_MOST_SND is not set
# CONFIG_PECI is not set
# CONFIG_HTE is not set
# end of Device Drivers

#
# File systems
#
CONFIG_DCACHE_WORD_ACCESS=y
# CONFIG_VALIDATE_FS_PARSER is not set
CONFIG_FS_IOMAP=y
CONFIG_BUFFER_HEAD=y
CONFIG_LEGACY_DIRECT_IO=y
# CONFIG_EXT2_FS is not set
CONFIG_EXT4_FS=y
CONFIG_EXT4_USE_FOR_EXT2=y
CONFIG_EXT4_FS_POSIX_ACL=y
CONFIG_EXT4_FS_SECURITY=y
# CONFIG_EXT4_DEBUG is not set
CONFIG_JBD2=y
# CONFIG_JBD2_DEBUG is not set
CONFIG_FS_MBCACHE=y
# CONFIG_JFS_FS is not set
# CONFIG_XFS_FS is not set
# CONFIG_GFS2_FS is not set
# CONFIG_OCFS2_FS is not set
# CONFIG_BTRFS_FS is not set
# CONFIG_NILFS2_FS is not set
# CONFIG_F2FS_FS is not set
CONFIG_FS_POSIX_ACL=y
CONFIG_EXPORTFS=y
# CONFIG_EXPORTFS_BLOCK_OPS is not set
CONFIG_FILE_LOCKING=y
# CONFIG_FS_ENCRYPTION is not set
# CONFIG_FS_VERITY is not set
CONFIG_FSNOTIFY=y
CONFIG_DNOTIFY=y
CONFIG_INOTIFY_USER=y
# CONFIG_FANOTIFY is not set
CONFIG_QUOTA=y
CONFIG_QUOTA_NETLINK_INTERFACE=y
# CONFIG_QUOTA_DEBUG is not set
CONFIG_QUOTA_TREE=y
# CONFIG_QFMT_V1 is not set
CONFIG_QFMT_V2=y
CONFIG_QUOTACTL=y
CONFIG_AUTOFS_FS=y
# CONFIG_FUSE_FS is not set
# CONFIG_OVERLAY_FS is not set

#
# Caches
#
CONFIG_NETFS_SUPPORT=y
# CONFIG_NETFS_STATS is not set
# CONFIG_NETFS_DEBUG is not set
# CONFIG_FSCACHE is not set
# end of Caches

#
# CD-ROM/DVD Filesystems
#
CONFIG_ISO9660_FS=y
CONFIG_JOLIET=y
CONFIG_ZISOFS=y
# CONFIG_UDF_FS is not set
# end of CD-ROM/DVD Filesystems

#
# DOS/FAT/EXFAT/NT Filesystems
#
CONFIG_FAT_FS=y
CONFIG_MSDOS_FS=y
CONFIG_VFAT_FS=y
CONFIG_FAT_DEFAULT_CODEPAGE=437
CONFIG_FAT_DEFAULT_IOCHARSET="iso8859-1"
# CONFIG_FAT_DEFAULT_UTF8 is not set
# CONFIG_EXFAT_FS is not set
# CONFIG_NTFS3_FS is not set
# CONFIG_NTFS_FS is not set
# end of DOS/FAT/EXFAT/NT Filesystems

#
# Pseudo filesystems
#
CONFIG_PROC_FS=y
CONFIG_PROC_KCORE=y
CONFIG_PROC_VMCORE=y
# CONFIG_PROC_VMCORE_DEVICE_DUMP is not set
CONFIG_PROC_SYSCTL=y
CONFIG_PROC_PAGE_MONITOR=y
# CONFIG_PROC_CHILDREN is not set
CONFIG_PROC_PID_ARCH_STATUS=y
CONFIG_KERNFS=y
CONFIG_SYSFS=y
CONFIG_TMPFS=y
CONFIG_TMPFS_POSIX_ACL=y
CONFIG_TMPFS_XATTR=y
# CONFIG_TMPFS_INODE64 is not set
# CONFIG_TMPFS_QUOTA is not set
CONFIG_ARCH_SUPPORTS_HUGETLBFS=y
CONFIG_HUGETLBFS=y
# CONFIG_HUGETLB_PAGE_OPTIMIZE_VMEMMAP_DEFAULT_ON is not set
CONFIG_HUGETLB_PAGE=y
CONFIG_HUGETLB_PAGE_OPTIMIZE_VMEMMAP=y
CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING=y
CONFIG_ARCH_HAS_GIGANTIC_PAGE=y
CONFIG_CONFIGFS_FS=y
# end of Pseudo filesystems

CONFIG_MISC_FILESYSTEMS=y
# CONFIG_ORANGEFS_FS is not set
# CONFIG_ADFS_FS is not set
# CONFIG_AFFS_FS is not set
# CONFIG_ECRYPT_FS is not set
# CONFIG_HFS_FS is not set
# CONFIG_HFSPLUS_FS is not set
# CONFIG_BEFS_FS is not set
# CONFIG_BFS_FS is not set
# CONFIG_EFS_FS is not set
# CONFIG_CRAMFS is not set
# CONFIG_SQUASHFS is not set
# CONFIG_VXFS_FS is not set
# CONFIG_MINIX_FS is not set
# CONFIG_OMFS_FS is not set
# CONFIG_HPFS_FS is not set
# CONFIG_QNX4FS_FS is not set
# CONFIG_QNX6FS_FS is not set
# CONFIG_ROMFS_FS is not set
# CONFIG_PSTORE is not set
# CONFIG_UFS_FS is not set
# CONFIG_EROFS_FS is not set
CONFIG_NETWORK_FILESYSTEMS=y
CONFIG_NFS_FS=y
# CONFIG_NFS_V2 is not set
CONFIG_NFS_V3=y
CONFIG_NFS_V3_ACL=y
CONFIG_NFS_V4=y
# CONFIG_NFS_SWAP is not set
# CONFIG_NFS_V4_0 is not set
# CONFIG_NFS_V4_2 is not set
CONFIG_PNFS_FILE_LAYOUT=y
CONFIG_PNFS_BLOCK=y
CONFIG_PNFS_FLEXFILE_LAYOUT=y
CONFIG_NFS_V4_1_IMPLEMENTATION_ID_DOMAIN="kernel.org"
# CONFIG_NFS_V4_1_MIGRATION is not set
CONFIG_ROOT_NFS=y
# CONFIG_NFS_FSCACHE is not set
# CONFIG_NFS_USE_LEGACY_DNS is not set
CONFIG_NFS_USE_KERNEL_DNS=y
CONFIG_NFS_DISABLE_UDP_SUPPORT=y
# CONFIG_NFSD is not set
CONFIG_GRACE_PERIOD=y
CONFIG_LOCKD=y
CONFIG_LOCKD_V4=y
CONFIG_NFS_ACL_SUPPORT=y
CONFIG_NFS_COMMON=y
CONFIG_SUNRPC=y
CONFIG_SUNRPC_GSS=y
CONFIG_SUNRPC_BACKCHANNEL=y
CONFIG_RPCSEC_GSS_KRB5=y
CONFIG_RPCSEC_GSS_KRB5_ENCTYPES_AES_SHA1=y
# CONFIG_RPCSEC_GSS_KRB5_ENCTYPES_CAMELLIA is not set
# CONFIG_RPCSEC_GSS_KRB5_ENCTYPES_AES_SHA2 is not set
# CONFIG_SUNRPC_DEBUG is not set
# CONFIG_SUNRPC_XPRT_RDMA is not set
# CONFIG_CEPH_FS is not set
# CONFIG_CIFS is not set
# CONFIG_SMB_SERVER is not set
# CONFIG_CODA_FS is not set
# CONFIG_AFS_FS is not set
CONFIG_9P_FS=y
# CONFIG_9P_FS_POSIX_ACL is not set
# CONFIG_9P_FS_SECURITY is not set
CONFIG_NLS=y
CONFIG_NLS_DEFAULT="utf8"
CONFIG_NLS_CODEPAGE_437=y
# CONFIG_NLS_CODEPAGE_737 is not set
# CONFIG_NLS_CODEPAGE_775 is not set
# CONFIG_NLS_CODEPAGE_850 is not set
# CONFIG_NLS_CODEPAGE_852 is not set
# CONFIG_NLS_CODEPAGE_855 is not set
# CONFIG_NLS_CODEPAGE_857 is not set
# CONFIG_NLS_CODEPAGE_860 is not set
# CONFIG_NLS_CODEPAGE_861 is not set
# CONFIG_NLS_CODEPAGE_862 is not set
# CONFIG_NLS_CODEPAGE_863 is not set
# CONFIG_NLS_CODEPAGE_864 is not set
# CONFIG_NLS_CODEPAGE_865 is not set
# CONFIG_NLS_CODEPAGE_866 is not set
# CONFIG_NLS_CODEPAGE_869 is not set
# CONFIG_NLS_CODEPAGE_936 is not set
# CONFIG_NLS_CODEPAGE_950 is not set
# CONFIG_NLS_CODEPAGE_932 is not set
# CONFIG_NLS_CODEPAGE_949 is not set
# CONFIG_NLS_CODEPAGE_874 is not set
# CONFIG_NLS_ISO8859_8 is not set
# CONFIG_NLS_CODEPAGE_1250 is not set
# CONFIG_NLS_CODEPAGE_1251 is not set
CONFIG_NLS_ASCII=y
CONFIG_NLS_ISO8859_1=y
# CONFIG_NLS_ISO8859_2 is not set
# CONFIG_NLS_ISO8859_3 is not set
# CONFIG_NLS_ISO8859_4 is not set
# CONFIG_NLS_ISO8859_5 is not set
# CONFIG_NLS_ISO8859_6 is not set
# CONFIG_NLS_ISO8859_7 is not set
# CONFIG_NLS_ISO8859_9 is not set
# CONFIG_NLS_ISO8859_13 is not set
# CONFIG_NLS_ISO8859_14 is not set
# CONFIG_NLS_ISO8859_15 is not set
# CONFIG_NLS_KOI8_R is not set
# CONFIG_NLS_KOI8_U is not set
# CONFIG_NLS_MAC_ROMAN is not set
# CONFIG_NLS_MAC_CELTIC is not set
# CONFIG_NLS_MAC_CENTEURO is not set
# CONFIG_NLS_MAC_CROATIAN is not set
# CONFIG_NLS_MAC_CYRILLIC is not set
# CONFIG_NLS_MAC_GAELIC is not set
# CONFIG_NLS_MAC_GREEK is not set
# CONFIG_NLS_MAC_ICELAND is not set
# CONFIG_NLS_MAC_INUIT is not set
# CONFIG_NLS_MAC_ROMANIAN is not set
# CONFIG_NLS_MAC_TURKISH is not set
CONFIG_NLS_UTF8=y
# CONFIG_DLM is not set
# CONFIG_UNICODE is not set
CONFIG_IO_WQ=y
# end of File systems

#
# Security options
#
CONFIG_KEYS=y
# CONFIG_KEYS_REQUEST_CACHE is not set
# CONFIG_PERSISTENT_KEYRINGS is not set
# CONFIG_BIG_KEYS is not set
# CONFIG_TRUSTED_KEYS is not set
# CONFIG_ENCRYPTED_KEYS is not set
# CONFIG_KEY_DH_OPERATIONS is not set
# CONFIG_SECURITY_DMESG_RESTRICT is not set
CONFIG_PROC_MEM_ALWAYS_FORCE=y
# CONFIG_PROC_MEM_FORCE_PTRACE is not set
# CONFIG_PROC_MEM_NO_FORCE is not set
# CONFIG_MSEAL_SYSTEM_MAPPINGS is not set
CONFIG_SECURITY=y
CONFIG_HAS_SECURITY_AUDIT=y
CONFIG_SECURITYFS=y
CONFIG_SECURITY_NETWORK=y
# CONFIG_SECURITY_INFINIBAND is not set
# CONFIG_SECURITY_NETWORK_XFRM is not set
# CONFIG_SECURITY_PATH is not set
# CONFIG_INTEL_TXT is not set
CONFIG_LSM_MMAP_MIN_ADDR=65536
# CONFIG_STATIC_USERMODEHELPER is not set
CONFIG_SECURITY_SELINUX=y
CONFIG_SECURITY_SELINUX_BOOTPARAM=y
CONFIG_SECURITY_SELINUX_DEVELOP=y
CONFIG_SECURITY_SELINUX_AVC_STATS=y
CONFIG_SECURITY_SELINUX_SIDTAB_HASH_BITS=9
CONFIG_SECURITY_SELINUX_SID2STR_CACHE_SIZE=256
CONFIG_SECURITY_SELINUX_AVC_HASH_BITS=9
# CONFIG_SECURITY_SELINUX_DEBUG is not set
# CONFIG_SECURITY_SMACK is not set
# CONFIG_SECURITY_TOMOYO is not set
# CONFIG_SECURITY_APPARMOR is not set
# CONFIG_SECURITY_LOADPIN is not set
# CONFIG_SECURITY_YAMA is not set
# CONFIG_SECURITY_SAFESETID is not set
# CONFIG_SECURITY_LOCKDOWN_LSM is not set
# CONFIG_SECURITY_LANDLOCK is not set
# CONFIG_SECURITY_IPE is not set
CONFIG_INTEGRITY=y
# CONFIG_INTEGRITY_SIGNATURE is not set
CONFIG_INTEGRITY_AUDIT=y
# CONFIG_IMA is not set
# CONFIG_EVM is not set
CONFIG_DEFAULT_SECURITY_SELINUX=y
# CONFIG_DEFAULT_SECURITY_DAC is not set
CONFIG_LSM="landlock,lockdown,yama,loadpin,safesetid,selinux,smack,tomoyo,apparmor,ipe,bpf"

#
# Kernel hardening options
#

#
# Memory initialization
#
CONFIG_CC_HAS_AUTO_VAR_INIT_PATTERN=y
CONFIG_CC_HAS_AUTO_VAR_INIT_ZERO_BARE=y
CONFIG_CC_HAS_AUTO_VAR_INIT_ZERO=y
# CONFIG_INIT_STACK_NONE is not set
# CONFIG_INIT_STACK_ALL_PATTERN is not set
CONFIG_INIT_STACK_ALL_ZERO=y
CONFIG_CC_HAS_SANCOV_STACK_DEPTH_CALLBACK=y
# CONFIG_KSTACK_ERASE is not set
CONFIG_INIT_ON_ALLOC_DEFAULT_ON=y
# CONFIG_INIT_ON_FREE_DEFAULT_ON is not set
CONFIG_CC_HAS_ZERO_CALL_USED_REGS=y
# CONFIG_ZERO_CALL_USED_REGS is not set
# end of Memory initialization

#
# Bounds checking
#
CONFIG_FORTIFY_SOURCE=y
CONFIG_HARDENED_USERCOPY=y
# CONFIG_HARDENED_USERCOPY_DEFAULT_ON is not set
# end of Bounds checking

#
# Hardening of kernel data structures
#
CONFIG_LIST_HARDENED=y
CONFIG_BUG_ON_DATA_CORRUPTION=y
# end of Hardening of kernel data structures

CONFIG_CC_HAS_RANDSTRUCT=y
CONFIG_RANDSTRUCT_NONE=y
# CONFIG_RANDSTRUCT_FULL is not set
# end of Kernel hardening options
# end of Security options

CONFIG_CRYPTO=y

#
# Crypto core or helper
#
CONFIG_CRYPTO_ALGAPI=y
CONFIG_CRYPTO_ALGAPI2=y
CONFIG_CRYPTO_AEAD=y
CONFIG_CRYPTO_AEAD2=y
CONFIG_CRYPTO_SIG=y
CONFIG_CRYPTO_SIG2=y
CONFIG_CRYPTO_SKCIPHER=y
CONFIG_CRYPTO_SKCIPHER2=y
CONFIG_CRYPTO_HASH=y
CONFIG_CRYPTO_HASH2=y
CONFIG_CRYPTO_RNG=y
CONFIG_CRYPTO_RNG2=y
CONFIG_CRYPTO_RNG_DEFAULT=y
CONFIG_CRYPTO_AKCIPHER2=y
CONFIG_CRYPTO_AKCIPHER=y
CONFIG_CRYPTO_KPP2=y
CONFIG_CRYPTO_KPP=y
CONFIG_CRYPTO_ACOMP2=y
CONFIG_CRYPTO_MANAGER=y
CONFIG_CRYPTO_MANAGER2=y
# CONFIG_CRYPTO_USER is not set
# CONFIG_CRYPTO_SELFTESTS is not set
# CONFIG_CRYPTO_NULL is not set
# CONFIG_CRYPTO_PCRYPT is not set
# CONFIG_CRYPTO_CRYPTD is not set
CONFIG_CRYPTO_AUTHENC=y
CONFIG_CRYPTO_KRB5ENC=y
# CONFIG_CRYPTO_BENCHMARK is not set
# end of Crypto core or helper

#
# Public-key cryptography
#
CONFIG_CRYPTO_RSA=y
# CONFIG_CRYPTO_DH is not set
CONFIG_CRYPTO_ECC=y
CONFIG_CRYPTO_ECDH=y
# CONFIG_CRYPTO_ECDSA is not set
# CONFIG_CRYPTO_ECRDSA is not set
# CONFIG_CRYPTO_MLDSA is not set
# end of Public-key cryptography

#
# Block ciphers
#
CONFIG_CRYPTO_AES=y
# CONFIG_CRYPTO_ARIA is not set
# CONFIG_CRYPTO_BLOWFISH is not set
CONFIG_CRYPTO_CAMELLIA=y
# CONFIG_CRYPTO_CAST5 is not set
# CONFIG_CRYPTO_CAST6 is not set
# CONFIG_CRYPTO_DES is not set
CONFIG_CRYPTO_FCRYPT=y
# CONFIG_CRYPTO_SERPENT is not set
# CONFIG_CRYPTO_SM4_GENERIC is not set
# CONFIG_CRYPTO_TWOFISH is not set
# end of Block ciphers

#
# Length-preserving ciphers and modes
#
# CONFIG_CRYPTO_ADIANTUM is not set
# CONFIG_CRYPTO_CHACHA20 is not set
CONFIG_CRYPTO_CBC=y
CONFIG_CRYPTO_CTR=y
CONFIG_CRYPTO_CTS=y
CONFIG_CRYPTO_ECB=y
# CONFIG_CRYPTO_HCTR2 is not set
# CONFIG_CRYPTO_LRW is not set
CONFIG_CRYPTO_PCBC=y
# CONFIG_CRYPTO_XTS is not set
# end of Length-preserving ciphers and modes

#
# AEAD (authenticated encryption with associated data) ciphers
#
# CONFIG_CRYPTO_AEGIS128 is not set
# CONFIG_CRYPTO_CHACHA20POLY1305 is not set
CONFIG_CRYPTO_CCM=y
CONFIG_CRYPTO_GCM=y
CONFIG_CRYPTO_GENIV=y
CONFIG_CRYPTO_SEQIV=y
CONFIG_CRYPTO_ECHAINIV=y
# CONFIG_CRYPTO_ESSIV is not set
# end of AEAD (authenticated encryption with associated data) ciphers

#
# Hashes, digests, and MACs
#
# CONFIG_CRYPTO_BLAKE2B is not set
CONFIG_CRYPTO_CMAC=y
CONFIG_CRYPTO_GHASH=y
CONFIG_CRYPTO_HMAC=y
# CONFIG_CRYPTO_MD4 is not set
# CONFIG_CRYPTO_MD5 is not set
# CONFIG_CRYPTO_MICHAEL_MIC is not set
# CONFIG_CRYPTO_RMD160 is not set
CONFIG_CRYPTO_SHA1=y
CONFIG_CRYPTO_SHA256=y
CONFIG_CRYPTO_SHA512=y
CONFIG_CRYPTO_SHA3=y
# CONFIG_CRYPTO_SM3_GENERIC is not set
# CONFIG_CRYPTO_STREEBOG is not set
# CONFIG_CRYPTO_WP512 is not set
# CONFIG_CRYPTO_XCBC is not set
# CONFIG_CRYPTO_XXHASH is not set
# end of Hashes, digests, and MACs

#
# CRCs (cyclic redundancy checks)
#
# CONFIG_CRYPTO_CRC32C is not set
# CONFIG_CRYPTO_CRC32 is not set
# end of CRCs (cyclic redundancy checks)

#
# Compression
#
CONFIG_CRYPTO_DEFLATE=y
CONFIG_CRYPTO_LZO=y
# CONFIG_CRYPTO_842 is not set
# CONFIG_CRYPTO_LZ4 is not set
# CONFIG_CRYPTO_LZ4HC is not set
# CONFIG_CRYPTO_ZSTD is not set
# end of Compression

#
# Random number generation
#
CONFIG_CRYPTO_DRBG_MENU=y
CONFIG_CRYPTO_DRBG_HMAC=y
# CONFIG_CRYPTO_DRBG_HASH is not set
# CONFIG_CRYPTO_DRBG_CTR is not set
CONFIG_CRYPTO_DRBG=y
CONFIG_CRYPTO_JITTERENTROPY=y
CONFIG_CRYPTO_JITTERENTROPY_MEMORY_BLOCKS=64
CONFIG_CRYPTO_JITTERENTROPY_MEMORY_BLOCKSIZE=32
CONFIG_CRYPTO_JITTERENTROPY_OSR=1
# end of Random number generation

#
# Userspace interface
#
# CONFIG_CRYPTO_USER_API_HASH is not set
# CONFIG_CRYPTO_USER_API_SKCIPHER is not set
# CONFIG_CRYPTO_USER_API_RNG is not set
# CONFIG_CRYPTO_USER_API_AEAD is not set
# end of Userspace interface

#
# Accelerated Cryptographic Algorithms for CPU (x86)
#
# CONFIG_CRYPTO_AES_NI_INTEL is not set
# CONFIG_CRYPTO_BLOWFISH_X86_64 is not set
# CONFIG_CRYPTO_CAMELLIA_X86_64 is not set
# CONFIG_CRYPTO_CAMELLIA_AESNI_AVX_X86_64 is not set
# CONFIG_CRYPTO_CAMELLIA_AESNI_AVX2_X86_64 is not set
# CONFIG_CRYPTO_CAST5_AVX_X86_64 is not set
# CONFIG_CRYPTO_CAST6_AVX_X86_64 is not set
# CONFIG_CRYPTO_DES3_EDE_X86_64 is not set
# CONFIG_CRYPTO_SERPENT_SSE2_X86_64 is not set
# CONFIG_CRYPTO_SERPENT_AVX_X86_64 is not set
# CONFIG_CRYPTO_SERPENT_AVX2_X86_64 is not set
# CONFIG_CRYPTO_SM4_AESNI_AVX_X86_64 is not set
# CONFIG_CRYPTO_SM4_AESNI_AVX2_X86_64 is not set
# CONFIG_CRYPTO_TWOFISH_X86_64 is not set
# CONFIG_CRYPTO_TWOFISH_X86_64_3WAY is not set
# CONFIG_CRYPTO_TWOFISH_AVX_X86_64 is not set
# CONFIG_CRYPTO_ARIA_AESNI_AVX_X86_64 is not set
# CONFIG_CRYPTO_ARIA_AESNI_AVX2_X86_64 is not set
# CONFIG_CRYPTO_ARIA_GFNI_AVX512_X86_64 is not set
# CONFIG_CRYPTO_AEGIS128_AESNI_SSE2 is not set
# CONFIG_CRYPTO_SM3_AVX_X86_64 is not set
# CONFIG_CRYPTO_GHASH_CLMUL_NI_INTEL is not set
# end of Accelerated Cryptographic Algorithms for CPU (x86)

CONFIG_CRYPTO_HW=y
# CONFIG_CRYPTO_DEV_PADLOCK is not set
# CONFIG_CRYPTO_DEV_ATMEL_ECC is not set
# CONFIG_CRYPTO_DEV_ATMEL_SHA204A is not set
CONFIG_CRYPTO_DEV_CCP=y
CONFIG_CRYPTO_DEV_CCP_DD=y
# CONFIG_CRYPTO_DEV_SP_CCP is not set
CONFIG_CRYPTO_DEV_SP_PSP=y
# CONFIG_CRYPTO_DEV_NITROX_CNN55XX is not set
# CONFIG_CRYPTO_DEV_QAT_DH895xCC is not set
# CONFIG_CRYPTO_DEV_QAT_C3XXX is not set
# CONFIG_CRYPTO_DEV_QAT_C62X is not set
# CONFIG_CRYPTO_DEV_QAT_4XXX is not set
# CONFIG_CRYPTO_DEV_QAT_420XX is not set
# CONFIG_CRYPTO_DEV_QAT_6XXX is not set
# CONFIG_CRYPTO_DEV_QAT_DH895xCCVF is not set
# CONFIG_CRYPTO_DEV_QAT_C3XXXVF is not set
# CONFIG_CRYPTO_DEV_QAT_C62XVF is not set
# CONFIG_CRYPTO_DEV_VIRTIO is not set
# CONFIG_CRYPTO_DEV_SAFEXCEL is not set
# CONFIG_CRYPTO_DEV_CCREE is not set
# CONFIG_CRYPTO_DEV_AMLOGIC_GXL is not set
CONFIG_ASYMMETRIC_KEY_TYPE=y
CONFIG_ASYMMETRIC_PUBLIC_KEY_SUBTYPE=y
CONFIG_X509_CERTIFICATE_PARSER=y
# CONFIG_PKCS8_PRIVATE_KEY_PARSER is not set
CONFIG_PKCS7_MESSAGE_PARSER=y
# CONFIG_PKCS7_TEST_KEY is not set
# CONFIG_SIGNED_PE_FILE_VERIFICATION is not set
# CONFIG_FIPS_SIGNATURE_SELFTEST is not set

#
# Certificates for signature checking
#
CONFIG_SYSTEM_TRUSTED_KEYRING=y
CONFIG_SYSTEM_TRUSTED_KEYS=""
# CONFIG_SYSTEM_EXTRA_CERTIFICATE is not set
# CONFIG_SECONDARY_TRUSTED_KEYRING is not set
# CONFIG_SYSTEM_BLACKLIST_KEYRING is not set
CONFIG_OPENSSL_SUPPORTS_ML_DSA=y
# end of Certificates for signature checking

CONFIG_CRYPTO_KRB5=y
# CONFIG_CRYPTO_KRB5_SELFTESTS is not set
CONFIG_BINARY_PRINTF=y

#
# Library routines
#
CONFIG_LINEAR_RANGES=y
# CONFIG_PACKING is not set
CONFIG_BITREVERSE=y
CONFIG_GENERIC_STRNCPY_FROM_USER=y
CONFIG_GENERIC_STRNLEN_USER=y
CONFIG_GENERIC_NET_UTILS=y
# CONFIG_CORDIC is not set
# CONFIG_PRIME_NUMBERS is not set
CONFIG_RATIONAL=y
CONFIG_GENERIC_IOMAP=y
CONFIG_ARCH_USE_CMPXCHG_LOCKREF=y
CONFIG_ARCH_HAS_FAST_MULTIPLIER=y
CONFIG_ARCH_USE_SYM_ANNOTATIONS=y
CONFIG_CRC8=y
CONFIG_CRC16=y
CONFIG_CRC_CCITT=y
CONFIG_CRC_ITU_T=y
CONFIG_CRC_T10DIF=y
CONFIG_CRC_T10DIF_ARCH=y
CONFIG_CRC32=y
CONFIG_CRC32_ARCH=y
CONFIG_CRC_OPTIMIZATIONS=y

#
# Crypto library routines
#
CONFIG_CRYPTO_HASH_INFO=y
CONFIG_CRYPTO_LIB_UTILS=y
CONFIG_CRYPTO_LIB_AES=y
CONFIG_CRYPTO_LIB_AES_ARCH=y
CONFIG_CRYPTO_LIB_ARC4=y
CONFIG_CRYPTO_LIB_GF128MUL=y
CONFIG_CRYPTO_LIB_BLAKE2S_ARCH=y
CONFIG_CRYPTO_LIB_CHACHA=y
CONFIG_CRYPTO_LIB_CHACHA_ARCH=y
CONFIG_CRYPTO_LIB_CURVE25519=y
CONFIG_CRYPTO_LIB_CURVE25519_ARCH=y
CONFIG_CRYPTO_LIB_CURVE25519_GENERIC=y
CONFIG_CRYPTO_LIB_MD5=y
CONFIG_CRYPTO_LIB_POLY1305=y
CONFIG_CRYPTO_LIB_POLY1305_ARCH=y
CONFIG_CRYPTO_LIB_POLY1305_RSIZE=11
CONFIG_CRYPTO_LIB_CHACHA20POLY1305=y
CONFIG_CRYPTO_LIB_SHA1=y
CONFIG_CRYPTO_LIB_SHA1_ARCH=y
CONFIG_CRYPTO_LIB_SHA256=y
CONFIG_CRYPTO_LIB_SHA256_ARCH=y
CONFIG_CRYPTO_LIB_SHA512=y
CONFIG_CRYPTO_LIB_SHA512_ARCH=y
CONFIG_CRYPTO_LIB_SHA3=y
# end of Crypto library routines

CONFIG_XXHASH=y
# CONFIG_RANDOM32_SELFTEST is not set
CONFIG_ZLIB_INFLATE=y
CONFIG_ZLIB_DEFLATE=y
CONFIG_LZO_COMPRESS=y
CONFIG_LZO_DECOMPRESS=y
CONFIG_LZ4_COMPRESS=y
CONFIG_LZ4_DECOMPRESS=y
CONFIG_ZSTD_COMMON=y
CONFIG_ZSTD_DECOMPRESS=y
CONFIG_XZ_DEC=y
CONFIG_XZ_DEC_X86=y
CONFIG_XZ_DEC_POWERPC=y
CONFIG_XZ_DEC_ARM=y
CONFIG_XZ_DEC_ARMTHUMB=y
CONFIG_XZ_DEC_ARM64=y
CONFIG_XZ_DEC_SPARC=y
CONFIG_XZ_DEC_RISCV=y
# CONFIG_XZ_DEC_MICROLZMA is not set
CONFIG_XZ_DEC_BCJ=y
# CONFIG_XZ_DEC_TEST is not set
CONFIG_DECOMPRESS_GZIP=y
CONFIG_DECOMPRESS_BZIP2=y
CONFIG_DECOMPRESS_LZMA=y
CONFIG_DECOMPRESS_XZ=y
CONFIG_DECOMPRESS_LZO=y
CONFIG_DECOMPRESS_LZ4=y
CONFIG_DECOMPRESS_ZSTD=y
CONFIG_GENERIC_ALLOCATOR=y
CONFIG_TEXTSEARCH=y
CONFIG_TEXTSEARCH_KMP=y
CONFIG_TEXTSEARCH_BM=y
CONFIG_TEXTSEARCH_FSM=y
CONFIG_INTERVAL_TREE=y
CONFIG_XARRAY_MULTI=y
CONFIG_ASSOCIATIVE_ARRAY=y
CONFIG_HAS_IOMEM=y
CONFIG_HAS_IOPORT=y
CONFIG_HAS_IOPORT_MAP=y
CONFIG_HAS_DMA=y
CONFIG_DMA_OPS_HELPERS=y
CONFIG_NEED_SG_DMA_FLAGS=y
CONFIG_NEED_SG_DMA_LENGTH=y
CONFIG_NEED_DMA_MAP_STATE=y
CONFIG_ARCH_DMA_ADDR_T_64BIT=y
CONFIG_DMA_DECLARE_COHERENT=y
CONFIG_SWIOTLB=y
# CONFIG_SWIOTLB_DYNAMIC is not set
CONFIG_DMA_NEED_SYNC=y
# CONFIG_DMA_RESTRICTED_POOL is not set
# CONFIG_DMA_API_DEBUG is not set
# CONFIG_DMA_MAP_BENCHMARK is not set
CONFIG_SGL_ALLOC=y
CONFIG_CHECK_SIGNATURE=y
CONFIG_CPU_RMAP=y
CONFIG_DQL=y
CONFIG_GLOB=y
CONFIG_NLATTR=y
CONFIG_CLZ_TAB=y
CONFIG_IRQ_POLL=y
CONFIG_MPILIB=y
CONFIG_DIMLIB=y
CONFIG_LIBFDT=y
CONFIG_OID_REGISTRY=y
CONFIG_HAVE_GENERIC_VDSO=y
CONFIG_GENERIC_GETTIMEOFDAY=y
CONFIG_GENERIC_VDSO_OVERFLOW_PROTECT=y
CONFIG_VDSO_GETRANDOM=y
CONFIG_SG_POOL=y
CONFIG_ARCH_HAS_PMEM_API=y
CONFIG_ARCH_HAS_CPU_CACHE_INVALIDATE_MEMREGION=y
CONFIG_ARCH_HAS_UACCESS_FLUSHCACHE=y
CONFIG_ARCH_HAS_COPY_MC=y
CONFIG_ARCH_STACKWALK=y
CONFIG_STACKDEPOT=y
CONFIG_STACKDEPOT_MAX_FRAMES=64
CONFIG_REF_TRACKER=y
CONFIG_SBITMAP=y
# CONFIG_LWQ_TEST is not set
# end of Library routines

CONFIG_FIRMWARE_TABLE=y
CONFIG_UNION_FIND=y

#
# Kernel hacking
#

#
# printk and dmesg options
#
CONFIG_PRINTK_TIME=y
CONFIG_PRINTK_CALLER=y
# CONFIG_STACKTRACE_BUILD_ID is not set
CONFIG_CONSOLE_LOGLEVEL_DEFAULT=7
CONFIG_CONSOLE_LOGLEVEL_QUIET=4
CONFIG_MESSAGE_LOGLEVEL_DEFAULT=4
# CONFIG_BOOT_PRINTK_DELAY is not set
# CONFIG_DYNAMIC_DEBUG is not set
# CONFIG_DYNAMIC_DEBUG_CORE is not set
CONFIG_SYMBOLIC_ERRNAME=y
CONFIG_DEBUG_BUGVERBOSE=y
# CONFIG_DEBUG_BUGVERBOSE_DETAILED is not set
# end of printk and dmesg options

CONFIG_DEBUG_KERNEL=y
CONFIG_DEBUG_MISC=y

#
# Compile-time checks and compiler options
#
CONFIG_DEBUG_INFO=y
CONFIG_AS_HAS_NON_CONST_ULEB128=y
# CONFIG_DEBUG_INFO_NONE is not set
# CONFIG_DEBUG_INFO_DWARF_TOOLCHAIN_DEFAULT is not set
CONFIG_DEBUG_INFO_DWARF4=y
# CONFIG_DEBUG_INFO_DWARF5 is not set
# CONFIG_DEBUG_INFO_REDUCED is not set
CONFIG_DEBUG_INFO_COMPRESSED_NONE=y
# CONFIG_DEBUG_INFO_COMPRESSED_ZLIB is not set
# CONFIG_DEBUG_INFO_COMPRESSED_ZSTD is not set
# CONFIG_DEBUG_INFO_SPLIT is not set
# CONFIG_DEBUG_INFO_BTF is not set
CONFIG_PAHOLE_HAS_BTF_TAG=y
CONFIG_PAHOLE_HAS_LANG_EXCLUDE=y
# CONFIG_GDB_SCRIPTS is not set
CONFIG_FRAME_WARN=2048
# CONFIG_STRIP_ASM_SYMS is not set
# CONFIG_HEADERS_INSTALL is not set
CONFIG_SECTION_MISMATCH_WARN_ONLY=y
# CONFIG_DEBUG_FORCE_FUNCTION_ALIGN_64B is not set
CONFIG_OBJTOOL=y
# CONFIG_OBJTOOL_WERROR is not set
CONFIG_NOINSTR_VALIDATION=y
# CONFIG_VMLINUX_MAP is not set
# CONFIG_DEBUG_FORCE_WEAK_PER_CPU is not set
# end of Compile-time checks and compiler options

#
# Generic Kernel Debugging Instruments
#
# CONFIG_MAGIC_SYSRQ is not set
CONFIG_DEBUG_FS=y
CONFIG_DEBUG_FS_ALLOW_ALL=y
# CONFIG_DEBUG_FS_ALLOW_NONE is not set
CONFIG_HAVE_ARCH_KGDB=y
# CONFIG_KGDB is not set
CONFIG_ARCH_HAS_UBSAN=y
# CONFIG_UBSAN is not set
CONFIG_HAVE_ARCH_KCSAN=y
CONFIG_HAVE_KCSAN_COMPILER=y
CONFIG_KCSAN=y
CONFIG_CC_HAS_TSAN_COMPOUND_READ_BEFORE_WRITE=y
CONFIG_KCSAN_SELFTEST=y
# CONFIG_KCSAN_EARLY_ENABLE is not set
CONFIG_KCSAN_NUM_WATCHPOINTS=64
CONFIG_KCSAN_UDELAY_TASK=80
CONFIG_KCSAN_UDELAY_INTERRUPT=20
CONFIG_KCSAN_DELAY_RANDOMIZE=y
CONFIG_KCSAN_SKIP_WATCH=4000
CONFIG_KCSAN_SKIP_WATCH_RANDOMIZE=y
# CONFIG_KCSAN_INTERRUPT_WATCHER is not set
CONFIG_KCSAN_REPORT_ONCE_IN_MS=3000
# CONFIG_KCSAN_REPORT_RACE_UNKNOWN_ORIGIN is not set
# CONFIG_KCSAN_STRICT is not set
CONFIG_KCSAN_REPORT_VALUE_CHANGE_ONLY=y
# CONFIG_KCSAN_ASSUME_PLAIN_WRITES_ATOMIC is not set
CONFIG_KCSAN_IGNORE_ATOMICS=y
CONFIG_KCSAN_PERMISSIVE=y
# end of Generic Kernel Debugging Instruments

#
# Networking Debugging
#
CONFIG_NET_DEV_REFCNT_TRACKER=y
CONFIG_NET_NS_REFCNT_TRACKER=y
CONFIG_DEBUG_NET=y
# CONFIG_DEBUG_NET_SMALL_RTNL is not set
# end of Networking Debugging

#
# Memory Debugging
#
# CONFIG_PAGE_EXTENSION is not set
# CONFIG_DEBUG_PAGEALLOC is not set
CONFIG_SLUB_DEBUG=y
# CONFIG_SLUB_DEBUG_ON is not set
# CONFIG_PAGE_OWNER is not set
# CONFIG_PAGE_TABLE_CHECK is not set
# CONFIG_PAGE_POISONING is not set
# CONFIG_DEBUG_PAGE_REF is not set
# CONFIG_DEBUG_RODATA_TEST is not set
CONFIG_ARCH_HAS_DEBUG_WX=y
CONFIG_DEBUG_WX=y
CONFIG_ARCH_HAS_PTDUMP=y
CONFIG_PTDUMP=y
# CONFIG_PTDUMP_DEBUGFS is not set
CONFIG_HAVE_DEBUG_KMEMLEAK=y
# CONFIG_DEBUG_KMEMLEAK is not set
# CONFIG_PER_VMA_LOCK_STATS is not set
# CONFIG_DEBUG_OBJECTS is not set
# CONFIG_SHRINKER_DEBUG is not set
CONFIG_DEBUG_STACK_USAGE=y
CONFIG_SCHED_STACK_END_CHECK=y
CONFIG_ARCH_HAS_DEBUG_VM_PGTABLE=y
# CONFIG_DEBUG_VFS is not set
# CONFIG_DEBUG_VM is not set
# CONFIG_DEBUG_VM_PGTABLE is not set
CONFIG_ARCH_HAS_DEBUG_VIRTUAL=y
# CONFIG_DEBUG_VIRTUAL is not set
CONFIG_DEBUG_MEMORY_INIT=y
# CONFIG_DEBUG_PER_CPU_MAPS is not set
CONFIG_ARCH_SUPPORTS_KMAP_LOCAL_FORCE_MAP=y
# CONFIG_DEBUG_KMAP_LOCAL_FORCE_MAP is not set
# CONFIG_MEM_ALLOC_PROFILING is not set
CONFIG_HAVE_ARCH_KASAN=y
CONFIG_HAVE_ARCH_KASAN_VMALLOC=y
CONFIG_CC_HAS_KASAN_GENERIC=y
CONFIG_CC_HAS_KASAN_SW_TAGS=y
CONFIG_CC_HAS_WORKING_NOSANITIZE_ADDRESS=y
# CONFIG_KASAN is not set
CONFIG_HAVE_ARCH_KFENCE=y
# CONFIG_KFENCE is not set
CONFIG_HAVE_ARCH_KMSAN=y
CONFIG_HAVE_KMSAN_COMPILER=y
# end of Memory Debugging

# CONFIG_DEBUG_SHIRQ is not set

#
# Debug Oops, Lockups and Hangs
#
CONFIG_PANIC_ON_OOPS=y
CONFIG_PANIC_TIMEOUT=86400
# CONFIG_SOFTLOCKUP_DETECTOR is not set
CONFIG_HAVE_HARDLOCKUP_DETECTOR_BUDDY=y
# CONFIG_HARDLOCKUP_DETECTOR is not set
CONFIG_HARDLOCKUP_CHECK_TIMESTAMP=y
# CONFIG_DETECT_HUNG_TASK is not set
# CONFIG_WQ_WATCHDOG is not set
# CONFIG_WQ_CPU_INTENSIVE_REPORT is not set
# CONFIG_TEST_LOCKUP is not set
# end of Debug Oops, Lockups and Hangs

#
# Scheduler Debugging
#
CONFIG_SCHED_INFO=y
CONFIG_SCHEDSTATS=y
# end of Scheduler Debugging

# CONFIG_DEBUG_PREEMPT is not set
# CONFIG_DEBUG_ATOMIC is not set

#
# Lock Debugging (spinlocks, mutexes, etc...)
#
CONFIG_LOCK_DEBUGGING_SUPPORT=y
# CONFIG_PROVE_LOCKING is not set
# CONFIG_LOCK_STAT is not set
# CONFIG_DEBUG_RT_MUTEXES is not set
# CONFIG_DEBUG_SPINLOCK is not set
# CONFIG_DEBUG_MUTEXES is not set
# CONFIG_DEBUG_WW_MUTEX_SLOWPATH is not set
# CONFIG_DEBUG_RWSEMS is not set
# CONFIG_DEBUG_LOCK_ALLOC is not set
# CONFIG_DEBUG_ATOMIC_SLEEP is not set
# CONFIG_DEBUG_LOCKING_API_SELFTESTS is not set
# CONFIG_LOCK_TORTURE_TEST is not set
# CONFIG_WW_MUTEX_SELFTEST is not set
# CONFIG_SCF_TORTURE_TEST is not set
# CONFIG_CSD_LOCK_WAIT_DEBUG is not set
# end of Lock Debugging (spinlocks, mutexes, etc...)

CONFIG_NMI_CHECK_CPU=y
# CONFIG_DEBUG_IRQFLAGS is not set
CONFIG_STACKTRACE=y
# CONFIG_DEBUG_KOBJECT is not set

#
# Debug kernel data structures
#
CONFIG_DEBUG_LIST=y
CONFIG_DEBUG_PLIST=y
# CONFIG_DEBUG_SG is not set
# CONFIG_DEBUG_NOTIFIERS is not set
# CONFIG_DEBUG_MAPLE_TREE is not set
# end of Debug kernel data structures

#
# RCU Debugging
#
# CONFIG_RCU_SCALE_TEST is not set
# CONFIG_RCU_TORTURE_TEST is not set
# CONFIG_RCU_REF_SCALE_TEST is not set
CONFIG_RCU_CPU_STALL_TIMEOUT=100
CONFIG_RCU_EXP_CPU_STALL_TIMEOUT=0
# CONFIG_RCU_CPU_STALL_CPUTIME is not set
# CONFIG_RCU_TRACE is not set
# CONFIG_RCU_EQS_DEBUG is not set
# end of RCU Debugging

# CONFIG_DEBUG_WQ_FORCE_RR_CPU is not set
# CONFIG_CPU_HOTPLUG_STATE_CONTROL is not set
# CONFIG_LATENCYTOP is not set
CONFIG_USER_STACKTRACE_SUPPORT=y
CONFIG_NOP_TRACER=y
CONFIG_HAVE_RETHOOK=y
CONFIG_HAVE_FUNCTION_TRACER=y
CONFIG_HAVE_DYNAMIC_FTRACE=y
CONFIG_HAVE_DYNAMIC_FTRACE_WITH_REGS=y
CONFIG_HAVE_DYNAMIC_FTRACE_WITH_DIRECT_CALLS=y
CONFIG_HAVE_DYNAMIC_FTRACE_WITH_ARGS=y
CONFIG_HAVE_FTRACE_REGS_HAVING_PT_REGS=y
CONFIG_HAVE_DYNAMIC_FTRACE_NO_PATCHABLE=y
CONFIG_HAVE_DYNAMIC_FTRACE_WITH_JMP=y
CONFIG_HAVE_SYSCALL_TRACEPOINTS=y
CONFIG_HAVE_FENTRY=y
CONFIG_HAVE_OBJTOOL_MCOUNT=y
CONFIG_HAVE_OBJTOOL_NOP_MCOUNT=y
CONFIG_HAVE_C_RECORDMCOUNT=y
CONFIG_HAVE_BUILDTIME_MCOUNT_SORT=y
CONFIG_TRACE_CLOCK=y
CONFIG_RING_BUFFER=y
CONFIG_EVENT_TRACING=y
CONFIG_CONTEXT_SWITCH_TRACER=y
CONFIG_TRACING=y
CONFIG_GENERIC_TRACER=y
CONFIG_TRACING_SUPPORT=y
CONFIG_FTRACE=y
CONFIG_TRACEFS_AUTOMOUNT_DEPRECATED=y
# CONFIG_BOOTTIME_TRACING is not set
# CONFIG_FUNCTION_TRACER is not set
# CONFIG_STACK_TRACER is not set
# CONFIG_IRQSOFF_TRACER is not set
# CONFIG_PREEMPT_TRACER is not set
# CONFIG_SCHED_TRACER is not set
# CONFIG_HWLAT_TRACER is not set
# CONFIG_OSNOISE_TRACER is not set
# CONFIG_TIMERLAT_TRACER is not set
# CONFIG_MMIOTRACE is not set
# CONFIG_FTRACE_SYSCALLS is not set
# CONFIG_TRACER_SNAPSHOT is not set
CONFIG_BRANCH_PROFILE_NONE=y
# CONFIG_PROFILE_ANNOTATED_BRANCHES is not set
CONFIG_BLK_DEV_IO_TRACE=y
CONFIG_UPROBE_EVENTS=y
CONFIG_EPROBE_EVENTS=y
CONFIG_BPF_EVENTS=y
CONFIG_DYNAMIC_EVENTS=y
CONFIG_PROBE_EVENTS=y
# CONFIG_SYNTH_EVENTS is not set
# CONFIG_USER_EVENTS is not set
# CONFIG_HIST_TRIGGERS is not set
CONFIG_TRACE_EVENT_INJECT=y
# CONFIG_TRACEPOINT_BENCHMARK is not set
# CONFIG_RING_BUFFER_BENCHMARK is not set
# CONFIG_TRACE_EVAL_MAP_FILE is not set
# CONFIG_FTRACE_STARTUP_TEST is not set
# CONFIG_RING_BUFFER_STARTUP_TEST is not set
# CONFIG_RING_BUFFER_VALIDATE_TIME_DELTAS is not set
# CONFIG_PREEMPTIRQ_DELAY_TEST is not set
# CONFIG_RV is not set
CONFIG_PROVIDE_OHCI1394_DMA_INIT=y
# CONFIG_SAMPLES is not set
CONFIG_HAVE_SAMPLE_FTRACE_DIRECT=y
CONFIG_HAVE_SAMPLE_FTRACE_DIRECT_MULTI=y
CONFIG_ARCH_HAS_DEVMEM_IS_ALLOWED=y
# CONFIG_STRICT_DEVMEM is not set

#
# x86 Debugging
#
CONFIG_EARLY_PRINTK_USB=y
CONFIG_X86_VERBOSE_BOOTUP=y
CONFIG_EARLY_PRINTK=y
CONFIG_EARLY_PRINTK_DBGP=y
# CONFIG_EARLY_PRINTK_USB_XDBC is not set
# CONFIG_DEBUG_TLBFLUSH is not set
CONFIG_HAVE_MMIOTRACE_SUPPORT=y
# CONFIG_X86_DECODER_SELFTEST is not set
CONFIG_IO_DELAY_0X80=y
# CONFIG_IO_DELAY_0XED is not set
# CONFIG_IO_DELAY_UDELAY is not set
# CONFIG_IO_DELAY_NONE is not set
CONFIG_DEBUG_BOOT_PARAMS=y
# CONFIG_CPA_DEBUG is not set
CONFIG_DEBUG_ENTRY=y
# CONFIG_DEBUG_NMI_SELFTEST is not set
CONFIG_X86_DEBUG_FPU=y
# CONFIG_PUNIT_ATOM_DEBUG is not set
CONFIG_UNWINDER_ORC=y
# CONFIG_UNWINDER_FRAME_POINTER is not set
# end of x86 Debugging

#
# Kernel Testing and Coverage
#
# CONFIG_KUNIT is not set
# CONFIG_NOTIFIER_ERROR_INJECTION is not set
CONFIG_FAULT_INJECTION=y
CONFIG_FAILSLAB=y
CONFIG_FAIL_PAGE_ALLOC=y
CONFIG_FAULT_INJECTION_USERCOPY=y
CONFIG_FAIL_MAKE_REQUEST=y
CONFIG_FAIL_IO_TIMEOUT=y
CONFIG_FAIL_FUTEX=y
CONFIG_FAULT_INJECTION_DEBUG_FS=y
# CONFIG_FAIL_MMC_REQUEST is not set
# CONFIG_FAIL_SKB_REALLOC is not set
CONFIG_FAULT_INJECTION_CONFIGFS=y
# CONFIG_FAULT_INJECTION_STACKTRACE_FILTER is not set
CONFIG_ARCH_HAS_KCOV=y
CONFIG_KCOV=y
CONFIG_KCOV_ENABLE_COMPARISONS=y
CONFIG_KCOV_INSTRUMENT_ALL=y
CONFIG_KCOV_IRQ_AREA_SIZE=0x40000
# CONFIG_KCOV_SELFTEST is not set
CONFIG_RUNTIME_TESTING_MENU=y
# CONFIG_TEST_DHRY is not set
# CONFIG_LKDTM is not set
# CONFIG_TEST_DIV64 is not set
# CONFIG_TEST_MULDIV64 is not set
# CONFIG_BACKTRACE_SELF_TEST is not set
# CONFIG_TEST_REF_TRACKER is not set
# CONFIG_RBTREE_TEST is not set
# CONFIG_REED_SOLOMON_TEST is not set
# CONFIG_INTERVAL_TREE_TEST is not set
# CONFIG_PERCPU_TEST is not set
# CONFIG_ATOMIC64_SELFTEST is not set
# CONFIG_TEST_HEXDUMP is not set
# CONFIG_TEST_KSTRTOX is not set
# CONFIG_TEST_BITMAP is not set
# CONFIG_TEST_XARRAY is not set
# CONFIG_TEST_MAPLE_TREE is not set
# CONFIG_TEST_RHASHTABLE is not set
# CONFIG_TEST_IDA is not set
# CONFIG_TEST_LKM is not set
# CONFIG_TEST_BITOPS is not set
# CONFIG_TEST_VMALLOC is not set
# CONFIG_TEST_BPF is not set
# CONFIG_FIND_BIT_BENCHMARK is not set
# CONFIG_TEST_FIRMWARE is not set
# CONFIG_TEST_SYSCTL is not set
# CONFIG_CONTEXT_ANALYSIS_TEST is not set
# CONFIG_TEST_UDELAY is not set
# CONFIG_TEST_STATIC_KEYS is not set
# CONFIG_TEST_KMOD is not set
# CONFIG_TEST_KALLSYMS is not set
# CONFIG_TEST_MEMCAT_P is not set
# CONFIG_TEST_MEMINIT is not set
# CONFIG_TEST_FREE_PAGES is not set
# CONFIG_TEST_CLOCKSOURCE_WATCHDOG is not set
# CONFIG_TEST_OBJPOOL is not set
CONFIG_ARCH_USE_MEMTEST=y
# CONFIG_MEMTEST is not set
# end of Kernel Testing and Coverage

#
# Rust hacking
#
# end of Rust hacking
# end of Kernel hacking

CONFIG_IO_URING_ZCRX=y
CONFIG_IO_URING_BPF=y
KernelRepo git://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
ReproCID 0
ReproOpts
ReproSyzID 0
SyzkallerCommit 96b1aa466362406b5ead3fd3ca8ac4f535b539c1

Outputs:
Benign
Confident
Explanation
The data race occurs on the `pool->nr_running` field in `struct worker_pool` between `wq_worker_running()` and `kick_pool()` (which calls `need_more_worker()`).

### Analysis

1.  **Access Patterns**:
    *   **`wq_worker_running()`**: Increments `pool->nr_running` when a worker task wakes up. This is called from the scheduler on the CPU associated with the pool. It disables preemption but does **not** hold `pool->lock`.
    *   **`kick_pool()`**: Reads `pool->nr_running` (via `need_more_worker()`) to determine if an idle worker should be woken up. It holds `pool->lock`.

2.  **Synchronization Design**:
    The `workqueue.c` source code contains a comment explicitly describing the synchronization for `nr_running`:
    ```c
    /*
     * The counter is incremented in a process context on the associated CPU
     * w/ preemption disabled, and decremented or reset in the same context
     * but w/ pool->lock held. The readers grab pool->lock and are
     * guaranteed to see if the counter reached zero.
     */
    int nr_running;
    ```
    This confirms that the lack of a lock during increment is intentional.

3.  **Safety of the Race**:
    *   **Writer Serialization**: All modifications to `nr_running` for a per-CPU pool occur on the local CPU. `wq_worker_running()` (increment) and `wq_worker_sleeping()` (decrement) are both called from the scheduler on the pool's CPU. Since they are serialized on that CPU, there is no risk of lost updates or corruption from multiple concurrent writers.
    *   **Reader Consistency**: `kick_pool()` can be called from a remote CPU while holding `pool->lock`. If it races with an increment in `wq_worker_running()`, it might see the value `0` before the increment or `1` after.
        *   If it sees `0` (stale), it might wake up an additional worker. This results in a redundant wakeup, which is harmless as the workqueue's concurrency management will eventually put the extra worker back to sleep.
        *   If it sees `1` (up-to-date), it correctly identifies that a worker is already active and does nothing.
    *   **Idle Detection**: The transition to `0` (when the last worker sleeps) is performed in `wq_worker_sleeping()` while holding `pool->lock`. Therefore, any reader holding `pool->lock` is guaranteed to see the `0` value if the pool has actually become idle, ensuring that work items don't stall.

### Conclusion
The data race is a known part of the workqueue's concurrency management design. It allows for high-performance wakeups by avoiding lock contention in the scheduler hot path, while accepting the possibility of rare, harmless redundant wakeups.

**Verdict**: Benign

Crash report:
==================================================================
BUG: KCSAN: data-race in kick_pool / wq_worker_running

read-write to 0xffff888237c2a8a4 of 4 bytes by task 13651 on cpu 0:
 wq_worker_running+0x95/0x120 kernel/workqueue.c:1419
 synchronize_rcu_expedited+0x5f8/0x770 kernel/rcu/tree_exp.h:976
 synchronize_rcu+0x35/0x2e0 kernel/rcu/tree.c:3360
 srcu_readers_active_idx_check kernel/rcu/srcutree.c:569 [inline]
 try_check_zero+0x182/0x260 kernel/rcu/srcutree.c:1180
 srcu_advance_state kernel/rcu/srcutree.c:1870 [inline]
 process_srcu+0xd5/0xdc0 kernel/rcu/srcutree.c:1997
 process_one_work kernel/workqueue.c:3275 [inline]
 process_scheduled_works+0x4de/0x9e0 kernel/workqueue.c:3358
 worker_thread+0x581/0x770 kernel/workqueue.c:3439
 kthread+0x22a/0x280 kernel/kthread.c:467
 ret_from_fork+0x150/0x360 arch/x86/kernel/process.c:158
 ret_from_fork_asm+0x1a/0x30 arch/x86/entry/entry_64.S:245

read to 0xffff888237c2a8a4 of 4 bytes by task 11146 on cpu 1:
 need_more_worker kernel/workqueue.c:937 [inline]
 kick_pool+0x49/0x2d0 kernel/workqueue.c:1259
 __queue_work+0x896/0xaf0 kernel/workqueue.c:2355
 queue_work_on+0xa9/0x140 kernel/workqueue.c:2405
 srcu_queue_delayed_work_on kernel/rcu/srcutree.c:901 [inline]
 srcu_schedule_cbs_sdp kernel/rcu/srcutree.c:914 [inline]
 srcu_gp_end kernel/rcu/srcutree.c:981 [inline]
 srcu_advance_state kernel/rcu/srcutree.c:1893 [inline]
 process_srcu+0xa56/0xdc0 kernel/rcu/srcutree.c:1997
 process_one_work kernel/workqueue.c:3275 [inline]
 process_scheduled_works+0x4de/0x9e0 kernel/workqueue.c:3358
 worker_thread+0x581/0x770 kernel/workqueue.c:3439
 kthread+0x22a/0x280 kernel/kthread.c:467
 ret_from_fork+0x150/0x360 arch/x86/kernel/process.c:158
 ret_from_fork_asm+0x1a/0x30 arch/x86/entry/entry_64.S:245

value changed: 0x00000000 -> 0x00000001

Reported by Kernel Concurrency Sanitizer on:
CPU: 1 UID: 0 PID: 11146 Comm: kworker/1:8 Tainted: G        W           syzkaller #0 PREEMPT(full) 
Tainted: [W]=WARN
Hardware name: Google Google Compute Engine/Google Compute Engine, BIOS Google 02/12/2026
Workqueue: rcu_gp process_srcu
==================================================================

Trajectory: (Expand/Collapse All)
Seq Timestamp Type Name Duration
0/0 2026/02/24 19:11 flow assessment-kcsan
3m Results:
map[Benign:true Confident:true Explanation:The data race occurs on the `pool->nr_running` field in `struct worker_pool` between `wq_worker_running()` and `kick_pool()` (which calls `need_more_worker()`).

### Analysis

1.  **Access Patterns**:
    *   **`wq_worker_running()`**: Increments `pool->nr_running` when a worker task wakes up. This is called from the scheduler on the CPU associated with the pool. It disables preemption but does **not** hold `pool->lock`.
    *   **`kick_pool()`**: Reads `pool->nr_running` (via `need_more_worker()`) to determine if an idle worker should be woken up. It holds `pool->lock`.

2.  **Synchronization Design**:
    The `workqueue.c` source code contains a comment explicitly describing the synchronization for `nr_running`:
    ```c
    /*
     * The counter is incremented in a process context on the associated CPU
     * w/ preemption disabled, and decremented or reset in the same context
     * but w/ pool->lock held. The readers grab pool->lock and are
     * guaranteed to see if the counter reached zero.
     */
    int nr_running;
    ```
    This confirms that the lack of a lock during increment is intentional.

3.  **Safety of the Race**:
    *   **Writer Serialization**: All modifications to `nr_running` for a per-CPU pool occur on the local CPU. `wq_worker_running()` (increment) and `wq_worker_sleeping()` (decrement) are both called from the scheduler on the pool's CPU. Since they are serialized on that CPU, there is no risk of lost updates or corruption from multiple concurrent writers.
    *   **Reader Consistency**: `kick_pool()` can be called from a remote CPU while holding `pool->lock`. If it races with an increment in `wq_worker_running()`, it might see the value `0` before the increment or `1` after.
        *   If it sees `0` (stale), it might wake up an additional worker. This results in a redundant wakeup, which is harmless as the workqueue's concurrency management will eventually put the extra worker back to sleep.
        *   If it sees `1` (up-to-date), it correctly identifies that a worker is already active and does nothing.
    *   **Idle Detection**: The transition to `0` (when the last worker sleeps) is performed in `wq_worker_sleeping()` while holding `pool->lock`. Therefore, any reader holding `pool->lock` is guaranteed to see the `0` value if the pool has actually become idle, ensuring that work items don't stall.

### Conclusion
The data race is a known part of the workqueue's concurrency management design. It allows for high-performance wakeups by avoiding lock contention in the scheduler hot path, while accepting the possibility of rare, harmless redundant wakeups.

**Verdict**: Benign]

1/1 2026/02/24 19:11 action kernel-checkouter
0m Results:
map[KernelSrc:/usr/local/google/home/dvyukov/syzkaller/agent/workdir/cache/src/83e3e4073a4cd51a6ced0f93cc08b3f6ffb54f19]

2/1 2026/02/24 19:11 action kernel-builder
0m Results:
map[KernelObj:/usr/local/google/home/dvyukov/syzkaller/agent/workdir/cache/build/b54bee6631687294095c3f2df1d84662f988232e]

3/1 2026/02/24 19:11 action codesearch-prepare
0m Results:
map[Index:codesearch-index]

4/1 2026/02/24 19:11 agent expert
3m Model:
gemini-3-flash-preview

Results:
map[Benign:true Confident:true]

Instruction:
You are an experienced Linux kernel developer tasked with determining if the given kernel
data race is benign or not. The data race report is from KCSAN tool.
It contains 2 stack traces of the memory accesses that constitute a data race.

A "benign" data races are on a simple int/bool variable or similar field,
and the accesses are not supposed to be protected by any mutual exclusion primitives.
Common examples of such "benign" data races are accesses to various flags fields,
statistics counters, and similar. A "benign" data race does not lead to memory corruption/crash
with a conservative compiler that compiles memory accesses to primitive types
effectively as atomic.

A non-benign (or "harmful" data race) can lead to corruption/crash even with
a conservative compiler that compiles memory accesses to primitive types
effectively as atomic. A common example of a "harmful" data races is race on
a complex container (list/hashmap/etc), where accesses are supposed to be protected
by a mutual exclusion primitive.

Also consider races that happen at the same time with the given one.
If there is no synchronization in between, other memory accesses in the involved threads
race with each other if they access the same memory. For example, if both threads execute:

	some_struct->have_elements = true;
	list_add(new_node, &some_struct->list_head);

the race on some_struct->have_elements may appear benign, however it also implies there
is a race on some_struct->list_head which is not benign, since the list is not thread-safe.

Take into account that on 32-bit systems 64-bit memory accesses may be split into two accesses,
and thus even with a conservative compiler may not be fully atomic. However, such races may
still be benign depending on how writes are done, and how read data is used.

In the final reply explain why you think the given data race is benign or is harmful.

Use the provided tools to confirm any assumptions, variables/fields being accessed, etc.
In particular, don't make assumptions about the kernel source code,
use codesearch tools to read the actual source code.

Prefer calling several tools at the same time to save round-trips.


Use set-results tool to provide results of the analysis.
It must be called exactly once before the final reply.
Ignore results of this tool.

Prompt:
The data race report is:

==================================================================
BUG: KCSAN: data-race in kick_pool / wq_worker_running

read-write to 0xffff888237c2a8a4 of 4 bytes by task 13651 on cpu 0:
 wq_worker_running+0x95/0x120 kernel/workqueue.c:1419
 synchronize_rcu_expedited+0x5f8/0x770 kernel/rcu/tree_exp.h:976
 synchronize_rcu+0x35/0x2e0 kernel/rcu/tree.c:3360
 srcu_readers_active_idx_check kernel/rcu/srcutree.c:569 [inline]
 try_check_zero+0x182/0x260 kernel/rcu/srcutree.c:1180
 srcu_advance_state kernel/rcu/srcutree.c:1870 [inline]
 process_srcu+0xd5/0xdc0 kernel/rcu/srcutree.c:1997
 process_one_work kernel/workqueue.c:3275 [inline]
 process_scheduled_works+0x4de/0x9e0 kernel/workqueue.c:3358
 worker_thread+0x581/0x770 kernel/workqueue.c:3439
 kthread+0x22a/0x280 kernel/kthread.c:467
 ret_from_fork+0x150/0x360 arch/x86/kernel/process.c:158
 ret_from_fork_asm+0x1a/0x30 arch/x86/entry/entry_64.S:245

read to 0xffff888237c2a8a4 of 4 bytes by task 11146 on cpu 1:
 need_more_worker kernel/workqueue.c:937 [inline]
 kick_pool+0x49/0x2d0 kernel/workqueue.c:1259
 __queue_work+0x896/0xaf0 kernel/workqueue.c:2355
 queue_work_on+0xa9/0x140 kernel/workqueue.c:2405
 srcu_queue_delayed_work_on kernel/rcu/srcutree.c:901 [inline]
 srcu_schedule_cbs_sdp kernel/rcu/srcutree.c:914 [inline]
 srcu_gp_end kernel/rcu/srcutree.c:981 [inline]
 srcu_advance_state kernel/rcu/srcutree.c:1893 [inline]
 process_srcu+0xa56/0xdc0 kernel/rcu/srcutree.c:1997
 process_one_work kernel/workqueue.c:3275 [inline]
 process_scheduled_works+0x4de/0x9e0 kernel/workqueue.c:3358
 worker_thread+0x581/0x770 kernel/workqueue.c:3439
 kthread+0x22a/0x280 kernel/kthread.c:467
 ret_from_fork+0x150/0x360 arch/x86/kernel/process.c:158
 ret_from_fork_asm+0x1a/0x30 arch/x86/entry/entry_64.S:245

value changed: 0x00000000 -> 0x00000001

Reported by Kernel Concurrency Sanitizer on:
CPU: 1 UID: 0 PID: 11146 Comm: kworker/1:8 Tainted: G        W           syzkaller #0 PREEMPT(full) 
Tainted: [W]=WARN
Hardware name: Google Google Compute Engine/Google Compute Engine, BIOS Google 02/12/2026
Workqueue: rcu_gp process_srcu
==================================================================


Reply:
The data race occurs on the `pool->nr_running` field in `struct worker_pool` between `wq_worker_running()` and `kick_pool()` (which calls `need_more_worker()`).

### Analysis

1.  **Access Patterns**:
    *   **`wq_worker_running()`**: Increments `pool->nr_running` when a worker task wakes up. This is called from the scheduler on the CPU associated with the pool. It disables preemption but does **not** hold `pool->lock`.
    *   **`kick_pool()`**: Reads `pool->nr_running` (via `need_more_worker()`) to determine if an idle worker should be woken up. It holds `pool->lock`.

2.  **Synchronization Design**:
    The `workqueue.c` source code contains a comment explicitly describing the synchronization for `nr_running`:
    ```c
    /*
     * The counter is incremented in a process context on the associated CPU
     * w/ preemption disabled, and decremented or reset in the same context
     * but w/ pool->lock held. The readers grab pool->lock and are
     * guaranteed to see if the counter reached zero.
     */
    int nr_running;
    ```
    This confirms that the lack of a lock during increment is intentional.

3.  **Safety of the Race**:
    *   **Writer Serialization**: All modifications to `nr_running` for a per-CPU pool occur on the local CPU. `wq_worker_running()` (increment) and `wq_worker_sleeping()` (decrement) are both called from the scheduler on the pool's CPU. Since they are serialized on that CPU, there is no risk of lost updates or corruption from multiple concurrent writers.
    *   **Reader Consistency**: `kick_pool()` can be called from a remote CPU while holding `pool->lock`. If it races with an increment in `wq_worker_running()`, it might see the value `0` before the increment or `1` after.
        *   If it sees `0` (stale), it might wake up an additional worker. This results in a redundant wakeup, which is harmless as the workqueue's concurrency management will eventually put the extra worker back to sleep.
        *   If it sees `1` (up-to-date), it correctly identifies that a worker is already active and does nothing.
    *   **Idle Detection**: The transition to `0` (when the last worker sleeps) is performed in `wq_worker_sleeping()` while holding `pool->lock`. Therefore, any reader holding `pool->lock` is guaranteed to see the `0` value if the pool has actually become idle, ensuring that work items don't stall.

### Conclusion
The data race is a known part of the workqueue's concurrency management design. It allows for high-performance wakeups by avoiding lock contention in the scheduler hot path, while accepting the possibility of rare, harmless redundant wakeups.

**Verdict**: Benign

5/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 4075
							output: 118
							thoughts: 162
						

Thoughts:
**Analyzing a Data Race in the Workqueue Implementation**

Okay, so the report flags a potential data race within `kernel/workqueue.c`, specifically involving `wq_worker_running` and `kick_pool`. I need to dig into this. The key issue appears to be a concurrent read-write situation, which is always a red flag. Let's break down the evidence.

From what I can tell, Task 13651 is doing a read-write operation on `wq_worker_running` at line 1419. This is where things could go sideways. Then, Task 11146, in a separate context, is attempting a read operation on the same variable, but is doing so via the `kick_pool` function, specifically at line 1259 within the workqueue code. From a quick glance at the stack trace, the read access appears to be triggered from within the `need_more_worker` inline function at line 937.

Clearly, I need to zoom in on those specific code segments to see *how* these accesses are occurring and under what conditions. The report is pointing directly at lines 1419, 937, and 1259, which is a good starting point. I need to understand the logic flow, specifically how the writes in `wq_worker_running` might intersect with the reads from `kick_pool` and `need_more_worker`. I'm guessing this involves worker thread management and work item scheduling, which makes sense given the context of the workqueue. Let's see if this is an actual bug or just a misleading alert.



6/2 2026/02/24 19:11 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:wq_worker_running]

Results:
map[SourceCode:1398:	/**
1399:	 * wq_worker_running - a worker is running again
1400:	 * @task: task waking up
1401:	 *
1402:	 * This function is called when a worker returns from schedule()
1403:	 */
1404:	void wq_worker_running(struct task_struct *task)
1405:	{
1406:		struct worker *worker = kthread_data(task);
1407:	
1408:		if (!READ_ONCE(worker->sleeping))
1409:			return;
1410:	
1411:		/*
1412:		 * If preempted by unbind_workers() between the WORKER_NOT_RUNNING check
1413:		 * and the nr_running increment below, we may ruin the nr_running reset
1414:		 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
1415:		 * pool. Protect against such race.
1416:		 */
1417:		preempt_disable();
1418:		if (!(worker->flags & WORKER_NOT_RUNNING))
1419:			worker->pool->nr_running++;
1420:		preempt_enable();
1421:	
1422:		/*
1423:		 * CPU intensive auto-detection cares about how long a work item hogged
1424:		 * CPU without sleeping. Reset the starting timestamp on wakeup.
1425:		 */
1426:		worker->current_at = worker->task->se.sum_exec_runtime;
1427:	
1428:		WRITE_ONCE(worker->sleeping, 0);
1429:	}
 SourceFile:kernel/workqueue.c]

7/2 2026/02/24 19:11 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:kick_pool]

Results:
map[SourceCode:1245:	/**
1246:	 * kick_pool - wake up an idle worker if necessary
1247:	 * @pool: pool to kick
1248:	 *
1249:	 * @pool may have pending work items. Wake up worker if necessary. Returns
1250:	 * whether a worker was woken up.
1251:	 */
1252:	static bool kick_pool(struct worker_pool *pool)
1253:	{
1254:		struct worker *worker = first_idle_worker(pool);
1255:		struct task_struct *p;
1256:	
1257:		lockdep_assert_held(&pool->lock);
1258:	
1259:		if (!need_more_worker(pool) || !worker)
1260:			return false;
1261:	
1262:		if (pool->flags & POOL_BH) {
1263:			kick_bh_pool(pool);
1264:			return true;
1265:		}
1266:	
1267:		p = worker->task;
1268:	
1269:	#ifdef CONFIG_SMP
1270:		/*
1271:		 * Idle @worker is about to execute @work and waking up provides an
1272:		 * opportunity to migrate @worker at a lower cost by setting the task's
1273:		 * wake_cpu field. Let's see if we want to move @worker to improve
1274:		 * execution locality.
1275:		 *
1276:		 * We're waking the worker that went idle the latest and there's some
1277:		 * chance that @worker is marked idle but hasn't gone off CPU yet. If
1278:		 * so, setting the wake_cpu won't do anything. As this is a best-effort
1279:		 * optimization and the race window is narrow, let's leave as-is for
1280:		 * now. If this becomes pronounced, we can skip over workers which are
1281:		 * still on cpu when picking an idle worker.
1282:		 *
1283:		 * If @pool has non-strict affinity, @worker might have ended up outside
1284:		 * its affinity scope. Repatriate.
1285:		 */
1286:		if (!pool->attrs->affn_strict &&
1287:		    !cpumask_test_cpu(p->wake_cpu, pool->attrs->__pod_cpumask)) {
1288:			struct work_struct *work = list_first_entry(&pool->worklist,
1289:							struct work_struct, entry);
1290:			int wake_cpu = cpumask_any_and_distribute(pool->attrs->__pod_cpumask,
1291:								  cpu_online_mask);
1292:			if (wake_cpu < nr_cpu_ids) {
1293:				p->wake_cpu = wake_cpu;
1294:				get_work_pwq(work)->stats[PWQ_STAT_REPATRIATED]++;
1295:			}
1296:		}
1297:	#endif
1298:		wake_up_process(p);
1299:		return true;
1300:	}
 SourceFile:kernel/workqueue.c]

8/2 2026/02/24 19:11 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:need_more_worker]

Results:
map[SourceCode: 927:	/*
 928:	 * Need to wake up a worker?  Called from anything but currently
 929:	 * running workers.
 930:	 *
 931:	 * Note that, because unbound workers never contribute to nr_running, this
 932:	 * function will always return %true for unbound pools as long as the
 933:	 * worklist isn't empty.
 934:	 */
 935:	static bool need_more_worker(struct worker_pool *pool)
 936:	{
 937:		return !list_empty(&pool->worklist) && !pool->nr_running;
 938:	}
 SourceFile:kernel/workqueue.c]

9/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 6299
							output: 25
							thoughts: 562
						

Thoughts:
**Analyzing a Data Race in the Workqueue Implementation**

Okay, so I'm looking at this reported data race involving `pool->nr_running` within the kernel's workqueue mechanism. It seems the core issue is a read-modify-write operation on this counter. Specifically, `wq_worker_running` is incrementing `pool->nr_running`, and `need_more_worker` (called by `kick_pool`) is reading it to determine if more workers are needed.

The report clearly pinpoints the problem: we have a write (increment) to `0xffff888237c2a8a4` by task 13651 at `wq_worker_running+0x95/0x120` (line 1419) – which is exactly where I'd expect it, the `worker->pool->nr_running++` line. And a read from the *same* memory location by task 11146 at `kick_pool` (which calls `need_more_worker`, and is inlined).  The crucial detail is that `kick_pool` *does* hold `pool->lock`, but `wq_worker_running` *doesn't*. It's only disabling preemption.

Initially, I thought `wq_worker_running` might be called from `worker_thread` and therefore protected. However, the stack trace from the report shows something entirely different: `synchronize_rcu_expedited` calls `wq_worker_running`. That's unexpected.  Normally, `wq_worker_running` is triggered by the scheduler when a worker wakes up.  So, `synchronize_rcu_expedited` is the culprit. I need to look closer at `kernel/rcu/tree_exp.h:976`. I need to figure out how `synchronize_rcu_expedited` ends up incrementing `nr_running`. Something is clearly wrong here because RCU is supposed to be about read-side protection.



10/2 2026/02/24 19:11 tool read-file
0m Args:
map[File:kernel/rcu/tree_exp.h]

Results:
map[Contents:/* SPDX-License-Identifier: GPL-2.0+ */
/*
 * RCU expedited grace periods
 *
 * Copyright IBM Corporation, 2016
 *
 * Authors: Paul E. McKenney <paulmck@linux.ibm.com>
 */

#include <linux/console.h>
#include <linux/lockdep.h>

static void rcu_exp_handler(void *unused);
static int rcu_print_task_exp_stall(struct rcu_node *rnp);
static void rcu_exp_print_detail_task_stall_rnp(struct rcu_node *rnp);

/*
 * Record the start of an expedited grace period.
 */
static void rcu_exp_gp_seq_start(void)
{
	rcu_seq_start(&rcu_state.expedited_sequence);
	rcu_poll_gp_seq_start_unlocked(&rcu_state.gp_seq_polled_exp_snap);
}

/*
 * Return the value that the expedited-grace-period counter will have
 * at the end of the current grace period.
 */
static __maybe_unused unsigned long rcu_exp_gp_seq_endval(void)
{
	return rcu_seq_endval(&rcu_state.expedited_sequence);
}

/*
 * Record the end of an expedited grace period.
 */
static void rcu_exp_gp_seq_end(void)
{
	rcu_poll_gp_seq_end_unlocked(&rcu_state.gp_seq_polled_exp_snap);
	rcu_seq_end(&rcu_state.expedited_sequence);
	smp_mb(); /* Ensure that consecutive grace periods serialize. */
}

/*
 * Take a snapshot of the expedited-grace-period counter, which is the
 * earliest value that will indicate that a full grace period has
 * elapsed since the current time.
 */
static unsigned long rcu_exp_gp_seq_snap(void)
{
	unsigned long s;

	smp_mb(); /* Caller's modifications seen first by other CPUs. */
	s = rcu_seq_snap(&rcu_state.expedited_sequence);
	trace_rcu_exp_grace_period(rcu_state.name, s, TPS("snap"));
	return s;
}

/*
 * Given a counter snapshot from rcu_exp_gp_seq_snap(), return true
 * if a full expedited grace period has elapsed since that snapshot
 * was taken.
 */
static bool rcu_exp_gp_seq_done(unsigned long s)
{
	return rcu_seq_done(&rcu_state.expedited_sequence, s);
}

/*
 * Reset the ->expmaskinit values in the rcu_node tree to reflect any
 * recent CPU-online activity.  Note that these masks are not cleared
 * when CPUs go offline, so they reflect the union of all CPUs that have
 * ever been online.  This means that this function normally takes its
 * no-work-to-do fastpath.
 */
static void sync_exp_reset_tree_hotplug(void)
{
	bool done;
	unsigned long flags;
	unsigned long mask;
	unsigned long oldmask;
	int ncpus = smp_load_acquire(&rcu_state.ncpus); /* Order vs. locking. */
	struct rcu_node *rnp;
	struct rcu_node *rnp_up;

	/* If no new CPUs onlined since last time, nothing to do. */
	if (likely(ncpus == rcu_state.ncpus_snap))
		return;
	rcu_state.ncpus_snap = ncpus;

	/*
	 * Each pass through the following loop propagates newly onlined
	 * CPUs for the current rcu_node structure up the rcu_node tree.
	 */
	rcu_for_each_leaf_node(rnp) {
		raw_spin_lock_irqsave_rcu_node(rnp, flags);
		if (rnp->expmaskinit == rnp->expmaskinitnext) {
			raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
			continue;  /* No new CPUs, nothing to do. */
		}

		/* Update this node's mask, track old value for propagation. */
		oldmask = rnp->expmaskinit;
		rnp->expmaskinit = rnp->expmaskinitnext;
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);

		/* If was already nonzero, nothing to propagate. */
		if (oldmask)
			continue;

		/* Propagate the new CPU up the tree. */
		mask = rnp->grpmask;
		rnp_up = rnp->parent;
		done = false;
		while (rnp_up) {
			raw_spin_lock_irqsave_rcu_node(rnp_up, flags);
			if (rnp_up->expmaskinit)
				done = true;
			rnp_up->expmaskinit |= mask;
			raw_spin_unlock_irqrestore_rcu_node(rnp_up, flags);
			if (done)
				break;
			mask = rnp_up->grpmask;
			rnp_up = rnp_up->parent;
		}
	}
}

/*
 * Reset the ->expmask values in the rcu_node tree in preparation for
 * a new expedited grace period.
 */
static void __maybe_unused sync_exp_reset_tree(void)
{
	unsigned long flags;
	struct rcu_node *rnp;

	sync_exp_reset_tree_hotplug();
	rcu_for_each_node_breadth_first(rnp) {
		raw_spin_lock_irqsave_rcu_node(rnp, flags);
		WARN_ON_ONCE(rnp->expmask);
		WRITE_ONCE(rnp->expmask, rnp->expmaskinit);
		/*
		 * Need to wait for any blocked tasks as well.	Note that
		 * additional blocking tasks will also block the expedited GP
		 * until such time as the ->expmask bits are cleared.
		 */
		if (rcu_is_leaf_node(rnp) && rcu_preempt_has_tasks(rnp))
			WRITE_ONCE(rnp->exp_tasks, rnp->blkd_tasks.next);
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
	}
}

/*
 * Return non-zero if there is no RCU expedited grace period in progress
 * for the specified rcu_node structure, in other words, if all CPUs and
 * tasks covered by the specified rcu_node structure have done their bit
 * for the current expedited grace period.
 */
static bool sync_rcu_exp_done(struct rcu_node *rnp)
{
	raw_lockdep_assert_held_rcu_node(rnp);
	return READ_ONCE(rnp->exp_tasks) == NULL &&
	       READ_ONCE(rnp->expmask) == 0;
}

/*
 * Like sync_rcu_exp_done(), but where the caller does not hold the
 * rcu_node's ->lock.
 */
static bool sync_rcu_exp_done_unlocked(struct rcu_node *rnp)
{
	unsigned long flags;
	bool ret;

	raw_spin_lock_irqsave_rcu_node(rnp, flags);
	ret = sync_rcu_exp_done(rnp);
	raw_spin_unlock_irqrestore_rcu_node(rnp, flags);

	return ret;
}

/*
 * Report the exit from RCU read-side critical section for the last task
 * that queued itself during or before the current expedited preemptible-RCU
 * grace period.  This event is reported either to the rcu_node structure on
 * which the task was queued or to one of that rcu_node structure's ancestors,
 * recursively up the tree.  (Calm down, calm down, we do the recursion
 * iteratively!)
 */
static void __rcu_report_exp_rnp(struct rcu_node *rnp,
				 bool wake, unsigned long flags)
	__releases(rnp->lock)
{
	unsigned long mask;

	raw_lockdep_assert_held_rcu_node(rnp);
	for (;;) {
		if (!sync_rcu_exp_done(rnp)) {
			if (!rnp->expmask)
				rcu_initiate_boost(rnp, flags);
			else
				raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
			break;
		}
		if (rnp->parent == NULL) {
			raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
			if (wake)
				swake_up_one(&rcu_state.expedited_wq);

			break;
		}
		mask = rnp->grpmask;
		raw_spin_unlock_rcu_node(rnp); /* irqs remain disabled */
		rnp = rnp->parent;
		raw_spin_lock_rcu_node(rnp); /* irqs already disabled */
		WARN_ON_ONCE(!(rnp->expmask & mask));
		WRITE_ONCE(rnp->expmask, rnp->expmask & ~mask);
	}
}

/*
 * Report expedited quiescent state for specified node.  This is a
 * lock-acquisition wrapper function for __rcu_report_exp_rnp().
 */
static void __maybe_unused rcu_report_exp_rnp(struct rcu_node *rnp, bool wake)
{
	unsigned long flags;

	raw_spin_lock_irqsave_rcu_node(rnp, flags);
	__rcu_report_exp_rnp(rnp, wake, flags);
}

/*
 * Report expedited quiescent state for multiple CPUs, all covered by the
 * specified leaf rcu_node structure, which is acquired by the caller.
 */
static void rcu_report_exp_cpu_mult(struct rcu_node *rnp, unsigned long flags,
				    unsigned long mask_in, bool wake)
				    __releases(rnp->lock)
{
	int cpu;
	unsigned long mask;
	struct rcu_data *rdp;

	raw_lockdep_assert_held_rcu_node(rnp);
	if (!(rnp->expmask & mask_in)) {
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
		return;
	}
	mask = mask_in & rnp->expmask;
	WRITE_ONCE(rnp->expmask, rnp->expmask & ~mask);
	for_each_leaf_node_cpu_mask(rnp, cpu, mask) {
		rdp = per_cpu_ptr(&rcu_data, cpu);
		if (!IS_ENABLED(CONFIG_NO_HZ_FULL) || !rdp->rcu_forced_tick_exp)
			continue;
		rdp->rcu_forced_tick_exp = false;
		tick_dep_clear_cpu(cpu, TICK_DEP_BIT_RCU_EXP);
	}
	__rcu_report_exp_rnp(rnp, wake, flags); /* Releases rnp->lock. */
}

/*
 * Report expedited quiescent state for specified rcu_data (CPU).
 */
static void rcu_report_exp_rdp(struct rcu_data *rdp)
{
	unsigned long flags;
	struct rcu_node *rnp = rdp->mynode;

	raw_spin_lock_irqsave_rcu_node(rnp, flags);
	WRITE_ONCE(rdp->cpu_no_qs.b.exp, false);
	ASSERT_EXCLUSIVE_WRITER(rdp->cpu_no_qs.b.exp);
	rcu_report_exp_cpu_mult(rnp, flags, rdp->grpmask, true);
}

/* Common code for work-done checking. */
static bool sync_exp_work_done(unsigned long s)
{
	if (rcu_exp_gp_seq_done(s)) {
		trace_rcu_exp_grace_period(rcu_state.name, s, TPS("done"));
		/*
		 * Order GP completion with preceding accesses. Order also GP
		 * completion with post GP update side accesses. Pairs with
		 * rcu_seq_end().
		 */
		smp_mb();
		return true;
	}
	return false;
}

/*
 * Funnel-lock acquisition for expedited grace periods.  Returns true
 * if some other task completed an expedited grace period that this task
 * can piggy-back on, and with no mutex held.  Otherwise, returns false
 * with the mutex held, indicating that the caller must actually do the
 * expedited grace period.
 */
static bool exp_funnel_lock(unsigned long s)
{
	struct rcu_data *rdp = per_cpu_ptr(&rcu_data, raw_smp_processor_id());
	struct rcu_node *rnp = rdp->mynode;
	struct rcu_node *rnp_root = rcu_get_root();

	/* Low-contention fastpath. */
	if (ULONG_CMP_LT(READ_ONCE(rnp->exp_seq_rq), s) &&
	    (rnp == rnp_root ||
	     ULONG_CMP_LT(READ_ONCE(rnp_root->exp_seq_rq), s)) &&
	    mutex_trylock(&rcu_state.exp_mutex))
		goto fastpath;

	/*
	 * Each pass through the following loop works its way up
	 * the rcu_node tree, returning if others have done the work or
	 * otherwise falls through to acquire ->exp_mutex.  The mapping
	 * from CPU to rcu_node structure can be inexact, as it is just
	 * promoting locality and is not strictly needed for correctness.
	 */
	for (; rnp != NULL; rnp = rnp->parent) {
		if (sync_exp_work_done(s))
			return true;

		/* Work not done, either wait here or go up. */
		spin_lock(&rnp->exp_lock);
		if (ULONG_CMP_GE(rnp->exp_seq_rq, s)) {

			/* Someone else doing GP, so wait for them. */
			spin_unlock(&rnp->exp_lock);
			trace_rcu_exp_funnel_lock(rcu_state.name, rnp->level,
						  rnp->grplo, rnp->grphi,
						  TPS("wait"));
			wait_event(rnp->exp_wq[rcu_seq_ctr(s) & 0x3],
				   sync_exp_work_done(s));
			return true;
		}
		WRITE_ONCE(rnp->exp_seq_rq, s); /* Followers can wait on us. */
		spin_unlock(&rnp->exp_lock);
		trace_rcu_exp_funnel_lock(rcu_state.name, rnp->level,
					  rnp->grplo, rnp->grphi, TPS("nxtlvl"));
	}
	mutex_lock(&rcu_state.exp_mutex);
fastpath:
	if (sync_exp_work_done(s)) {
		mutex_unlock(&rcu_state.exp_mutex);
		return true;
	}
	rcu_exp_gp_seq_start();
	trace_rcu_exp_grace_period(rcu_state.name, s, TPS("start"));
	return false;
}

/*
 * Select the CPUs within the specified rcu_node that the upcoming
 * expedited grace period needs to wait for.
 */
static void __sync_rcu_exp_select_node_cpus(struct rcu_exp_work *rewp)
{
	int cpu;
	unsigned long flags;
	unsigned long mask_ofl_test;
	unsigned long mask_ofl_ipi;
	int ret;
	struct rcu_node *rnp = container_of(rewp, struct rcu_node, rew);

	raw_spin_lock_irqsave_rcu_node(rnp, flags);

	/* Each pass checks a CPU for identity, offline, and idle. */
	mask_ofl_test = 0;
	for_each_leaf_node_cpu_mask(rnp, cpu, rnp->expmask) {
		struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu);
		unsigned long mask = rdp->grpmask;
		int snap;

		if (raw_smp_processor_id() == cpu ||
		    !(rnp->qsmaskinitnext & mask)) {
			mask_ofl_test |= mask;
		} else {
			/*
			 * Full ordering between remote CPU's post idle accesses
			 * and updater's accesses prior to current GP (and also
			 * the started GP sequence number) is enforced by
			 * rcu_seq_start() implicit barrier, relayed by kworkers
			 * locking and even further by smp_mb__after_unlock_lock()
			 * barriers chained all the way throughout the rnp locking
			 * tree since sync_exp_reset_tree() and up to the current
			 * leaf rnp locking.
			 *
			 * Ordering between remote CPU's pre idle accesses and
			 * post grace period updater's accesses is enforced by the
			 * below acquire semantic.
			 */
			snap = ct_rcu_watching_cpu_acquire(cpu);
			if (rcu_watching_snap_in_eqs(snap))
				mask_ofl_test |= mask;
			else
				rdp->exp_watching_snap = snap;
		}
	}
	mask_ofl_ipi = rnp->expmask & ~mask_ofl_test;

	raw_spin_unlock_irqrestore_rcu_node(rnp, flags);

	/* IPI the remaining CPUs for expedited quiescent state. */
	for_each_leaf_node_cpu_mask(rnp, cpu, mask_ofl_ipi) {
		struct rcu_data *rdp = per_cpu_ptr(&rcu_data, cpu);
		unsigned long mask = rdp->grpmask;

retry_ipi:
		if (rcu_watching_snap_stopped_since(rdp, rdp->exp_watching_snap)) {
			mask_ofl_test |= mask;
			continue;
		}
		if (get_cpu() == cpu) {
			mask_ofl_test |= mask;
			put_cpu();
			continue;
		}
		ret = smp_call_function_single(cpu, rcu_exp_handler, NULL, 0);
		put_cpu();
		/* The CPU will report the QS in response to the IPI. */
		if (!ret)
			continue;

		/* Failed, raced with CPU hotplug operation. */
		raw_spin_lock_irqsave_rcu_node(rnp, flags);
		if ((rnp->qsmaskinitnext & mask) &&
		    (rnp->expmask & mask)) {
			/* Online, so delay for a bit and try again. */
			raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
			trace_rcu_exp_grace_period(rcu_state.name, rcu_exp_gp_seq_endval(), TPS("selectofl"));
			schedule_timeout_idle(1);
			goto retry_ipi;
		}
		/* CPU really is offline, so we must report its QS. */
		if (rnp->expmask & mask)
			mask_ofl_test |= mask;
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
	}
	/* Report quiescent states for those that went offline. */
	if (mask_ofl_test) {
		raw_spin_lock_irqsave_rcu_node(rnp, flags);
		rcu_report_exp_cpu_mult(rnp, flags, mask_ofl_test, false);
	}
}

static void rcu_exp_sel_wait_wake(unsigned long s);

static void sync_rcu_exp_select_node_cpus(struct kthread_work *wp)
{
	struct rcu_exp_work *rewp =
		container_of(wp, struct rcu_exp_work, rew_work);

	__sync_rcu_exp_select_node_cpus(rewp);
}

static inline bool rcu_exp_worker_started(void)
{
	return !!READ_ONCE(rcu_exp_gp_kworker);
}

static inline bool rcu_exp_par_worker_started(struct rcu_node *rnp)
{
	return !!READ_ONCE(rnp->exp_kworker);
}

static inline void sync_rcu_exp_select_cpus_queue_work(struct rcu_node *rnp)
{
	kthread_init_work(&rnp->rew.rew_work, sync_rcu_exp_select_node_cpus);
	/*
	 * Use rcu_exp_par_gp_kworker, because flushing a work item from
	 * another work item on the same kthread worker can result in
	 * deadlock.
	 */
	kthread_queue_work(READ_ONCE(rnp->exp_kworker), &rnp->rew.rew_work);
}

static inline void sync_rcu_exp_select_cpus_flush_work(struct rcu_node *rnp)
{
	kthread_flush_work(&rnp->rew.rew_work);
}

/*
 * Work-queue handler to drive an expedited grace period forward.
 */
static void wait_rcu_exp_gp(struct kthread_work *wp)
{
	struct rcu_exp_work *rewp;

	rewp = container_of(wp, struct rcu_exp_work, rew_work);
	rcu_exp_sel_wait_wake(rewp->rew_s);
}

static inline void synchronize_rcu_expedited_queue_work(struct rcu_exp_work *rew)
{
	kthread_init_work(&rew->rew_work, wait_rcu_exp_gp);
	kthread_queue_work(rcu_exp_gp_kworker, &rew->rew_work);
}

/*
 * Select the nodes that the upcoming expedited grace period needs
 * to wait for.
 */
static void sync_rcu_exp_select_cpus(void)
{
	struct rcu_node *rnp;

	trace_rcu_exp_grace_period(rcu_state.name, rcu_exp_gp_seq_endval(), TPS("reset"));
	sync_exp_reset_tree();
	trace_rcu_exp_grace_period(rcu_state.name, rcu_exp_gp_seq_endval(), TPS("select"));

	/* Schedule work for each leaf rcu_node structure. */
	rcu_for_each_leaf_node(rnp) {
		rnp->exp_need_flush = false;
		if (!READ_ONCE(rnp->expmask))
			continue; /* Avoid early boot non-existent wq. */
		if (!rcu_exp_par_worker_started(rnp) ||
		    rcu_scheduler_active != RCU_SCHEDULER_RUNNING ||
		    rcu_is_last_leaf_node(rnp)) {
			/* No worker started yet or last leaf, do direct call. */
			sync_rcu_exp_select_node_cpus(&rnp->rew.rew_work);
			continue;
		}
		sync_rcu_exp_select_cpus_queue_work(rnp);
		rnp->exp_need_flush = true;
	}

	/* Wait for jobs (if any) to complete. */
	rcu_for_each_leaf_node(rnp)
		if (rnp->exp_need_flush)
			sync_rcu_exp_select_cpus_flush_work(rnp);
}

/*
 * Wait for the expedited grace period to elapse, within time limit.
 * If the time limit is exceeded without the grace period elapsing,
 * return false, otherwise return true.
 */
static bool synchronize_rcu_expedited_wait_once(long tlimit)
{
	int t;
	struct rcu_node *rnp_root = rcu_get_root();

	t = swait_event_timeout_exclusive(rcu_state.expedited_wq,
					  sync_rcu_exp_done_unlocked(rnp_root),
					  tlimit);
	// Workqueues should not be signaled.
	if (t > 0 || sync_rcu_exp_done_unlocked(rnp_root))
		return true;
	WARN_ON(t < 0);  /* workqueues should not be signaled. */
	return false;
}

/*
 * Print out an expedited RCU CPU stall warning message.
 */
static void synchronize_rcu_expedited_stall(unsigned long jiffies_start, unsigned long j)
{
	int cpu;
	unsigned long mask;
	int ndetected;
	struct rcu_node *rnp;
	struct rcu_node *rnp_root = rcu_get_root();

	if (READ_ONCE(csd_lock_suppress_rcu_stall) && csd_lock_is_stuck()) {
		pr_err("INFO: %s detected expedited stalls, but suppressed full report due to a stuck CSD-lock.\n", rcu_state.name);
		return;
	}
	pr_err("INFO: %s detected expedited stalls on CPUs/tasks: {", rcu_state.name);
	ndetected = 0;
	rcu_for_each_leaf_node(rnp) {
		ndetected += rcu_print_task_exp_stall(rnp);
		for_each_leaf_node_possible_cpu(rnp, cpu) {
			struct rcu_data *rdp;

			mask = leaf_node_cpu_bit(rnp, cpu);
			if (!(READ_ONCE(rnp->expmask) & mask))
				continue;
			ndetected++;
			rdp = per_cpu_ptr(&rcu_data, cpu);
			pr_cont(" %d-%c%c%c%c", cpu,
				"O."[!!cpu_online(cpu)],
				"o."[!!(rdp->grpmask & rnp->expmaskinit)],
				"N."[!!(rdp->grpmask & rnp->expmaskinitnext)],
				"D."[!!data_race(rdp->cpu_no_qs.b.exp)]);
		}
	}
	pr_cont(" } %lu jiffies s: %lu root: %#lx/%c\n",
		j - jiffies_start, rcu_state.expedited_sequence, data_race(rnp_root->expmask),
		".T"[!!data_race(rnp_root->exp_tasks)]);
	if (!ndetected) {
		// This is invoked from the grace-period worker, so
		// a new grace period cannot have started.  And if this
		// worker were stalled, we would not get here.  ;-)
		pr_err("INFO: Expedited stall ended before state dump start\n");
	} else {
		pr_err("blocking rcu_node structures (internal RCU debug):");
		rcu_for_each_node_breadth_first(rnp) {
			if (rnp == rnp_root)
				continue; /* printed unconditionally */
			if (sync_rcu_exp_done_unlocked(rnp))
				continue;
			pr_cont(" l=%u:%d-%d:%#lx/%c",
				rnp->level, rnp->grplo, rnp->grphi, data_race(rnp->expmask),
				".T"[!!data_race(rnp->exp_tasks)]);
		}
		pr_cont("\n");
	}
	rcu_for_each_leaf_node(rnp) {
		for_each_leaf_node_possible_cpu(rnp, cpu) {
			mask = leaf_node_cpu_bit(rnp, cpu);
			if (!(READ_ONCE(rnp->expmask) & mask))
				continue;
			dump_cpu_task(cpu);
		}
		rcu_exp_print_detail_task_stall_rnp(rnp);
	}
}

/*
 * Wait for the expedited grace period to elapse, issuing any needed
 * RCU CPU stall warnings along the way.
 */
static void synchronize_rcu_expedited_wait(void)
{
	int cpu;
	unsigned long j;
	unsigned long jiffies_stall;
	unsigned long jiffies_start;
	unsigned long mask;
	struct rcu_data *rdp;
	struct rcu_node *rnp;
	unsigned long flags;

	trace_rcu_exp_grace_period(rcu_state.name, rcu_exp_gp_seq_endval(), TPS("startwait"));
	jiffies_stall = rcu_exp_jiffies_till_stall_check();
	jiffies_start = jiffies;
	if (tick_nohz_full_enabled() && rcu_inkernel_boot_has_ended()) {
		if (synchronize_rcu_expedited_wait_once(1))
			return;
		rcu_for_each_leaf_node(rnp) {
			raw_spin_lock_irqsave_rcu_node(rnp, flags);
			mask = READ_ONCE(rnp->expmask);
			for_each_leaf_node_cpu_mask(rnp, cpu, mask) {
				rdp = per_cpu_ptr(&rcu_data, cpu);
				if (rdp->rcu_forced_tick_exp)
					continue;
				rdp->rcu_forced_tick_exp = true;
				if (cpu_online(cpu))
					tick_dep_set_cpu(cpu, TICK_DEP_BIT_RCU_EXP);
			}
			raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
		}
		j = READ_ONCE(jiffies_till_first_fqs);
		if (synchronize_rcu_expedited_wait_once(j + HZ))
			return;
	}

	for (;;) {
		unsigned long j;

		if (synchronize_rcu_expedited_wait_once(jiffies_stall))
			return;
		if (rcu_stall_is_suppressed())
			continue;

		nbcon_cpu_emergency_enter();

		j = jiffies;
		rcu_stall_notifier_call_chain(RCU_STALL_NOTIFY_EXP, (void *)(j - jiffies_start));
		trace_rcu_stall_warning(rcu_state.name, TPS("ExpeditedStall"));
		synchronize_rcu_expedited_stall(jiffies_start, j);
		jiffies_stall = 3 * rcu_exp_jiffies_till_stall_check() + 3;

		nbcon_cpu_emergency_exit();

		panic_on_rcu_stall();
	}
}

/*
 * Wait for the current expedited grace period to complete, and then
 * wake up everyone who piggybacked on the just-completed expedited
 * grace period.  Also update all the ->exp_seq_rq counters as needed
 * in order to avoid counter-wrap problems.
 */
static void rcu_exp_wait_wake(unsigned long s)
{
	struct rcu_node *rnp;

	synchronize_rcu_expedited_wait();

	// Switch over to wakeup mode, allowing the next GP to proceed.
	// End the previous grace period only after acquiring the mutex
	// to ensure that only one GP runs concurrently with wakeups.
	mutex_lock(&rcu_state.exp_wake_mutex);
	rcu_exp_gp_seq_end();
	trace_rcu_exp_grace_period(rcu_state.name, s, TPS("end"));

	rcu_for_each_node_breadth_first(rnp) {
		if (ULONG_CMP_LT(READ_ONCE(rnp->exp_seq_rq), s)) {
			spin_lock(&rnp->exp_lock);
			/* Recheck, avoid hang in case someone just arrived. */
			if (ULONG_CMP_LT(rnp->exp_seq_rq, s))
				WRITE_ONCE(rnp->exp_seq_rq, s);
			spin_unlock(&rnp->exp_lock);
		}
		smp_mb(); /* All above changes before wakeup. */
		wake_up_all(&rnp->exp_wq[rcu_seq_ctr(s) & 0x3]);
	}
	trace_rcu_exp_grace_period(rcu_state.name, s, TPS("endwake"));
	mutex_unlock(&rcu_state.exp_wake_mutex);
}

/*
 * Common code to drive an expedited grace period forward, used by
 * workqueues and mid-boot-time tasks.
 */
static void rcu_exp_sel_wait_wake(unsigned long s)
{
	/* Initialize the rcu_node tree in preparation for the wait. */
	sync_rcu_exp_select_cpus();

	/* Wait and clean up, including waking everyone. */
	rcu_exp_wait_wake(s);
}

/* Request an expedited quiescent state. */
static void rcu_exp_need_qs(void)
{
	lockdep_assert_irqs_disabled();
	ASSERT_EXCLUSIVE_WRITER_SCOPED(*this_cpu_ptr(&rcu_data.cpu_no_qs.b.exp));
	__this_cpu_write(rcu_data.cpu_no_qs.b.exp, true);
	/* Store .exp before .rcu_urgent_qs. */
	smp_store_release(this_cpu_ptr(&rcu_data.rcu_urgent_qs), true);
	set_need_resched_current();
}

#ifdef CONFIG_PREEMPT_RCU

/*
 * Remote handler for smp_call_function_single().  If there is an
 * RCU read-side critical section in effect, request that the
 * next rcu_read_unlock() record the quiescent state up the
 * ->expmask fields in the rcu_node tree.  Otherwise, immediately
 * report the quiescent state.
 */
static void rcu_exp_handler(void *unused)
{
	int depth = rcu_preempt_depth();
	unsigned long flags;
	struct rcu_data *rdp = this_cpu_ptr(&rcu_data);
	struct rcu_node *rnp = rdp->mynode;
	struct task_struct *t = current;

	/*
	 * WARN if the CPU is unexpectedly already looking for a
	 * QS or has already reported one.
	 */
	ASSERT_EXCLUSIVE_WRITER_SCOPED(rdp->cpu_no_qs.b.exp);
	if (WARN_ON_ONCE(!(READ_ONCE(rnp->expmask) & rdp->grpmask) ||
			 READ_ONCE(rdp->cpu_no_qs.b.exp)))
		return;

	/*
	 * Second, the common case of not being in an RCU read-side
	 * critical section.  If also enabled or idle, immediately
	 * report the quiescent state, otherwise defer.
	 */
	if (!depth) {
		if (!(preempt_count() & (PREEMPT_MASK | SOFTIRQ_MASK)) ||
		    rcu_is_cpu_rrupt_from_idle())
			rcu_report_exp_rdp(rdp);
		else
			rcu_exp_need_qs();
		return;
	}

	/*
	 * Third, the less-common case of being in an RCU read-side
	 * critical section.  In this case we can count on a future
	 * rcu_read_unlock().  However, this rcu_read_unlock() might
	 * execute on some other CPU, but in that case there will be
	 * a future context switch.  Either way, if the expedited
	 * grace period is still waiting on this CPU, set ->deferred_qs
	 * so that the eventual quiescent state will be reported.
	 * Note that there is a large group of race conditions that
	 * can have caused this quiescent state to already have been
	 * reported, so we really do need to check ->expmask.
	 */
	if (depth > 0) {
		raw_spin_lock_irqsave_rcu_node(rnp, flags);
		if (rnp->expmask & rdp->grpmask) {
			WRITE_ONCE(rdp->cpu_no_qs.b.exp, true);
			t->rcu_read_unlock_special.b.exp_hint = true;
		}
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
		return;
	}

	// Fourth and finally, negative nesting depth should not happen.
	WARN_ON_ONCE(1);
}

/*
 * Scan the current list of tasks blocked within RCU read-side critical
 * sections, printing out the tid of each that is blocking the current
 * expedited grace period.
 */
static int rcu_print_task_exp_stall(struct rcu_node *rnp)
{
	unsigned long flags;
	int ndetected = 0;
	struct task_struct *t;

	raw_spin_lock_irqsave_rcu_node(rnp, flags);
	if (!rnp->exp_tasks) {
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
		return 0;
	}
	t = list_entry(rnp->exp_tasks->prev,
		       struct task_struct, rcu_node_entry);
	list_for_each_entry_continue(t, &rnp->blkd_tasks, rcu_node_entry) {
		pr_cont(" P%d", t->pid);
		ndetected++;
	}
	raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
	return ndetected;
}

/*
 * Scan the current list of tasks blocked within RCU read-side critical
 * sections, dumping the stack of each that is blocking the current
 * expedited grace period.
 */
static void rcu_exp_print_detail_task_stall_rnp(struct rcu_node *rnp)
{
	unsigned long flags;
	struct task_struct *t;

	if (!rcu_exp_stall_task_details)
		return;
	raw_spin_lock_irqsave_rcu_node(rnp, flags);
	if (!READ_ONCE(rnp->exp_tasks)) {
		raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
		return;
	}
	t = list_entry(rnp->exp_tasks->prev,
		       struct task_struct, rcu_node_entry);
	list_for_each_entry_continue(t, &rnp->blkd_tasks, rcu_node_entry) {
		/*
		 * We could be printing a lot while holding a spinlock.
		 * Avoid triggering hard lockup.
		 */
		touch_nmi_watchdog();
		sched_show_task(t);
	}
	raw_spin_unlock_irqrestore_rcu_node(rnp, flags);
}

#else /* #ifdef CONFIG_PREEMPT_RCU */

/* Invoked on each online non-idle CPU for expedited quiescent state. */
static void rcu_exp_handler(void *unused)
{
	struct rcu_data *rdp = this_cpu_ptr(&rcu_data);
	struct rcu_node *rnp = rdp->mynode;
	bool preempt_bh_enabled = !(preempt_count() & (PREEMPT_MASK | SOFTIRQ_MASK));

	ASSERT_EXCLUSIVE_WRITER_SCOPED(rdp->cpu_no_qs.b.exp);
	if (!(READ_ONCE(rnp->expmask) & rdp->grpmask) ||
	    __this_cpu_read(rcu_data.cpu_no_qs.b.exp))
		return;
	if (rcu_is_cpu_rrupt_from_idle() ||
	    (IS_ENABLED(CONFIG_PREEMPT_COUNT) && preempt_bh_enabled)) {
		rcu_report_exp_rdp(this_cpu_ptr(&rcu_data));
		return;
	}
	rcu_exp_need_qs();
}

/*
 * Because preemptible RCU does not exist, we never have to check for
 * tasks blocked within RCU read-side critical sections that are
 * blocking the current expedited grace period.
 */
static int rcu_print_task_exp_stall(struct rcu_node *rnp)
{
	return 0;
}

/*
 * Because preemptible RCU does not exist, we never have to print out
 * tasks blocked within RCU read-side critical sections that are blocking
 * the current expedited grace period.
 */
static void rcu_exp_print_detail_task_stall_rnp(struct rcu_node *rnp)
{
}

#endif /* #else #ifdef CONFIG_PREEMPT_RCU */

/**
 * synchronize_rcu_expedited - Brute-force RCU grace period
 *
 * Wait for an RCU grace period, but expedite it.  The basic idea is to
 * IPI all non-idle non-nohz online CPUs.  The IPI handler checks whether
 * the CPU is in an RCU critical section, and if so, it sets a flag that
 * causes the outermost rcu_read_unlock() to report the quiescent state
 * for RCU-preempt or asks the scheduler for help for RCU-sched.  On the
 * other hand, if the CPU is not in an RCU read-side critical section,
 * the IPI handler reports the quiescent state immediately.
 *
 * Although this is a great improvement over previous expedited
 * implementations, it is still unfriendly to real-time workloads, so is
 * thus not recommended for any sort of common-case code.  In fact, if
 * you are using synchronize_rcu_expedited() in a loop, please restructure
 * your code to batch your updates, and then use a single synchronize_rcu()
 * instead.
 *
 * This has the same semantics as (but is more brutal than) synchronize_rcu().
 */
void synchronize_rcu_expedited(void)
{
	unsigned long flags;
	struct rcu_exp_work rew;
	struct rcu_node *rnp;
	unsigned long s;

	RCU_LOCKDEP_WARN(lock_is_held(&rcu_bh_lock_map) ||
			 lock_is_held(&rcu_lock_map) ||
			 lock_is_held(&rcu_sched_lock_map),
			 "Illegal synchronize_rcu_expedited() in RCU read-side critical section");

	/* Is the state is such that the call is a grace period? */
	if (rcu_blocking_is_gp()) {
		// Note well that this code runs with !PREEMPT && !SMP.
		// In addition, all code that advances grace periods runs
		// at process level.  Therefore, this expedited GP overlaps
		// with other expedited GPs only by being fully nested within
		// them, which allows reuse of ->gp_seq_polled_exp_snap.
		rcu_poll_gp_seq_start_unlocked(&rcu_state.gp_seq_polled_exp_snap);
		rcu_poll_gp_seq_end_unlocked(&rcu_state.gp_seq_polled_exp_snap);

		local_irq_save(flags);
		WARN_ON_ONCE(num_online_cpus() > 1);
		rcu_state.expedited_sequence += (1 << RCU_SEQ_CTR_SHIFT);
		local_irq_restore(flags);
		return;  // Context allows vacuous grace periods.
	}

	/* If expedited grace periods are prohibited, fall back to normal. */
	if (rcu_gp_is_normal()) {
		synchronize_rcu_normal();
		return;
	}

	/* Take a snapshot of the sequence number.  */
	s = rcu_exp_gp_seq_snap();
	if (exp_funnel_lock(s))
		return;  /* Someone else did our work for us. */

	/* Ensure that load happens before action based on it. */
	if (unlikely((rcu_scheduler_active == RCU_SCHEDULER_INIT) || !rcu_exp_worker_started())) {
		/* Direct call during scheduler init and early_initcalls(). */
		rcu_exp_sel_wait_wake(s);
	} else {
		/* Marshall arguments & schedule the expedited grace period. */
		rew.rew_s = s;
		synchronize_rcu_expedited_queue_work(&rew);
	}

	/* Wait for expedited grace period to complete. */
	rnp = rcu_get_root();
	wait_event(rnp->exp_wq[rcu_seq_ctr(s) & 0x3],
		   sync_exp_work_done(s));

	/* Let the next expedited grace period start. */
	mutex_unlock(&rcu_state.exp_mutex);
}
EXPORT_SYMBOL_GPL(synchronize_rcu_expedited);

/*
 * Ensure that start_poll_synchronize_rcu_expedited() has the expedited
 * RCU grace periods that it needs.
 */
static void sync_rcu_do_polled_gp(struct work_struct *wp)
{
	unsigned long flags;
	int i = 0;
	struct rcu_node *rnp = container_of(wp, struct rcu_node, exp_poll_wq);
	unsigned long s;

	raw_spin_lock_irqsave(&rnp->exp_poll_lock, flags);
	s = rnp->exp_seq_poll_rq;
	rnp->exp_seq_poll_rq = RCU_GET_STATE_COMPLETED;
	raw_spin_unlock_irqrestore(&rnp->exp_poll_lock, flags);
	if (s == RCU_GET_STATE_COMPLETED)
		return;
	while (!poll_state_synchronize_rcu(s)) {
		synchronize_rcu_expedited();
		if (i == 10 || i == 20)
			pr_info("%s: i = %d s = %lx gp_seq_polled = %lx\n", __func__, i, s, READ_ONCE(rcu_state.gp_seq_polled));
		i++;
	}
	raw_spin_lock_irqsave(&rnp->exp_poll_lock, flags);
	s = rnp->exp_seq_poll_rq;
	if (poll_state_synchronize_rcu(s))
		rnp->exp_seq_poll_rq = RCU_GET_STATE_COMPLETED;
	raw_spin_unlock_irqrestore(&rnp->exp_poll_lock, flags);
}

/**
 * start_poll_synchronize_rcu_expedited - Snapshot current RCU state and start expedited grace period
 *
 * Returns a cookie to pass to a call to cond_synchronize_rcu(),
 * cond_synchronize_rcu_expedited(), or poll_state_synchronize_rcu(),
 * allowing them to determine whether or not any sort of grace period has
 * elapsed in the meantime.  If the needed expedited grace period is not
 * already slated to start, initiates that grace period.
 */
unsigned long start_poll_synchronize_rcu_expedited(void)
{
	unsigned long flags;
	struct rcu_data *rdp;
	struct rcu_node *rnp;
	unsigned long s;

	s = get_state_synchronize_rcu();
	rdp = per_cpu_ptr(&rcu_data, raw_smp_processor_id());
	rnp = rdp->mynode;
	if (rcu_init_invoked())
		raw_spin_lock_irqsave(&rnp->exp_poll_lock, flags);
	if (!poll_state_synchronize_rcu(s)) {
		if (rcu_init_invoked()) {
			rnp->exp_seq_poll_rq = s;
			queue_work(rcu_gp_wq, &rnp->exp_poll_wq);
		}
	}
	if (rcu_init_invoked())
		raw_spin_unlock_irqrestore(&rnp->exp_poll_lock, flags);

	return s;
}
EXPORT_SYMBOL_GPL(start_poll_synchronize_rcu_expedited);

/**
 * start_poll_synchronize_rcu_expedited_full - Take a full snapshot and start expedited grace period
 * @rgosp: Place to put snapshot of grace-period state
 *
 * Places the normal and expedited grace-period states in rgosp.  This
 * state value can be passed to a later call to cond_synchronize_rcu_full()
 * or poll_state_synchronize_rcu_full() to determine whether or not a
 * grace period (whether normal or expedited) has elapsed in the meantime.
 * If the needed expedited grace period is not already slated to start,
 * initiates that grace period.
 */
void start_poll_synchronize_rcu_expedited_full(struct rcu_gp_oldstate *rgosp)
{
	get_state_synchronize_rcu_full(rgosp);
	(void)start_poll_synchronize_rcu_expedited();
}
EXPORT_SYMBOL_GPL(start_poll_synchronize_rcu_expedited_full);

/**
 * cond_synchronize_rcu_expedited - Conditionally wait for an expedited RCU grace period
 *
 * @oldstate: value from get_state_synchronize_rcu(), start_poll_synchronize_rcu(), or start_poll_synchronize_rcu_expedited()
 *
 * If any type of full RCU grace period has elapsed since the earlier
 * call to get_state_synchronize_rcu(), start_poll_synchronize_rcu(),
 * or start_poll_synchronize_rcu_expedited(), just return.  Otherwise,
 * invoke synchronize_rcu_expedited() to wait for a full grace period.
 *
 * Yes, this function does not take counter wrap into account.
 * But counter wrap is harmless.  If the counter wraps, we have waited for
 * more than 2 billion grace periods (and way more on a 64-bit system!),
 * so waiting for a couple of additional grace periods should be just fine.
 *
 * This function provides the same memory-ordering guarantees that
 * would be provided by a synchronize_rcu() that was invoked at the call
 * to the function that provided @oldstate and that returned at the end
 * of this function.
 */
void cond_synchronize_rcu_expedited(unsigned long oldstate)
{
	if (!poll_state_synchronize_rcu(oldstate))
		synchronize_rcu_expedited();
}
EXPORT_SYMBOL_GPL(cond_synchronize_rcu_expedited);

/**
 * cond_synchronize_rcu_expedited_full - Conditionally wait for an expedited RCU grace period
 * @rgosp: value from get_state_synchronize_rcu_full(), start_poll_synchronize_rcu_full(), or start_poll_synchronize_rcu_expedited_full()
 *
 * If a full RCU grace period has elapsed since the call to
 * get_state_synchronize_rcu_full(), start_poll_synchronize_rcu_full(),
 * or start_poll_synchronize_rcu_expedited_full() from which @rgosp was
 * obtained, just return.  Otherwise, invoke synchronize_rcu_expedited()
 * to wait for a full grace period.
 *
 * Yes, this function does not take counter wrap into account.
 * But counter wrap is harmless.  If the counter wraps, we have waited for
 * more than 2 billion grace periods (and way more on a 64-bit system!),
 * so waiting for a couple of additional grace periods should be just fine.
 *
 * This function provides the same memory-ordering guarantees that
 * would be provided by a synchronize_rcu() that was invoked at the call
 * to the function that provided @rgosp and that returned at the end of
 * this function.
 */
void cond_synchronize_rcu_expedited_full(struct rcu_gp_oldstate *rgosp)
{
	if (!poll_state_synchronize_rcu_full(rgosp))
		synchronize_rcu_expedited();
}
EXPORT_SYMBOL_GPL(cond_synchronize_rcu_expedited_full);
]

11/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 20173
							output: 40
							thoughts: 754
						

Thoughts:
**Analyzing Workqueue Concurrency in the Kernel**

Okay, so I'm looking at this stack trace and initially I was thrown off because I couldn't immediately find `wq_worker_running` in `kernel/rcu/tree_exp.h`. The trace pointed to `kernel/workqueue.c:1419`, which then led me to realize that `wq_worker_running` is, in fact, called by the scheduler. Specifically, the stack shows `synchronize_rcu_expedited` calling `wait_event`, and `wait_event`, when a task is resumed, results in a call to `schedule()`. The scheduler then calls `wq_worker_running`.

So, the trace indicates that worker task 13651, which was sleeping (likely within `wait_event` inside `synchronize_rcu_expedited`), is now waking up and being scheduled. And another worker task 11146 (likely based on the call to `process_srcu`) is calling `kick_pool`. This makes sense.

Now, `kick_pool` is called with `pool->lock` held. My initial thought was, does `wq_worker_running` hold that lock? Typically, `wq_worker_sleeping` and `wq_worker_running`, called by the scheduler, manipulate `pool->nr_running`.

I went back to the source for `wq_worker_running`:

```c
void wq_worker_running(struct task_struct *task)
{
	struct worker *worker = kthread_data(task);

	if (!READ_ONCE(worker->sleeping))
		return;
...
	preempt_disable();
	if (!(worker->flags & WORKER_NOT_RUNNING))
		worker->pool->nr_running++;
	preempt_enable();
...
	WRITE_ONCE(worker->sleeping, 0);
}
```

And nope, it doesn't hold `pool->lock` directly. This is good; that should avoid any direct lock contention. `wq_worker_running` is called when a worker is being switched *to*. The scheduler is the common ground between the two tasks. So, the scheduler hooks are `wq_worker_sleeping` and `wq_worker_running`. I should probably double check the `wq_worker_sleeping` function.



12/2 2026/02/24 19:11 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:wq_worker_sleeping]

Results:
map[SourceCode:1431:	/**
1432:	 * wq_worker_sleeping - a worker is going to sleep
1433:	 * @task: task going to sleep
1434:	 *
1435:	 * This function is called from schedule() when a busy worker is
1436:	 * going to sleep.
1437:	 */
1438:	void wq_worker_sleeping(struct task_struct *task)
1439:	{
1440:		struct worker *worker = kthread_data(task);
1441:		struct worker_pool *pool;
1442:	
1443:		/*
1444:		 * Rescuers, which may not have all the fields set up like normal
1445:		 * workers, also reach here, let's not access anything before
1446:		 * checking NOT_RUNNING.
1447:		 */
1448:		if (worker->flags & WORKER_NOT_RUNNING)
1449:			return;
1450:	
1451:		pool = worker->pool;
1452:	
1453:		/* Return if preempted before wq_worker_running() was reached */
1454:		if (READ_ONCE(worker->sleeping))
1455:			return;
1456:	
1457:		WRITE_ONCE(worker->sleeping, 1);
1458:		raw_spin_lock_irq(&pool->lock);
1459:	
1460:		/*
1461:		 * Recheck in case unbind_workers() preempted us. We don't
1462:		 * want to decrement nr_running after the worker is unbound
1463:		 * and nr_running has been reset.
1464:		 */
1465:		if (worker->flags & WORKER_NOT_RUNNING) {
1466:			raw_spin_unlock_irq(&pool->lock);
1467:			return;
1468:		}
1469:	
1470:		pool->nr_running--;
1471:		if (kick_pool(pool))
1472:			worker->current_pwq->stats[PWQ_STAT_CM_WAKEUP]++;
1473:	
1474:		raw_spin_unlock_irq(&pool->lock);
1475:	}
 SourceFile:kernel/workqueue.c]

13/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 22141
							output: 23
							thoughts: 882
						

Thoughts:
**Analyzing a Potential Data Race in Workqueue Worker Management**

Okay, so I'm digging into this workqueue code, and something's bugging me about how `nr_running` is managed. I see that `wq_worker_sleeping` decrements `nr_running` while holding `pool->lock`, which seems sensible for atomicity. But then `wq_worker_running` increments `nr_running` *without* holding the lock. That immediately sets off alarm bells. The comment mentions a potential race involving `unbind_workers()`, which leads to the use of `preempt_disable()` and `preempt_enable()`, but not the lock.

My first thought is, if `nr_running` can be incremented without the lock, then `kick_pool` (which *does* hold `pool->lock`) could very well see an inconsistent value of `nr_running` if it's running concurrently. Let me trace that. `kick_pool` calls `need_more_worker(pool)`, and that checks `!list_empty(&pool->worklist) && !pool->nr_running`.

Now, imagine this scenario: A worker is waking up, and `wq_worker_running` is about to increment `nr_running` from 0 to 1. Simultaneously, `kick_pool` runs. It might read `nr_running` as 0 (before the increment) or 1 (after). If it reads 0, it incorrectly concludes it needs to wake another worker. If it reads 1, it avoids waking the worker.

Is it okay to wake a worker when another is actively waking up? In principle, `nr_running` tracks running workers, not those *about* to run. So, if `kick_pool` sees 0, it thinks no workers are running when, in fact, one is about to be. This could lead to waking up two workers, which might be fine in certain non-per-cpu pools, but per-cpu pools try to keep `nr_running` at 1 to avoid context switches. It also violates the core purpose of `nr_running`.

The problem is, an `int` increment is inherently not atomic unless it's protected or it's an atomic increment instruction. I'm seeing "read-write to ... of 4 bytes" in the report, meaning the `++` operation. On x86, that means it is a read-modify-write operation which can lead to read-write data races if there's no atomic prefix on the instructions (e.g. `lock add [mem], 1`).

So, KCSAN detected the data race between the increment (read-write) and the read. If `wq_worker_running` doesn't hold `pool->lock`, any code holding `pool->lock` and accessing `nr_running` is racing with it. It's a textbook data race scenario.

Now, why wouldn't they use the lock? Maybe it's a performance optimization, as the path is presumably hot. But I need to double-check where `wq_worker_running` is called. It's not in `ttwu_activate`, so I need to go back and figure out where it is called and the trade offs that were made. This warrants further investigation, because this could cause problems when multiple workers are started.



14/2 2026/02/24 19:11 tool codesearch-find-references
0m Args:
map[Name:wq_worker_running]

Results:
map[References:[map[ReferenceKind:calls ReferencingEntityKind:function ReferencingEntityName:sched_update_worker SourceFile:kernel/sched/core.c SourceLine:6979]] TruncatedOutput:false]

15/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 23836
							output: 41
							thoughts: 22
						

Thoughts:
Here's my take on those thoughts, tailored for an expert audience:

**Diving into `sched_update_worker`**

Alright, let's zero in on `sched_update_worker`, specifically its implementation within `kernel/sched/core.c`. I'm going to quickly refresh my understanding of how this workqueue functions. I need to refresh the key aspects, like where it's called from and the potential race conditions that might exist. I'm especially interested in its interaction with the runqueue locks and the implications for CPU-bound tasks. This is where the real performance bottlenecks often surface. I need to make sure I grasp the finer points of the locking order and any potential for livelock or excessive contention, particularly on high-core-count systems. And let's not forget the interaction with preemption - does this function correctly handle the preemption of the tasks and, if so, what are the implications on performance?



16/2 2026/02/24 19:11 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/sched/core.c IncludeLines:true Name:sched_update_worker]

Results:
map[SourceCode:6973:	static void sched_update_worker(struct task_struct *tsk)
6974:	{
6975:		if (tsk->flags & (PF_WQ_WORKER | PF_IO_WORKER | PF_BLOCK_TS)) {
6976:			if (tsk->flags & PF_BLOCK_TS)
6977:				blk_plug_invalidate_ts(tsk);
6978:			if (tsk->flags & PF_WQ_WORKER)
6979:				wq_worker_running(tsk);
6980:			else if (tsk->flags & PF_IO_WORKER)
6981:				io_wq_worker_running(tsk);
6982:		}
6983:	}
 SourceFile:kernel/sched/core.c]

17/2 2026/02/24 19:11 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 24318
							output: 23
							thoughts: 12
						

Thoughts:
Okay, here's my summary, in the first person, as an expert in the field would think about it:

**Tracing the Execution Path of `sched_update_worker`**

Alright, so the question immediately arises: where *exactly* is this `sched_update_worker` function invoked? I need to understand its call stack to fully grasp its role and potential impact within the system. Is it called from a critical path? Is it part of a frequently executed code segment? Knowing its caller(s) will tell me everything about its context, what signals its execution, and what resources it manipulates. My first instinct will be to use my debugging tools to trace the call, or, if I'm working with the codebase, just a quick search for its references within the source. Let's dig in.



18/2 2026/02/24 19:12 tool codesearch-find-references
0m Args:
map[Name:sched_update_worker]

Results:
map[References:[map[ReferenceKind:calls ReferencingEntityKind:function ReferencingEntityName:rt_mutex_post_schedule SourceFile:kernel/sched/core.c SourceLine:7290] map[ReferenceKind:calls ReferencingEntityKind:function ReferencingEntityName:schedule SourceFile:kernel/sched/core.c SourceLine:7005]] TruncatedOutput:false]

19/2 2026/02/24 19:12 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 24642
							output: 40
							thoughts: 1707
						

Thoughts:
**Workqueue Concurrency Analysis**

Okay, so I'm digging into the workqueue concurrency logic, specifically focusing on how `schedule()` interacts with worker thread management. I see that `schedule()` calls `sched_update_worker` both *before* and *after* the `__schedule()` call. The call after `__schedule()` is particularly interesting because it's when a task has just been woken up and is about to start running.

I'm zeroing in on `wq_worker_running` to understand how it fits in here. Since it's called from within `schedule()`, its execution context is crucial. If `wq_worker_running` *is* called, it must be on the CPU where the worker is about to run. I'm focusing on the `pool->nr_running` variable as I know it's used for concurrency control.

My understanding is that, if `wq_worker_running` *doesn't* use a lock, it's likely intentional design. And, yep, I see now that `wq_worker_running` is only called for per-cpu pools. Unbound pools don't use `nr_running` in the same way, or rather `need_more_worker` always returns true for them if work is available (as noted in the comment).

Okay, so the comment on `need_more_worker` confirms: Unbound pools' `nr_running` is effectively always zero, because they always return true. So `nr_running` is only used for per-cpu bound pools.

Now, let's look at `wq_worker_running` again. The critical part is that `nr_running` is *only* incremented if the `WORKER_UNBOUND` flag isn't set. So, if `WORKER_UNBOUND` is set, `nr_running` is NOT incremented, and this is for per-cpu pools only.

So for per-cpu pools, `wq_worker_running` is definitely called on the CPU associated with the pool. The worker *should* only run on that CPU. Since `wq_worker_running` is called from `schedule()`, it's on the CPU where the worker is running. This is really key.

Now I'm thinking about `kick_pool`, which is also critical. `kick_pool` is called from `__queue_work` (and other places), which means it could be called from any CPU. If I queue work for CPU 0 from CPU 1, `__queue_work` will call `kick_pool` for CPU 0's pool. So, `kick_pool` can definitely be called from a different CPU than the one the pool is associated with.

This is a potential race! If `kick_pool` (on CPU 1) reads `pool->nr_running` while `wq_worker_running` (on CPU 0) is incrementing it, we've got a race condition.

Is the race harmful? If `kick_pool` sees a stale `nr_running` value:

1.  It sees 0 when it should be 1: This will result in waking up an idle worker, which is not a correctness issue, but a performance issue.
2.  It sees 1 when it should be 0? That shouldn't be possible because `wq_worker_running` *only* increments. Wait! No! Actually, because it is a read-modify-write operation, it is possible for `kick_pool` to read a zero value if it occurs in the middle of this operation.

If it's a per-cpu pool, and `wq_worker_running` is running on *that* CPU, then that CPU *is* definitely running a worker. If `kick_pool` is called from another CPU, it wants to know if it needs to wake up a worker. If `nr_running` is 0, it means no workers are currently active. But, if `wq_worker_running` is called, it means a worker is *becoming* active.

If `kick_pool` sees 0 and wakes up another worker, we have two workers instead of one. No correctness issue, just possible performance impact.

Is there any possibility of data corruption for `nr_running`? It's a 4-byte int, and x86 has atomic 4-byte accesses *for aligned accesses*. But, `pool->nr_running++` *is not* an atomic operation. So if two CPUs *tried* to increment it at the same time, we could lose an increment. However, `wq_worker_running` only runs on the *pool's* CPU, for per-cpu pools. Are there any other places


20/2 2026/02/24 19:12 tool grepper
0m Args:
map[Expression:nr_running\+\+|nr_running--|nr_running =|nr_running \+=|nr_running -=]

Results:
map[Output:arch/s390/appldata/appldata_os.c=91=static void appldata_get_os_data(void *data)
--
arch/s390/appldata/appldata_os.c-100-	os_data->nr_threads = nr_threads;
arch/s390/appldata/appldata_os.c:101:	os_data->nr_running = nr_running();
arch/s390/appldata/appldata_os.c-102-	os_data->nr_iowait  = nr_iowait();
--
io_uring/io-wq.c=1100=static bool io_wq_worker_cancel(struct io_worker *worker, void *data)
--
io_uring/io-wq.c-1109-	if (__io_wq_worker_cancel(worker, match, worker->cur_work))
io_uring/io-wq.c:1110:		match->nr_running++;
io_uring/io-wq.c-1111-	raw_spin_unlock(&worker->lock);
--
kernel/cgroup/cgroup-v1.c=719=int cgroupstats_build(struct cgroupstats *stats, struct dentry *dentry)
--
kernel/cgroup/cgroup-v1.c-747-		case TASK_RUNNING:
kernel/cgroup/cgroup-v1.c:748:			stats->nr_running++;
kernel/cgroup/cgroup-v1.c-749-			break;
--
kernel/sched/core.c=315=void sched_core_dequeue(struct rq *rq, struct task_struct *p, int flags)
--
kernel/sched/core.c-331-	 */
kernel/sched/core.c:332:	if (!(flags & DEQUEUE_SAVE) && rq->nr_running == 1 &&
kernel/sched/core.c-333-	    rq->core->core_forceidle_count && rq->curr == rq->idle)
--
kernel/sched/core.c=1349=bool sched_can_stop_tick(struct rq *rq)
--
kernel/sched/core.c-1361-	if (rq->rt.rr_nr_running) {
kernel/sched/core.c:1362:		if (rq->rt.rr_nr_running == 1)
kernel/sched/core.c-1363-			return true;
--
kernel/sched/core.c-1371-	 */
kernel/sched/core.c:1372:	fifo_nr_running = rq->rt.rt_nr_running - rq->rt.rr_nr_running;
kernel/sched/core.c-1373-	if (fifo_nr_running)
--
kernel/sched/core.c=5330=bool single_task_running(void)
kernel/sched/core.c-5331-{
kernel/sched/core.c:5332:	return raw_rq()->nr_running == 1;
kernel/sched/core.c-5333-}
--
kernel/sched/core.c=5906=__pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
--
kernel/sched/core.c-5923-	if (likely(!sched_class_above(prev->sched_class, &fair_sched_class) &&
kernel/sched/core.c:5924:		   rq->nr_running == rq->cfs.h_nr_queued)) {
kernel/sched/core.c-5925-
--
kernel/sched/core.c=8201=static void balance_hotplug_wait(void)
--
kernel/sched/core.c-8205-	rcuwait_wait_event(&rq->hotplug_wait,
kernel/sched/core.c:8206:			   rq->nr_running == 1 && !rq_has_pinned_tasks(rq),
kernel/sched/core.c-8207-			   TASK_UNINTERRUPTIBLE);
--
kernel/sched/core.c=8595=void __init sched_init(void)
--
kernel/sched/core.c-8664-		raw_spin_lock_init(&rq->__lock);
kernel/sched/core.c:8665:		rq->nr_running = 0;
kernel/sched/core.c-8666-		rq->calc_load_active = 0;
--
kernel/sched/deadline.c=2064=void inc_dl_tasks(struct sched_dl_entity *dl_se, struct dl_rq *dl_rq)
--
kernel/sched/deadline.c-2067-
kernel/sched/deadline.c:2068:	dl_rq->dl_nr_running++;
kernel/sched/deadline.c-2069-
--
kernel/sched/deadline.c=2077=void dec_dl_tasks(struct sched_dl_entity *dl_se, struct dl_rq *dl_rq)
--
kernel/sched/deadline.c-2079-	WARN_ON(!dl_rq->dl_nr_running);
kernel/sched/deadline.c:2080:	dl_rq->dl_nr_running--;
kernel/sched/deadline.c-2081-
--
kernel/sched/ext.c=1469=static void enqueue_task_scx(struct rq *rq, struct task_struct *p, int enq_flags)
--
kernel/sched/ext.c-1497-	p->scx.flags |= SCX_TASK_QUEUED;
kernel/sched/ext.c:1498:	rq->scx.nr_running++;
kernel/sched/ext.c-1499-	add_nr_running(rq, 1);
--
kernel/sched/ext.c-1507-	/* Start dl_server if this is the first task being enqueued */
kernel/sched/ext.c:1508:	if (rq->scx.nr_running == 1)
kernel/sched/ext.c-1509-		dl_server_start(&rq->ext_server);
--
kernel/sched/ext.c=1569=static bool dequeue_task_scx(struct rq *rq, struct task_struct *p, int deq_flags)
--
kernel/sched/ext.c-1605-	p->scx.flags &= ~SCX_TASK_QUEUED;
kernel/sched/ext.c:1606:	rq->scx.nr_running--;
kernel/sched/ext.c-1607-	sub_nr_running(rq, 1);
--
kernel/sched/fair.c=2133=static void update_numa_stats(struct task_numa_env *env,
--
kernel/sched/fair.c-2148-		ns->util += cpu_util_cfs(cpu);
kernel/sched/fair.c:2149:		ns->nr_running += rq->cfs.h_nr_runnable;
kernel/sched/fair.c-2150-		ns->compute_capacity += capacity_of(cpu);
--
kernel/sched/fair.c=6823=static int sched_idle_rq(struct rq *rq)
kernel/sched/fair.c-6824-{
kernel/sched/fair.c:6825:	return unlikely(rq->nr_running == rq->cfs.h_nr_idle &&
kernel/sched/fair.c-6826-			rq->nr_running);
--
kernel/sched/fair.c=9021=static void yield_task_fair(struct rq *rq)
--
kernel/sched/fair.c-9029-	 */
kernel/sched/fair.c:9030:	if (unlikely(rq->nr_running == 1))
kernel/sched/fair.c-9031-		return;
--
kernel/sched/fair.c=10336=static inline long sibling_imbalance(struct lb_env *env,
--
kernel/sched/fair.c-10363-	/* Take advantage of resource in an empty sched group */
kernel/sched/fair.c:10364:	if (imbalance <= 1 && local->sum_nr_running == 0 &&
kernel/sched/fair.c-10365-	    busiest->sum_nr_running > 1)
--
kernel/sched/fair.c=10393=static inline void update_sg_lb_stats(struct lb_env *env,
--
kernel/sched/fair.c-10413-		sgs->group_runnable += cpu_runnable(rq);
kernel/sched/fair.c:10414:		sgs->sum_h_nr_running += rq->cfs.h_nr_runnable;
kernel/sched/fair.c-10415-
kernel/sched/fair.c:10416:		nr_running = rq->nr_running;
kernel/sched/fair.c:10417:		sgs->sum_nr_running += nr_running;
kernel/sched/fair.c-10418-
--
kernel/sched/fair.c=10713=static inline void update_sg_wakeup_stats(struct sched_domain *sd,
--
kernel/sched/fair.c-10733-		local = task_running_on_cpu(i, p);
kernel/sched/fair.c:10734:		sgs->sum_h_nr_running += rq->cfs.h_nr_runnable - local;
kernel/sched/fair.c-10735-
kernel/sched/fair.c:10736:		nr_running = rq->nr_running - local;
kernel/sched/fair.c:10737:		sgs->sum_nr_running += nr_running;
kernel/sched/fair.c-10738-
--
kernel/sched/fair.c=11339=static struct sched_group *sched_balance_find_src_group(struct lb_env *env)
--
kernel/sched/fair.c-11455-
kernel/sched/fair.c:11456:		if (busiest->sum_h_nr_running == 1) {
kernel/sched/fair.c-11457-			/*
--
kernel/sched/fair.c=11477=static struct rq *sched_balance_find_src_rq(struct lb_env *env,
--
kernel/sched/fair.c-11514-
kernel/sched/fair.c:11515:		nr_running = rq->cfs.h_nr_runnable;
kernel/sched/fair.c-11516-		if (!nr_running)
--
kernel/sched/fair.c-11528-		    !capacity_greater(capacity_of(env->dst_cpu), capacity) &&
kernel/sched/fair.c:11529:		    nr_running == 1)
kernel/sched/fair.c-11530-			continue;
--
kernel/sched/fair.c-11538-		 */
kernel/sched/fair.c:11539:		if (sched_asym(env->sd, i, env->dst_cpu) && nr_running == 1)
kernel/sched/fair.c-11540-			continue;
--
kernel/sched/fair.c-11549-
kernel/sched/fair.c:11550:			if (nr_running == 1 && load > env->imbalance &&
kernel/sched/fair.c-11551-			    !check_cpu_capacity(rq, env->sd))
--
kernel/sched/rt.c=1175=void inc_rt_tasks(struct sched_rt_entity *rt_se, struct rt_rq *rt_rq)
--
kernel/sched/rt.c-1179-	WARN_ON(!rt_prio(prio));
kernel/sched/rt.c:1180:	rt_rq->rt_nr_running += rt_se_nr_running(rt_se);
kernel/sched/rt.c:1181:	rt_rq->rr_nr_running += rt_se_rr_nr_running(rt_se);
kernel/sched/rt.c-1182-
--
kernel/sched/rt.c=1188=void dec_rt_tasks(struct sched_rt_entity *rt_se, struct rt_rq *rt_rq)
--
kernel/sched/rt.c-1191-	WARN_ON(!rt_rq->rt_nr_running);
kernel/sched/rt.c:1192:	rt_rq->rt_nr_running -= rt_se_nr_running(rt_se);
kernel/sched/rt.c:1193:	rt_rq->rr_nr_running -= rt_se_rr_nr_running(rt_se);
kernel/sched/rt.c-1194-
--
kernel/sched/rt.c=1378=static void dequeue_rt_stack(struct sched_rt_entity *rt_se, unsigned int flags)
--
kernel/sched/rt.c-1387-
kernel/sched/rt.c:1388:	rt_nr_running = rt_rq_of_se(back)->rt_nr_running;
kernel/sched/rt.c-1389-
--
kernel/sched/sched.h=2919=static inline void add_nr_running(struct rq *rq, unsigned count)
--
kernel/sched/sched.h-2922-
kernel/sched/sched.h:2923:	rq->nr_running = prev_nr + count;
kernel/sched/sched.h-2924-	if (trace_sched_update_nr_running_tp_enabled()) {
--
kernel/sched/sched.h=2934=static inline void sub_nr_running(struct rq *rq, unsigned count)
kernel/sched/sched.h-2935-{
kernel/sched/sched.h:2936:	rq->nr_running -= count;
kernel/sched/sched.h-2937-	if (trace_sched_update_nr_running_tp_enabled()) {
--
kernel/sched/syscalls.c=1374=int __sched yield_to(struct task_struct *p, bool preempt)
--
kernel/sched/syscalls.c-1389-		 */
kernel/sched/syscalls.c:1390:		if (rq->nr_running == 1 && p_rq->nr_running == 1)
kernel/sched/syscalls.c-1391-			return -ESRCH;
--
kernel/workqueue.c=975=static inline void worker_set_flags(struct worker *worker, unsigned int flags)
--
kernel/workqueue.c-983-	    !(worker->flags & WORKER_NOT_RUNNING)) {
kernel/workqueue.c:984:		pool->nr_running--;
kernel/workqueue.c-985-	}
--
kernel/workqueue.c=997=static inline void worker_clr_flags(struct worker *worker, unsigned int flags)
--
kernel/workqueue.c-1012-		if (!(worker->flags & WORKER_NOT_RUNNING))
kernel/workqueue.c:1013:			pool->nr_running++;
kernel/workqueue.c-1014-}
--
kernel/workqueue.c=1404=void wq_worker_running(struct task_struct *task)
--
kernel/workqueue.c-1413-	 * and the nr_running increment below, we may ruin the nr_running reset
kernel/workqueue.c:1414:	 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
kernel/workqueue.c-1415-	 * pool. Protect against such race.
--
kernel/workqueue.c-1418-	if (!(worker->flags & WORKER_NOT_RUNNING))
kernel/workqueue.c:1419:		worker->pool->nr_running++;
kernel/workqueue.c-1420-	preempt_enable();
--
kernel/workqueue.c=1438=void wq_worker_sleeping(struct task_struct *task)
--
kernel/workqueue.c-1469-
kernel/workqueue.c:1470:	pool->nr_running--;
kernel/workqueue.c-1471-	if (kick_pool(pool))
--
kernel/workqueue.c=6598=static void unbind_workers(int cpu)
--
kernel/workqueue.c-6627-		 */
kernel/workqueue.c:6628:		pool->nr_running = 0;
kernel/workqueue.c-6629-
--
tools/accounting/delaytop.c=805=static void get_container_stats(void)
--
tools/accounting/delaytop.c-853-			container_stats.nr_sleeping = stats.nr_sleeping;
tools/accounting/delaytop.c:854:			container_stats.nr_running = stats.nr_running;
tools/accounting/delaytop.c-855-			container_stats.nr_stopped = stats.nr_stopped;
]

21/2 2026/02/24 19:12 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 31809
							output: 80
							thoughts: 139
						

Thoughts:
**Analyzing Workqueue Concurrency in the Kernel**

Okay, so I'm diving into the concurrency management within the kernel's workqueue implementation, specifically looking at `kernel/workqueue.c`. I need to grasp how the `nr_running` counter is managed, as it's crucial for understanding workqueue parallelism and potential race conditions.

From a quick scan, the key functions that seem relevant are `worker_set_flags`, `worker_clr_flags`, `wq_worker_running`, `wq_worker_sleeping`, and `unbind_workers`. Each of these manipulates `nr_running`, and the logic around those functions will need careful review.

Specifically, I need to see how `worker_set_flags` interacts with `WORKER_NOT_RUNNING`, decrementing `nr_running` if it's set. And similarly, I need to understand what happens in `worker_clr_flags` when `WORKER_NOT_RUNNING` is cleared, where `nr_running` gets incremented. The interactions of `wq_worker_running`, which increments `nr_running`, and `wq_worker_sleeping`, which decrements it, are also obviously important. Finally, I'll examine the behavior of `unbind_workers`, and how it directly sets `nr_running` to zero.

Alright, let's start by digging into `worker_set_flags` and `worker_clr_flags` in more detail. This seems like the most logical starting point for understanding how the state transitions are handled.



22/2 2026/02/24 19:12 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:worker_set_flags]

Results:
map[SourceCode: 968:	/**
 969:	 * worker_set_flags - set worker flags and adjust nr_running accordingly
 970:	 * @worker: self
 971:	 * @flags: flags to set
 972:	 *
 973:	 * Set @flags in @worker->flags and adjust nr_running accordingly.
 974:	 */
 975:	static inline void worker_set_flags(struct worker *worker, unsigned int flags)
 976:	{
 977:		struct worker_pool *pool = worker->pool;
 978:	
 979:		lockdep_assert_held(&pool->lock);
 980:	
 981:		/* If transitioning into NOT_RUNNING, adjust nr_running. */
 982:		if ((flags & WORKER_NOT_RUNNING) &&
 983:		    !(worker->flags & WORKER_NOT_RUNNING)) {
 984:			pool->nr_running--;
 985:		}
 986:	
 987:		worker->flags |= flags;
 988:	}
 SourceFile:kernel/workqueue.c]

23/2 2026/02/24 19:12 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:worker_clr_flags]

Results:
map[SourceCode: 990:	/**
 991:	 * worker_clr_flags - clear worker flags and adjust nr_running accordingly
 992:	 * @worker: self
 993:	 * @flags: flags to clear
 994:	 *
 995:	 * Clear @flags in @worker->flags and adjust nr_running accordingly.
 996:	 */
 997:	static inline void worker_clr_flags(struct worker *worker, unsigned int flags)
 998:	{
 999:		struct worker_pool *pool = worker->pool;
1000:		unsigned int oflags = worker->flags;
1001:	
1002:		lockdep_assert_held(&pool->lock);
1003:	
1004:		worker->flags &= ~flags;
1005:	
1006:		/*
1007:		 * If transitioning out of NOT_RUNNING, increment nr_running.  Note
1008:		 * that the nested NOT_RUNNING is not a noop.  NOT_RUNNING is mask
1009:		 * of multiple flags, not a single flag.
1010:		 */
1011:		if ((flags & WORKER_NOT_RUNNING) && (oflags & WORKER_NOT_RUNNING))
1012:			if (!(worker->flags & WORKER_NOT_RUNNING))
1013:				pool->nr_running++;
1014:	}
 SourceFile:kernel/workqueue.c]

24/2 2026/02/24 19:12 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 33081
							output: 38
							thoughts: 578
						

Thoughts:
**Analyzing Potential Race Conditions in the Workqueue Implementation**

Okay, let's break this down. I'm seeing a potential race condition and need to think this through carefully. From the code analysis, both `worker_set_flags`, `worker_clr_flags`, `wq_worker_sleeping`, and `unbind_workers` are all synchronized by holding the `pool->lock`. The crucial point here is that `wq_worker_running` is *not* holding the `pool->lock`. That immediately raises a red flag. If `wq_worker_running` doesn't hold the lock, it could potentially race with any of the other functions that do.

My initial thought was that a race with `worker_set_flags` could lead to a lost update. However, `wq_worker_running` typically runs on the pool's designated CPU. The question then becomes: does `worker_set_flags` ever run on a *different* CPU? It usually seems to be called by the worker itself, so if the worker is running, it should be on the pool's CPU. That looks safe.

Ah, but *unbind_workers* is called when a CPU goes offline. It runs on a different CPU, not the CPU of the workqueue pool. And `unbind_workers` *does* hold `pool->lock`. Looking at the implementation of `unbind_workers` confirms this. Specifically, line 6628 where it sets `pool->nr_running = 0;`

Now, if `wq_worker_running` is running on the CPU that's being unbound, it could definitely race with `unbind_workers`. The comment in `wq_worker_running` even acknowledges this!

```c
1411:		/*
1412:		 * If preempted by unbind_workers() between the WORKER_NOT_RUNNING check
1413:		 * and the nr_running increment below, we may ruin the nr_running reset
1414:		 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
1415:		 * pool. Protect against such race.
1416:		 */
1417:		preempt_disable();
1418:		if (!(worker->flags & WORKER_NOT_RUNNING))
1419:			worker->pool->nr_running++;
1420:		preempt_enable();
```

The comment mentions a race with `unbind_workers`. The code attempts to protect against it with `preempt_disable()`/`preempt_enable()`. But hang on... `preempt_disable()` on *one* CPU does *not* protect against another CPU holding the `pool->lock`! That's a critical oversight. `unbind_workers` is holding `pool->lock` and modifies `pool->nr_running`, potentially while `wq_worker_running` is also trying to increment it. Therefore, if `wq_worker_running` wants to guard against a race with `unbind_workers`, it would need to hold the `pool->lock`.

Let's drill down on where `unbind_workers` is called from. I'll need to check the call graph to see what's going on with `workqueue_offline_cpu` and `unbind_workers`.



25/2 2026/02/24 19:12 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:unbind_workers]

Results:
map[SourceCode:6598:	static void unbind_workers(int cpu)
6599:	{
6600:		struct worker_pool *pool;
6601:		struct worker *worker;
6602:	
6603:		for_each_cpu_worker_pool(pool, cpu) {
6604:			mutex_lock(&wq_pool_attach_mutex);
6605:			raw_spin_lock_irq(&pool->lock);
6606:	
6607:			/*
6608:			 * We've blocked all attach/detach operations. Make all workers
6609:			 * unbound and set DISASSOCIATED.  Before this, all workers
6610:			 * must be on the cpu.  After this, they may become diasporas.
6611:			 * And the preemption disabled section in their sched callbacks
6612:			 * are guaranteed to see WORKER_UNBOUND since the code here
6613:			 * is on the same cpu.
6614:			 */
6615:			for_each_pool_worker(worker, pool)
6616:				worker->flags |= WORKER_UNBOUND;
6617:	
6618:			pool->flags |= POOL_DISASSOCIATED;
6619:	
6620:			/*
6621:			 * The handling of nr_running in sched callbacks are disabled
6622:			 * now.  Zap nr_running.  After this, nr_running stays zero and
6623:			 * need_more_worker() and keep_working() are always true as
6624:			 * long as the worklist is not empty.  This pool now behaves as
6625:			 * an unbound (in terms of concurrency management) pool which
6626:			 * are served by workers tied to the pool.
6627:			 */
6628:			pool->nr_running = 0;
6629:	
6630:			/*
6631:			 * With concurrency management just turned off, a busy
6632:			 * worker blocking could lead to lengthy stalls.  Kick off
6633:			 * unbound chain execution of currently pending work items.
6634:			 */
6635:			kick_pool(pool);
6636:	
6637:			raw_spin_unlock_irq(&pool->lock);
6638:	
6639:			for_each_pool_worker(worker, pool)
6640:				unbind_worker(worker);
6641:	
6642:			mutex_unlock(&wq_pool_attach_mutex);
6643:		}
6644:	}
 SourceFile:kernel/workqueue.c]

26/2 2026/02/24 19:12 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 35140
							output: 39
							thoughts: 1241
						

Thoughts:
**Analyzing a Potential Data Race in the Workqueue Implementation**

Okay, let's break this down. That comment in `unbind_workers`... it's saying the preemption-disabled section in the scheduler callbacks are guaranteed to see `WORKER_UNBOUND` because the code is running on the same CPU. Hmm, that's interesting. I need to make sure I understand that. `unbind_workers(int cpu)` is called from `workqueue_offline_cpu(unsigned int cpu)`. Right. And those CPU hotplug callbacks are called on the target CPU, usually. So, if `unbind_workers` runs on the CPU that's going offline, it's serialized with the scheduler on that same CPU. The critical part is that `wq_worker_running` is called from `schedule()`.

So, if `unbind_workers` is on the same CPU, then `preempt_disable()` in `wq_worker_running` prevents `unbind_workers` from running on that CPU while `wq_worker_running` is in its critical section. But the KCSAN report is actually flagging a data race between `wq_worker_running` and `kick_pool`.

Now, `kick_pool` is called from `__queue_work`, which means it could be on a *different* CPU. And crucially, `kick_pool` *does* hold `pool->lock`, whereas `wq_worker_running` *doesn't*. That's the key.

So, here's the scenario: `kick_pool` on CPU 1 could be reading `pool->nr_running` while `wq_worker_running` on CPU 0 is incrementing it. I need to figure out if that's harmful.

`pool->nr_running` is an `int`. The increment is atomic on x86 for 4-byte reads and writes. KCSAN is reporting a read-write race, but it's an integer. If `kick_pool` sees a value that's being modified, it might see: the old value, the new value, or some intermediate value. Let's see...

If it sees the old value (0), it wakes up a worker, but since an increment is already in progress, it just wakes up an *extra* worker. That's a minor performance hit at worst. If it sees the new value (1), it doesn't wake a worker, which is fine because the worker that just incremented the counter is about to run. So the race is likely benign in terms of the logic.

But, I need to consider other risks. What if the value is corrupted? Since there is only one writer at any time, other than the problematic `wq_worker_running` on the same CPU, all other modifications should be protected by `pool->lock` AND happen on the pool's CPU.

Wait, `worker_set_flags` and `worker_clr_flags` hold `pool->lock`. Are they always called on the local CPU? Usually yes, because they are called by the worker itself, `wq_worker_sleeping` is called from `schedule()` on the local CPU, and `unbind_workers` is called on the local CPU. So all writes to `nr_running` should happen on the pool's CPU. Then they are serialized. The only thing that can happen is a read from another CPU (like in `kick_pool`).

Wait, `kick_pool` also calls `need_more_worker`, which reads `nr_running`. And `kick_pool` has `pool->lock` but `wq_worker_running` doesn't.

If `wq_worker_running` is the ONLY thing that doesn't take the lock, and it only runs on the local CPU, and all other writers also run on the local CPU, then all the writes are serialized.

But is that true? Let's check:
- `worker_set_flags`/`worker_clr_flags` are used in `worker_thread`, `process_one_work`, etc. They run on the worker which is bound to a CPU.
- `wq_worker_sleeping` is called from `schedule()` on the local CPU.
- `unbind_workers` is called on the local CPU.

Ah, but what about `rebind_workers`? That's a possible hole in the logic. I need to go look into that...



27/2 2026/02/24 19:12 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:rebind_workers]

Results:
map[SourceCode:6646:	/**
6647:	 * rebind_workers - rebind all workers of a pool to the associated CPU
6648:	 * @pool: pool of interest
6649:	 *
6650:	 * @pool->cpu is coming online.  Rebind all workers to the CPU.
6651:	 */
6652:	static void rebind_workers(struct worker_pool *pool)
6653:	{
6654:		struct worker *worker;
6655:	
6656:		lockdep_assert_held(&wq_pool_attach_mutex);
6657:	
6658:		/*
6659:		 * Restore CPU affinity of all workers.  As all idle workers should
6660:		 * be on the run-queue of the associated CPU before any local
6661:		 * wake-ups for concurrency management happen, restore CPU affinity
6662:		 * of all workers first and then clear UNBOUND.  As we're called
6663:		 * from CPU_ONLINE, the following shouldn't fail.
6664:		 */
6665:		for_each_pool_worker(worker, pool) {
6666:			kthread_set_per_cpu(worker->task, pool->cpu);
6667:			WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task,
6668:							  pool_allowed_cpus(pool)) < 0);
6669:		}
6670:	
6671:		raw_spin_lock_irq(&pool->lock);
6672:	
6673:		pool->flags &= ~POOL_DISASSOCIATED;
6674:	
6675:		for_each_pool_worker(worker, pool) {
6676:			unsigned int worker_flags = worker->flags;
6677:	
6678:			/*
6679:			 * We want to clear UNBOUND but can't directly call
6680:			 * worker_clr_flags() or adjust nr_running.  Atomically
6681:			 * replace UNBOUND with another NOT_RUNNING flag REBOUND.
6682:			 * @worker will clear REBOUND using worker_clr_flags() when
6683:			 * it initiates the next execution cycle thus restoring
6684:			 * concurrency management.  Note that when or whether
6685:			 * @worker clears REBOUND doesn't affect correctness.
6686:			 *
6687:			 * WRITE_ONCE() is necessary because @worker->flags may be
6688:			 * tested without holding any lock in
6689:			 * wq_worker_running().  Without it, NOT_RUNNING test may
6690:			 * fail incorrectly leading to premature concurrency
6691:			 * management operations.
6692:			 */
6693:			WARN_ON_ONCE(!(worker_flags & WORKER_UNBOUND));
6694:			worker_flags |= WORKER_REBOUND;
6695:			worker_flags &= ~WORKER_UNBOUND;
6696:			WRITE_ONCE(worker->flags, worker_flags);
6697:		}
6698:	
6699:		raw_spin_unlock_irq(&pool->lock);
6700:	}
 SourceFile:kernel/workqueue.c]

28/2 2026/02/24 19:12 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 38258
							output: 40
							thoughts: 2233
						

Thoughts:
**Workqueue Concurrency Analysis**

Okay, let's break this down. `rebind_workers` sidesteps `nr_running`, so that's a non-issue. The initial hypothesis seems correct: writes to `nr_running` happen on the pool's CPU, thanks to the scheduling interaction with `wq_worker_running`. Since `wq_worker_running` is called from `schedule()`, the operations on `nr_running` should be serialized on a given CPU.

Now, that brings up a point – what if `wq_worker_running` gets called for an unbound worker?  Ah, right. If a worker is unbound, `WORKER_NOT_RUNNING` is set, so the increment to `nr_running` is skipped.  So, `nr_running` *only* tracks bound workers, and those are pinned to their CPU. That's good; it confirms the serialization on the designated CPU.

The potential race is only with a *reader* on another CPU. And, as we've established, the impact of such a race in `kick_pool` seems benign.

Let's hunt for other readers of `nr_running`. The main one seems to be `need_more_worker`, which is related to `kick_pool`. And `keep_working` is another, called from `worker_thread`.

Okay, here's a wrinkle:  `wq_worker_running` increments `nr_running`.  Is that atomic?  On x86, a 32-bit read/write is atomic if aligned, and `nr_running` is an `int`.  So, the increment itself (`add [mem], 1`) should be atomic. The memory location will either have the old value or the new value at any point in time. Granted, the compiler could potentially optimize this if `nr_running` wasn't marked `volatile`, but in this simple case that's not a concern. And, while the workqueue code uses `READ_ONCE`/`WRITE_ONCE` in places, it doesn't do so for `nr_running` in `wq_worker_running`.

Let's confirm: other readers.  `need_more_worker` is called by `kick_pool`, which *holds* the lock.  So, we still have that race between the `kick_pool` reader and the `wq_worker_running` increment. That's the crux.

And that leads to the question of why `wq_worker_running` *doesn't* hold the lock. The comment says it's to protect against `unbind_workers`. But `unbind_workers` *also* holds the lock! If `wq_worker_running` held the lock, it would be safe against both.  So, why not? Probably performance. `wq_worker_running` is called on *every* worker wakeup. Then again, `wq_worker_sleeping` *does* hold the lock for the decrement. Odd. Perhaps it's just the frequency of the call: one is on wake up and the other is on sleep.

Hey, I've seen a similar KCSAN report before. These issues are generally considered benign if the worst consequence is a redundant wakeup, and that's the likely scenario.

Let's re-examine `need_more_worker`. If `nr_running` is 0, it returns true, leading to another worker being kicked. If `wq_worker_running` is *about* to increment to 1, `need_more_worker` might see 0 and wake up an extra worker.  Two workers, same CPU, serialized by the scheduler. An extra worker might cause extra wake up. This is not terrible, it is something concurrency is designed to handle.

Could `nr_running` somehow go negative? No. Increments and decrements are balanced for each worker, and all happen on the same CPU, so they are serialized.

The real issue is that `nr_running` is modified by the local CPU. The only concern is other CPUs seeing a stale value. If CPU 1 sees a stale value of `pool->nr_running` (belonging to CPU 0), it can make a "wrong" decision in `kick_pool`.

An incorrect decision is either waking up an extra worker or not waking up one when needed. But, if a worker is woken up when the value is still 0, that's just an extra wakeup, the other worker will be scheduled after. It should still be safe.

What about a decrement in `wq_worker_sleeping` (which *holds* the lock) racing with `kick_pool`? If `kick_pool` *also* holds the lock, so it'll see the consistent value


29/2 2026/02/24 19:13 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:init_worker_pool]

Results:
map[SourceCode:4836:	/**
4837:	 * init_worker_pool - initialize a newly zalloc'd worker_pool
4838:	 * @pool: worker_pool to initialize
4839:	 *
4840:	 * Initialize a newly zalloc'd @pool.  It also allocates @pool->attrs.
4841:	 *
4842:	 * Return: 0 on success, -errno on failure.  Even on failure, all fields
4843:	 * inside @pool proper are initialized and put_unbound_pool() can be called
4844:	 * on @pool safely to release it.
4845:	 */
4846:	static int init_worker_pool(struct worker_pool *pool)
4847:	{
4848:		raw_spin_lock_init(&pool->lock);
4849:		pool->id = -1;
4850:		pool->cpu = -1;
4851:		pool->node = NUMA_NO_NODE;
4852:		pool->flags |= POOL_DISASSOCIATED;
4853:		pool->watchdog_ts = jiffies;
4854:		INIT_LIST_HEAD(&pool->worklist);
4855:		INIT_LIST_HEAD(&pool->idle_list);
4856:		hash_init(pool->busy_hash);
4857:	
4858:		timer_setup(&pool->idle_timer, idle_worker_timeout, TIMER_DEFERRABLE);
4859:		INIT_WORK(&pool->idle_cull_work, idle_cull_fn);
4860:	
4861:		timer_setup(&pool->mayday_timer, pool_mayday_timeout, 0);
4862:	
4863:		INIT_LIST_HEAD(&pool->workers);
4864:	
4865:		ida_init(&pool->worker_ida);
4866:		INIT_HLIST_NODE(&pool->hash_node);
4867:		pool->refcnt = 1;
4868:	#ifdef CONFIG_PREEMPT_RT
4869:		spin_lock_init(&pool->cb_lock);
4870:	#endif
4871:	
4872:		/* shouldn't fail above this point */
4873:		pool->attrs = alloc_workqueue_attrs();
4874:		if (!pool->attrs)
4875:			return -ENOMEM;
4876:	
4877:		wqattrs_clear_for_pool(pool->attrs);
4878:	
4879:		return 0;
4880:	}
 SourceFile:kernel/workqueue.c]

30/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 42282
							output: 33
							thoughts: 221
						

Thoughts:
**Analyzing the Race Condition in the Workqueue Worker Count**

Okay, so I'm looking at this workqueue implementation, and initially, `nr_running` is zalloc'd, meaning it starts at zero – that's straightforward. The race condition seems to be between two key functions: `wq_worker_running`, which, based on the code, doesn't utilize a lock and is local to the CPU, and `kick_pool`, which does hold a lock and can run on any CPU. We concluded this race condition is benign, but I need to make sure.

Hold on, before I definitively close the book on this, let me quickly double-check where `nr_running` is used throughout the code. It seems it's crucial for determining if we need to spawn more workers. If the count is slightly off, we might temporarily end up with too many or too few workers. However, it's only off during this very brief window while `wq_worker_running` is executing. Besides this it's self-correcting. So, even though it's potentially off for a tiny window of time, and then it is corrected, it's probably acceptable.

Now, I'm thinking about memory consistency. Could there be any risk of "load tearing" or "store tearing"? Since this is running on an x86 platform, 32-bit aligned accesses are atomic. `nr_running` is an `int` within a struct. Structs usually align members for optimal performance. Let's make sure the layout of the struct is what I expect. I'll quickly check the struct definition, just to be sure.



31/2 2026/02/24 19:13 tool codesearch-struct-layout
0m Args:
map[ContextFile:kernel/workqueue.c Name:worker_pool]

Results:
map[Fields:[map[Name:lock OffsetBits:0 SizeBits:32] map[Name:cpu OffsetBits:32 SizeBits:32] map[Name:node OffsetBits:64 SizeBits:32] map[Name:id OffsetBits:96 SizeBits:32] map[Name:flags OffsetBits:128 SizeBits:32] map[Name:watchdog_ts OffsetBits:192 SizeBits:64] map[Name:cpu_stall OffsetBits:256 SizeBits:8] map[Name:nr_running OffsetBits:288 SizeBits:32] map[Name:worklist OffsetBits:320 SizeBits:128] map[Name:nr_workers OffsetBits:448 SizeBits:32] map[Name:nr_idle OffsetBits:480 SizeBits:32] map[Name:idle_list OffsetBits:512 SizeBits:128] map[Name:idle_timer OffsetBits:640 SizeBits:320] map[Name:idle_cull_work OffsetBits:960 SizeBits:256] map[Name:mayday_timer OffsetBits:1216 SizeBits:320] map[Name:busy_hash OffsetBits:1536 SizeBits:4096] map[Name:manager OffsetBits:5632 SizeBits:64] map[Name:workers OffsetBits:5696 SizeBits:128] map[Name:worker_ida OffsetBits:5824 SizeBits:128] map[Name:attrs OffsetBits:5952 SizeBits:64] map[Name:hash_node OffsetBits:6016 SizeBits:128] map[Name:refcnt OffsetBits:6144 SizeBits:32] map[Name:rcu OffsetBits:6208 SizeBits:128]]]

32/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 43383
							output: 19
							thoughts: 324
						

Thoughts:
**Analyzing the `nr_running` Variable in Kernel Workqueue**

Okay, let's break this down. First, I see that `nr_running` is located at an offset of 36 bytes, or 288 bits, which means it's 4-byte aligned. On x86, that means we're dealing with an atomic 4-byte operation. That's a good starting point.

But then, the report provides critical context: it shows a read-write operation to address `0xffff888237c2a8a4` of 4 bytes by task 13651 on cpu 0, and then a read from a different task (11146 on cpu 1) at the *same* address, also reading 4 bytes. Crucially, the *value* changes from 0 to 1. This confirms that this register being a 0 to 1 transition is the key behavior that we are observing, which also means it is probably the correct register we are examining.

From here, I know that if `kick_pool` reads a 0, it wakes up a worker. Conversely, reading a 1 means it *doesn't* wake a worker. Both behaviors are fine.

However, I need to consider potential side effects of `nr_running` being 0. That's a crucial consideration. Let's see... in the `need_more_worker` function, the following condition is checked:

```c
 937:		return !list_empty(&pool->worklist) && !pool->nr_running;
```

If that returns true, `kick_pool` will be called. I'll need to remember that.

To be comprehensive, I need to check all other uses of `nr_running` in the kernel. I'll search `kernel/workqueue.c` to identify any other scenarios where `nr_running` influences behavior. Understanding all the call paths is essential here to grasp any possible race conditions or other issues.



33/2 2026/02/24 19:13 tool grepper
0m Args:
map[Expression:pool->nr_running]

Results:
map[Output:kernel/workqueue.c=935=static bool need_more_worker(struct worker_pool *pool)
kernel/workqueue.c-936-{
kernel/workqueue.c:937:	return !list_empty(&pool->worklist) && !pool->nr_running;
kernel/workqueue.c-938-}
--
kernel/workqueue.c=947=static bool keep_working(struct worker_pool *pool)
kernel/workqueue.c-948-{
kernel/workqueue.c:949:	return !list_empty(&pool->worklist) && (pool->nr_running <= 1);
kernel/workqueue.c-950-}
--
kernel/workqueue.c=975=static inline void worker_set_flags(struct worker *worker, unsigned int flags)
--
kernel/workqueue.c-983-	    !(worker->flags & WORKER_NOT_RUNNING)) {
kernel/workqueue.c:984:		pool->nr_running--;
kernel/workqueue.c-985-	}
--
kernel/workqueue.c=997=static inline void worker_clr_flags(struct worker *worker, unsigned int flags)
--
kernel/workqueue.c-1012-		if (!(worker->flags & WORKER_NOT_RUNNING))
kernel/workqueue.c:1013:			pool->nr_running++;
kernel/workqueue.c-1014-}
--
kernel/workqueue.c=1035=static void worker_enter_idle(struct worker *worker)
--
kernel/workqueue.c-1055-	/* Sanity check nr_running. */
kernel/workqueue.c:1056:	WARN_ON_ONCE(pool->nr_workers == pool->nr_idle && pool->nr_running);
kernel/workqueue.c-1057-}
--
kernel/workqueue.c=1404=void wq_worker_running(struct task_struct *task)
--
kernel/workqueue.c-1413-	 * and the nr_running increment below, we may ruin the nr_running reset
kernel/workqueue.c:1414:	 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
kernel/workqueue.c-1415-	 * pool. Protect against such race.
--
kernel/workqueue.c-1418-	if (!(worker->flags & WORKER_NOT_RUNNING))
kernel/workqueue.c:1419:		worker->pool->nr_running++;
kernel/workqueue.c-1420-	preempt_enable();
--
kernel/workqueue.c=1438=void wq_worker_sleeping(struct task_struct *task)
--
kernel/workqueue.c-1469-
kernel/workqueue.c:1470:	pool->nr_running--;
kernel/workqueue.c-1471-	if (kick_pool(pool))
--
kernel/workqueue.c=1484=void wq_worker_tick(struct task_struct *task)
--
kernel/workqueue.c-1504-	 * switching out voluntarily and won't be contributing to
kernel/workqueue.c:1505:	 * @pool->nr_running until it wakes up. As wq_worker_sleeping() also
kernel/workqueue.c-1506-	 * decrements ->nr_running, setting CPU_INTENSIVE here can lead to
--
kernel/workqueue.c=6598=static void unbind_workers(int cpu)
--
kernel/workqueue.c-6627-		 */
kernel/workqueue.c:6628:		pool->nr_running = 0;
kernel/workqueue.c-6629-
]

34/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 45119
							output: 40
							thoughts: 210
						

Thoughts:
**Analyzing a Potential Race Condition in the Worker Queue**

Okay, so I'm looking at this `worker_enter_idle` function and I see this sanity check: `WARN_ON_ONCE(pool->nr_workers == pool->nr_idle && pool->nr_running);`. It's designed to catch an impossible state. The comment makes it sound like we're expecting `nr_workers` to equal `nr_idle` and that `nr_running` should always be zero.

The thing that caught my eye is that `worker_enter_idle` is called with the `pool->lock` held. My initial thought was, could a race condition with `wq_worker_running` trigger this warning? But wait, I'm thinking about it now. `worker_enter_idle` is called *by* a worker that's transitioning to an idle state. That worker is currently running, so it's executing on a specific CPU. That should mean it's serialized with other operations on that same CPU. So it should not race.

Okay, so it seems like the only way an inconsistent value for `nr_running` could be seen is by a reader on a different CPU. Let me think, which functions could be readers? I'm not seeing many, but I think the only one I see is `kick_pool`.

Wait a second, there's the `wq_worker_tick` function, it also mentions `nr_running` in a comment. I better check `wq_worker_tick`.



35/2 2026/02/24 19:13 tool codesearch-definition-source
0m Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:wq_worker_tick]

Results:
map[SourceCode:1477:	/**
1478:	 * wq_worker_tick - a scheduler tick occurred while a kworker is running
1479:	 * @task: task currently running
1480:	 *
1481:	 * Called from sched_tick(). We're in the IRQ context and the current
1482:	 * worker's fields which follow the 'K' locking rule can be accessed safely.
1483:	 */
1484:	void wq_worker_tick(struct task_struct *task)
1485:	{
1486:		struct worker *worker = kthread_data(task);
1487:		struct pool_workqueue *pwq = worker->current_pwq;
1488:		struct worker_pool *pool = worker->pool;
1489:	
1490:		if (!pwq)
1491:			return;
1492:	
1493:		pwq->stats[PWQ_STAT_CPU_TIME] += TICK_USEC;
1494:	
1495:		if (!wq_cpu_intensive_thresh_us)
1496:			return;
1497:	
1498:		/*
1499:		 * If the current worker is concurrency managed and hogged the CPU for
1500:		 * longer than wq_cpu_intensive_thresh_us, it's automatically marked
1501:		 * CPU_INTENSIVE to avoid stalling other concurrency-managed work items.
1502:		 *
1503:		 * Set @worker->sleeping means that @worker is in the process of
1504:		 * switching out voluntarily and won't be contributing to
1505:		 * @pool->nr_running until it wakes up. As wq_worker_sleeping() also
1506:		 * decrements ->nr_running, setting CPU_INTENSIVE here can lead to
1507:		 * double decrements. The task is releasing the CPU anyway. Let's skip.
1508:		 * We probably want to make this prettier in the future.
1509:		 */
1510:		if ((worker->flags & WORKER_NOT_RUNNING) || READ_ONCE(worker->sleeping) ||
1511:		    worker->task->se.sum_exec_runtime - worker->current_at <
1512:		    wq_cpu_intensive_thresh_us * NSEC_PER_USEC)
1513:			return;
1514:	
1515:		raw_spin_lock(&pool->lock);
1516:	
1517:		worker_set_flags(worker, WORKER_CPU_INTENSIVE);
1518:		wq_cpu_intensive_report(worker->current_func);
1519:		pwq->stats[PWQ_STAT_CPU_INTENSIVE]++;
1520:	
1521:		if (kick_pool(pool))
1522:			pwq->stats[PWQ_STAT_CM_WAKEUP]++;
1523:	
1524:		raw_spin_unlock(&pool->lock);
1525:	}
 SourceFile:kernel/workqueue.c]

36/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 46530
							output: 42
							thoughts: 398
						

Thoughts:
**Analyzing Potential Race Conditions in Workqueue Management**

Okay, so I'm diving into this `wq_worker_tick` function, called from `sched_tick()` – right, on the local CPU. That means it's serialized with `wq_worker_running`, at least in theory, because `wq_worker_running` is called from `schedule()`, and `sched_tick()` won't stomp on `schedule()` on the same CPU, so the variables should be safe. But wait... isn't `sched_tick()` an *interrupt*? That changes everything. Could it interrupt `wq_worker_running`?

I need to see what `wq_worker_running` does. Ah, it calls `preempt_disable()`. I see.

```c
1417:		preempt_disable();
1418:		if (!(worker->flags & WORKER_NOT_RUNNING))
1419:			worker->pool->nr_running++;
1420:		preempt_enable();
```

Okay, so preemption is disabled, preventing context switches on the current CPU, but it *doesn't* disable interrupts. Right, so `wq_worker_tick` *could* interrupt `wq_worker_running`. If that happens, and if that interrupt happens *between* the read and write to `nr_running++` within `wq_worker_running`, that could be a problem. If `wq_worker_tick` then calls `worker_set_flags`, which potentially decrements `nr_running`, we've got a lost update scenario.

Hang on... Let me look at the code. `wq_worker_tick` calls `worker_set_flags(worker, WORKER_CPU_INTENSIVE)`. That's important. I need to see what `WORKER_CPU_INTENSIVE` means.

Let's see... `WORKER_CPU_INTENSIVE` is part of `WORKER_NOT_RUNNING`...

```c
	WORKER_NOT_RUNNING	= WORKER_PREP | WORKER_OFFQ |
				  WORKER_IDLE | WORKER_UNBOUND |
				  WORKER_RESCUER | WORKER_CPU_INTENSIVE,
```

Okay, I need to go look up how `WORKER_NOT_RUNNING` is actually used.



37/2 2026/02/24 19:13 tool codesearch-definition-source
0m Error:
log-in to see details

Args:
map[ContextFile:kernel/workqueue.c IncludeLines:true Name:WORKER_NOT_RUNNING]

Results:
map[SourceCode: SourceFile:]

38/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 47511
							output: 22
							thoughts: 15
						

Thoughts:
Okay, here's my summary, tailored for an expert audience, as if I'm thinking these thoughts:

**Enum Investigation**

Right, my initial hunch is that we're dealing with an enum here. That's a pretty common structure for this kind of scenario, especially when we're seeing these sorts of constraints and enumerated possibilities. Let me just quickly search the codebase and the documentation for any relevant enum declarations. Need to be sure; no point in jumping to a conclusion, however likely. It would be a waste to go down the wrong path when something so straightforward could fix the situation.



39/2 2026/02/24 19:13 tool grepper
0m Error:
log-in to see details

Args:
map[Expression:WORKER_NOT_RUNNING =]

Results:
map[Output:]

40/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 47687
							output: 23
							thoughts: 9
						

Thoughts:
Okay, here's my attempt at summarizing that thought process, keeping in mind I'm speaking to an expert:

**Locating the Enumeration**

Right, let's get down to business. My initial instinct is to track down that enumeration. I need to zero in on it quickly. I'm thinking, "Where would it likely be defined?" Is it in a header file? A configuration file? A database schema? I need to start with the most probable locations and systematically eliminate possibilities. Time is of the essence; I'm looking for the most direct route to the definition. Let's start with a thorough search using the usual suspects...



41/2 2026/02/24 19:13 tool read-file
0m Args:
map[File:kernel/workqueue_internal.h]

Results:
map[Contents:/* SPDX-License-Identifier: GPL-2.0 */
/*
 * kernel/workqueue_internal.h
 *
 * Workqueue internal header file.  Only to be included by workqueue and
 * core kernel subsystems.
 */
#ifndef _KERNEL_WORKQUEUE_INTERNAL_H
#define _KERNEL_WORKQUEUE_INTERNAL_H

#include <linux/workqueue.h>
#include <linux/kthread.h>
#include <linux/preempt.h>

struct worker_pool;

/*
 * The poor guys doing the actual heavy lifting.  All on-duty workers are
 * either serving the manager role, on idle list or on busy hash.  For
 * details on the locking annotation (L, I, X...), refer to workqueue.c.
 *
 * Only to be used in workqueue and async.
 */
struct worker {
	/* on idle list while idle, on busy hash table while busy */
	union {
		struct list_head	entry;	/* L: while idle */
		struct hlist_node	hentry;	/* L: while busy */
	};

	struct work_struct	*current_work;	/* K: work being processed and its */
	work_func_t		current_func;	/* K: function */
	struct pool_workqueue	*current_pwq;	/* K: pwq */
	u64			current_at;	/* K: runtime at start or last wakeup */
	unsigned int		current_color;	/* K: color */

	int			sleeping;	/* S: is worker sleeping? */

	/* used by the scheduler to determine a worker's last known identity */
	work_func_t		last_func;	/* K: last work's fn */

	struct list_head	scheduled;	/* L: scheduled works */

	struct task_struct	*task;		/* I: worker task */
	struct worker_pool	*pool;		/* A: the associated pool */
						/* L: for rescuers */
	struct list_head	node;		/* A: anchored at pool->workers */
						/* A: runs through worker->node */

	unsigned long		last_active;	/* K: last active timestamp */
	unsigned int		flags;		/* L: flags */
	int			id;		/* I: worker id */

	/*
	 * Opaque string set with work_set_desc().  Printed out with task
	 * dump for debugging - WARN, BUG, panic or sysrq.
	 */
	char			desc[WORKER_DESC_LEN];

	/* used only by rescuers to point to the target workqueue */
	struct workqueue_struct	*rescue_wq;	/* I: the workqueue to rescue */
};

/**
 * current_wq_worker - return struct worker if %current is a workqueue worker
 */
static inline struct worker *current_wq_worker(void)
{
	if (in_task() && (current->flags & PF_WQ_WORKER))
		return kthread_data(current);
	return NULL;
}

/*
 * Scheduler hooks for concurrency managed workqueue.  Only to be used from
 * sched/ and workqueue.c.
 */
void wq_worker_running(struct task_struct *task);
void wq_worker_sleeping(struct task_struct *task);
void wq_worker_tick(struct task_struct *task);
work_func_t wq_worker_last_func(struct task_struct *task);

#endif /* _KERNEL_WORKQUEUE_INTERNAL_H */
]

42/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 48690
							output: 21
							thoughts: 19
						

Thoughts:
Here's my thought process, as if I were considering those lines:

**Locating the Kernel Workqueue Flags**

Okay, so I'm trying to track down the definition of the flags used with the workqueue. Let's see... *where* are they declared? That sounds like it would be something core, and I'd typically expect that sort of declaration to be in a core component like the kernel itself. Ah, right, that's it! They're in `kernel/workqueue.c`. Makes sense; that's where the workqueue implementation resides, so the flags would be logically defined there along with the data structures and functions that use them. Good, now I know where to look. I can move on.



43/2 2026/02/24 19:13 tool read-file
0m Args:
map[File:kernel/workqueue.c]

Results:
map[Contents:// SPDX-License-Identifier: GPL-2.0-only
/*
 * kernel/workqueue.c - generic async execution with shared worker pool
 *
 * Copyright (C) 2002		Ingo Molnar
 *
 *   Derived from the taskqueue/keventd code by:
 *     David Woodhouse <dwmw2@infradead.org>
 *     Andrew Morton
 *     Kai Petzke <wpp@marie.physik.tu-berlin.de>
 *     Theodore Ts'o <tytso@mit.edu>
 *
 * Made to use alloc_percpu by Christoph Lameter.
 *
 * Copyright (C) 2010		SUSE Linux Products GmbH
 * Copyright (C) 2010		Tejun Heo <tj@kernel.org>
 *
 * This is the generic async execution mechanism.  Work items as are
 * executed in process context.  The worker pool is shared and
 * automatically managed.  There are two worker pools for each CPU (one for
 * normal work items and the other for high priority ones) and some extra
 * pools for workqueues which are not bound to any specific CPU - the
 * number of these backing pools is dynamic.
 *
 * Please read Documentation/core-api/workqueue.rst for details.
 */

#include <linux/export.h>
#include <linux/kernel.h>
#include <linux/sched.h>
#include <linux/init.h>
#include <linux/interrupt.h>
#include <linux/signal.h>
#include <linux/completion.h>
#include <linux/workqueue.h>
#include <linux/slab.h>
#include <linux/cpu.h>
#include <linux/notifier.h>
#include <linux/kthread.h>
#include <linux/hardirq.h>
#include <linux/mempolicy.h>
#include <linux/freezer.h>
#include <linux/debug_locks.h>
#include <linux/lockdep.h>
#include <linux/idr.h>
#include <linux/jhash.h>
#include <linux/hashtable.h>
#include <linux/rculist.h>
#include <linux/nodemask.h>
#include <linux/moduleparam.h>
#include <linux/uaccess.h>
#include <linux/sched/isolation.h>
#include <linux/sched/debug.h>
#include <linux/nmi.h>
#include <linux/kvm_para.h>
#include <linux/delay.h>
#include <linux/irq_work.h>

#include "workqueue_internal.h"

enum worker_pool_flags {
	/*
	 * worker_pool flags
	 *
	 * A bound pool is either associated or disassociated with its CPU.
	 * While associated (!DISASSOCIATED), all workers are bound to the
	 * CPU and none has %WORKER_UNBOUND set and concurrency management
	 * is in effect.
	 *
	 * While DISASSOCIATED, the cpu may be offline and all workers have
	 * %WORKER_UNBOUND set and concurrency management disabled, and may
	 * be executing on any CPU.  The pool behaves as an unbound one.
	 *
	 * Note that DISASSOCIATED should be flipped only while holding
	 * wq_pool_attach_mutex to avoid changing binding state while
	 * worker_attach_to_pool() is in progress.
	 *
	 * As there can only be one concurrent BH execution context per CPU, a
	 * BH pool is per-CPU and always DISASSOCIATED.
	 */
	POOL_BH			= 1 << 0,	/* is a BH pool */
	POOL_MANAGER_ACTIVE	= 1 << 1,	/* being managed */
	POOL_DISASSOCIATED	= 1 << 2,	/* cpu can't serve workers */
	POOL_BH_DRAINING	= 1 << 3,	/* draining after CPU offline */
};

enum worker_flags {
	/* worker flags */
	WORKER_DIE		= 1 << 1,	/* die die die */
	WORKER_IDLE		= 1 << 2,	/* is idle */
	WORKER_PREP		= 1 << 3,	/* preparing to run works */
	WORKER_CPU_INTENSIVE	= 1 << 6,	/* cpu intensive */
	WORKER_UNBOUND		= 1 << 7,	/* worker is unbound */
	WORKER_REBOUND		= 1 << 8,	/* worker was rebound */

	WORKER_NOT_RUNNING	= WORKER_PREP | WORKER_CPU_INTENSIVE |
				  WORKER_UNBOUND | WORKER_REBOUND,
};

enum work_cancel_flags {
	WORK_CANCEL_DELAYED	= 1 << 0,	/* canceling a delayed_work */
	WORK_CANCEL_DISABLE	= 1 << 1,	/* canceling to disable */
};

enum wq_internal_consts {
	NR_STD_WORKER_POOLS	= 2,		/* # standard pools per cpu */

	UNBOUND_POOL_HASH_ORDER	= 6,		/* hashed by pool->attrs */
	BUSY_WORKER_HASH_ORDER	= 6,		/* 64 pointers */

	MAX_IDLE_WORKERS_RATIO	= 4,		/* 1/4 of busy can be idle */
	IDLE_WORKER_TIMEOUT	= 300 * HZ,	/* keep idle ones for 5 mins */

	MAYDAY_INITIAL_TIMEOUT  = HZ / 100 >= 2 ? HZ / 100 : 2,
						/* call for help after 10ms
						   (min two ticks) */
	MAYDAY_INTERVAL		= HZ / 10,	/* and then every 100ms */
	CREATE_COOLDOWN		= HZ,		/* time to breath after fail */

	RESCUER_BATCH		= 16,		/* process items per turn */

	/*
	 * Rescue workers are used only on emergencies and shared by
	 * all cpus.  Give MIN_NICE.
	 */
	RESCUER_NICE_LEVEL	= MIN_NICE,
	HIGHPRI_NICE_LEVEL	= MIN_NICE,

	WQ_NAME_LEN		= 32,
	WORKER_ID_LEN		= 10 + WQ_NAME_LEN, /* "kworker/R-" + WQ_NAME_LEN */
};

/*
 * We don't want to trap softirq for too long. See MAX_SOFTIRQ_TIME and
 * MAX_SOFTIRQ_RESTART in kernel/softirq.c. These are macros because
 * msecs_to_jiffies() can't be an initializer.
 */
#define BH_WORKER_JIFFIES	msecs_to_jiffies(2)
#define BH_WORKER_RESTARTS	10

/*
 * Structure fields follow one of the following exclusion rules.
 *
 * I: Modifiable by initialization/destruction paths and read-only for
 *    everyone else.
 *
 * P: Preemption protected.  Disabling preemption is enough and should
 *    only be modified and accessed from the local cpu.
 *
 * L: pool->lock protected.  Access with pool->lock held.
 *
 * LN: pool->lock and wq_node_nr_active->lock protected for writes. Either for
 *     reads.
 *
 * K: Only modified by worker while holding pool->lock. Can be safely read by
 *    self, while holding pool->lock or from IRQ context if %current is the
 *    kworker.
 *
 * S: Only modified by worker self.
 *
 * A: wq_pool_attach_mutex protected.
 *
 * PL: wq_pool_mutex protected.
 *
 * PR: wq_pool_mutex protected for writes.  RCU protected for reads.
 *
 * PW: wq_pool_mutex and wq->mutex protected for writes.  Either for reads.
 *
 * PWR: wq_pool_mutex and wq->mutex protected for writes.  Either or
 *      RCU for reads.
 *
 * WQ: wq->mutex protected.
 *
 * WR: wq->mutex protected for writes.  RCU protected for reads.
 *
 * WO: wq->mutex protected for writes. Updated with WRITE_ONCE() and can be read
 *     with READ_ONCE() without locking.
 *
 * MD: wq_mayday_lock protected.
 *
 * WD: Used internally by the watchdog.
 */

/* struct worker is defined in workqueue_internal.h */

struct worker_pool {
	raw_spinlock_t		lock;		/* the pool lock */
	int			cpu;		/* I: the associated cpu */
	int			node;		/* I: the associated node ID */
	int			id;		/* I: pool ID */
	unsigned int		flags;		/* L: flags */

	unsigned long		watchdog_ts;	/* L: watchdog timestamp */
	bool			cpu_stall;	/* WD: stalled cpu bound pool */

	/*
	 * The counter is incremented in a process context on the associated CPU
	 * w/ preemption disabled, and decremented or reset in the same context
	 * but w/ pool->lock held. The readers grab pool->lock and are
	 * guaranteed to see if the counter reached zero.
	 */
	int			nr_running;

	struct list_head	worklist;	/* L: list of pending works */

	int			nr_workers;	/* L: total number of workers */
	int			nr_idle;	/* L: currently idle workers */

	struct list_head	idle_list;	/* L: list of idle workers */
	struct timer_list	idle_timer;	/* L: worker idle timeout */
	struct work_struct      idle_cull_work; /* L: worker idle cleanup */

	struct timer_list	mayday_timer;	  /* L: SOS timer for workers */

	/* a workers is either on busy_hash or idle_list, or the manager */
	DECLARE_HASHTABLE(busy_hash, BUSY_WORKER_HASH_ORDER);
						/* L: hash of busy workers */

	struct worker		*manager;	/* L: purely informational */
	struct list_head	workers;	/* A: attached workers */

	struct ida		worker_ida;	/* worker IDs for task name */

	struct workqueue_attrs	*attrs;		/* I: worker attributes */
	struct hlist_node	hash_node;	/* PL: unbound_pool_hash node */
	int			refcnt;		/* PL: refcnt for unbound pools */
#ifdef CONFIG_PREEMPT_RT
	spinlock_t		cb_lock;	/* BH worker cancel lock */
#endif
	/*
	 * Destruction of pool is RCU protected to allow dereferences
	 * from get_work_pool().
	 */
	struct rcu_head		rcu;
};

/*
 * Per-pool_workqueue statistics. These can be monitored using
 * tools/workqueue/wq_monitor.py.
 */
enum pool_workqueue_stats {
	PWQ_STAT_STARTED,	/* work items started execution */
	PWQ_STAT_COMPLETED,	/* work items completed execution */
	PWQ_STAT_CPU_TIME,	/* total CPU time consumed */
	PWQ_STAT_CPU_INTENSIVE,	/* wq_cpu_intensive_thresh_us violations */
	PWQ_STAT_CM_WAKEUP,	/* concurrency-management worker wakeups */
	PWQ_STAT_REPATRIATED,	/* unbound workers brought back into scope */
	PWQ_STAT_MAYDAY,	/* maydays to rescuer */
	PWQ_STAT_RESCUED,	/* linked work items executed by rescuer */

	PWQ_NR_STATS,
};

/*
 * The per-pool workqueue.  While queued, bits below WORK_PWQ_SHIFT
 * of work_struct->data are used for flags and the remaining high bits
 * point to the pwq; thus, pwqs need to be aligned at two's power of the
 * number of flag bits.
 */
struct pool_workqueue {
	struct worker_pool	*pool;		/* I: the associated pool */
	struct workqueue_struct *wq;		/* I: the owning workqueue */
	int			work_color;	/* L: current color */
	int			flush_color;	/* L: flushing color */
	int			refcnt;		/* L: reference count */
	int			nr_in_flight[WORK_NR_COLORS];
						/* L: nr of in_flight works */
	bool			plugged;	/* L: execution suspended */

	/*
	 * nr_active management and WORK_STRUCT_INACTIVE:
	 *
	 * When pwq->nr_active >= max_active, new work item is queued to
	 * pwq->inactive_works instead of pool->worklist and marked with
	 * WORK_STRUCT_INACTIVE.
	 *
	 * All work items marked with WORK_STRUCT_INACTIVE do not participate in
	 * nr_active and all work items in pwq->inactive_works are marked with
	 * WORK_STRUCT_INACTIVE. But not all WORK_STRUCT_INACTIVE work items are
	 * in pwq->inactive_works. Some of them are ready to run in
	 * pool->worklist or worker->scheduled. Those work itmes are only struct
	 * wq_barrier which is used for flush_work() and should not participate
	 * in nr_active. For non-barrier work item, it is marked with
	 * WORK_STRUCT_INACTIVE iff it is in pwq->inactive_works.
	 */
	int			nr_active;	/* L: nr of active works */
	struct list_head	inactive_works;	/* L: inactive works */
	struct list_head	pending_node;	/* LN: node on wq_node_nr_active->pending_pwqs */
	struct list_head	pwqs_node;	/* WR: node on wq->pwqs */
	struct list_head	mayday_node;	/* MD: node on wq->maydays */
	struct work_struct	mayday_cursor;	/* L: cursor on pool->worklist */

	u64			stats[PWQ_NR_STATS];

	/*
	 * Release of unbound pwq is punted to a kthread_worker. See put_pwq()
	 * and pwq_release_workfn() for details. pool_workqueue itself is also
	 * RCU protected so that the first pwq can be determined without
	 * grabbing wq->mutex.
	 */
	struct kthread_work	release_work;
	struct rcu_head		rcu;
} __aligned(1 << WORK_STRUCT_PWQ_SHIFT);

/*
 * Structure used to wait for workqueue flush.
 */
struct wq_flusher {
	struct list_head	list;		/* WQ: list of flushers */
	int			flush_color;	/* WQ: flush color waiting for */
	struct completion	done;		/* flush completion */
};

struct wq_device;

/*
 * Unlike in a per-cpu workqueue where max_active limits its concurrency level
 * on each CPU, in an unbound workqueue, max_active applies to the whole system.
 * As sharing a single nr_active across multiple sockets can be very expensive,
 * the counting and enforcement is per NUMA node.
 *
 * The following struct is used to enforce per-node max_active. When a pwq wants
 * to start executing a work item, it should increment ->nr using
 * tryinc_node_nr_active(). If acquisition fails due to ->nr already being over
 * ->max, the pwq is queued on ->pending_pwqs. As in-flight work items finish
 * and decrement ->nr, node_activate_pending_pwq() activates the pending pwqs in
 * round-robin order.
 */
struct wq_node_nr_active {
	int			max;		/* per-node max_active */
	atomic_t		nr;		/* per-node nr_active */
	raw_spinlock_t		lock;		/* nests inside pool locks */
	struct list_head	pending_pwqs;	/* LN: pwqs with inactive works */
};

/*
 * The externally visible workqueue.  It relays the issued work items to
 * the appropriate worker_pool through its pool_workqueues.
 */
struct workqueue_struct {
	struct list_head	pwqs;		/* WR: all pwqs of this wq */
	struct list_head	list;		/* PR: list of all workqueues */

	struct mutex		mutex;		/* protects this wq */
	int			work_color;	/* WQ: current work color */
	int			flush_color;	/* WQ: current flush color */
	atomic_t		nr_pwqs_to_flush; /* flush in progress */
	struct wq_flusher	*first_flusher;	/* WQ: first flusher */
	struct list_head	flusher_queue;	/* WQ: flush waiters */
	struct list_head	flusher_overflow; /* WQ: flush overflow list */

	struct list_head	maydays;	/* MD: pwqs requesting rescue */
	struct worker		*rescuer;	/* MD: rescue worker */

	int			nr_drainers;	/* WQ: drain in progress */

	/* See alloc_workqueue() function comment for info on min/max_active */
	int			max_active;	/* WO: max active works */
	int			min_active;	/* WO: min active works */
	int			saved_max_active; /* WQ: saved max_active */
	int			saved_min_active; /* WQ: saved min_active */

	struct workqueue_attrs	*unbound_attrs;	/* PW: only for unbound wqs */
	struct pool_workqueue __rcu *dfl_pwq;   /* PW: only for unbound wqs */

#ifdef CONFIG_SYSFS
	struct wq_device	*wq_dev;	/* I: for sysfs interface */
#endif
#ifdef CONFIG_LOCKDEP
	char			*lock_name;
	struct lock_class_key	key;
	struct lockdep_map	__lockdep_map;
	struct lockdep_map	*lockdep_map;
#endif
	char			name[WQ_NAME_LEN]; /* I: workqueue name */

	/*
	 * Destruction of workqueue_struct is RCU protected to allow walking
	 * the workqueues list without grabbing wq_pool_mutex.
	 * This is used to dump all workqueues from sysrq.
	 */
	struct rcu_head		rcu;

	/* hot fields used during command issue, aligned to cacheline */
	unsigned int		flags ____cacheline_aligned; /* WQ: WQ_* flags */
	struct pool_workqueue __rcu * __percpu *cpu_pwq; /* I: per-cpu pwqs */
	struct wq_node_nr_active *node_nr_active[]; /* I: per-node nr_active */
};

/*
 * Each pod type describes how CPUs should be grouped for unbound workqueues.
 * See the comment above workqueue_attrs->affn_scope.
 */
struct wq_pod_type {
	int			nr_pods;	/* number of pods */
	cpumask_var_t		*pod_cpus;	/* pod -> cpus */
	int			*pod_node;	/* pod -> node */
	int			*cpu_pod;	/* cpu -> pod */
};

struct work_offq_data {
	u32			pool_id;
	u32			disable;
	u32			flags;
};

static const char *wq_affn_names[WQ_AFFN_NR_TYPES] = {
	[WQ_AFFN_DFL]		= "default",
	[WQ_AFFN_CPU]		= "cpu",
	[WQ_AFFN_SMT]		= "smt",
	[WQ_AFFN_CACHE]		= "cache",
	[WQ_AFFN_NUMA]		= "numa",
	[WQ_AFFN_SYSTEM]	= "system",
};

/*
 * Per-cpu work items which run for longer than the following threshold are
 * automatically considered CPU intensive and excluded from concurrency
 * management to prevent them from noticeably delaying other per-cpu work items.
 * ULONG_MAX indicates that the user hasn't overridden it with a boot parameter.
 * The actual value is initialized in wq_cpu_intensive_thresh_init().
 */
static unsigned long wq_cpu_intensive_thresh_us = ULONG_MAX;
module_param_named(cpu_intensive_thresh_us, wq_cpu_intensive_thresh_us, ulong, 0644);
#ifdef CONFIG_WQ_CPU_INTENSIVE_REPORT
static unsigned int wq_cpu_intensive_warning_thresh = 4;
module_param_named(cpu_intensive_warning_thresh, wq_cpu_intensive_warning_thresh, uint, 0644);
#endif

/* see the comment above the definition of WQ_POWER_EFFICIENT */
static bool wq_power_efficient = IS_ENABLED(CONFIG_WQ_POWER_EFFICIENT_DEFAULT);
module_param_named(power_efficient, wq_power_efficient, bool, 0444);

static bool wq_online;			/* can kworkers be created yet? */
static bool wq_topo_initialized __read_mostly = false;

static struct kmem_cache *pwq_cache;

static struct wq_pod_type wq_pod_types[WQ_AFFN_NR_TYPES];
static enum wq_affn_scope wq_affn_dfl = WQ_AFFN_CACHE;

/* buf for wq_update_unbound_pod_attrs(), protected by CPU hotplug exclusion */
static struct workqueue_attrs *unbound_wq_update_pwq_attrs_buf;

static DEFINE_MUTEX(wq_pool_mutex);	/* protects pools and workqueues list */
static DEFINE_MUTEX(wq_pool_attach_mutex); /* protects worker attach/detach */
static DEFINE_RAW_SPINLOCK(wq_mayday_lock);	/* protects wq->maydays list */
/* wait for manager to go away */
static struct rcuwait manager_wait = __RCUWAIT_INITIALIZER(manager_wait);

static LIST_HEAD(workqueues);		/* PR: list of all workqueues */
static bool workqueue_freezing;		/* PL: have wqs started freezing? */

/* PL: mirror the cpu_online_mask excluding the CPU in the midst of hotplugging */
static cpumask_var_t wq_online_cpumask;

/* PL&A: allowable cpus for unbound wqs and work items */
static cpumask_var_t wq_unbound_cpumask;

/* PL: user requested unbound cpumask via sysfs */
static cpumask_var_t wq_requested_unbound_cpumask;

/* PL: isolated cpumask to be excluded from unbound cpumask */
static cpumask_var_t wq_isolated_cpumask;

/* for further constrain wq_unbound_cpumask by cmdline parameter*/
static struct cpumask wq_cmdline_cpumask __initdata;

/* CPU where unbound work was last round robin scheduled from this CPU */
static DEFINE_PER_CPU(int, wq_rr_cpu_last);

/*
 * Local execution of unbound work items is no longer guaranteed.  The
 * following always forces round-robin CPU selection on unbound work items
 * to uncover usages which depend on it.
 */
#ifdef CONFIG_DEBUG_WQ_FORCE_RR_CPU
static bool wq_debug_force_rr_cpu = true;
#else
static bool wq_debug_force_rr_cpu = false;
#endif
module_param_named(debug_force_rr_cpu, wq_debug_force_rr_cpu, bool, 0644);

/* to raise softirq for the BH worker pools on other CPUs */
static DEFINE_PER_CPU_SHARED_ALIGNED(struct irq_work [NR_STD_WORKER_POOLS], bh_pool_irq_works);

/* the BH worker pools */
static DEFINE_PER_CPU_SHARED_ALIGNED(struct worker_pool [NR_STD_WORKER_POOLS], bh_worker_pools);

/* the per-cpu worker pools */
static DEFINE_PER_CPU_SHARED_ALIGNED(struct worker_pool [NR_STD_WORKER_POOLS], cpu_worker_pools);

static DEFINE_IDR(worker_pool_idr);	/* PR: idr of all pools */

/* PL: hash of all unbound pools keyed by pool->attrs */
static DEFINE_HASHTABLE(unbound_pool_hash, UNBOUND_POOL_HASH_ORDER);

/* I: attributes used when instantiating standard unbound pools on demand */
static struct workqueue_attrs *unbound_std_wq_attrs[NR_STD_WORKER_POOLS];

/* I: attributes used when instantiating ordered pools on demand */
static struct workqueue_attrs *ordered_wq_attrs[NR_STD_WORKER_POOLS];

/*
 * I: kthread_worker to release pwq's. pwq release needs to be bounced to a
 * process context while holding a pool lock. Bounce to a dedicated kthread
 * worker to avoid A-A deadlocks.
 */
static struct kthread_worker *pwq_release_worker __ro_after_init;

struct workqueue_struct *system_wq __ro_after_init;
EXPORT_SYMBOL(system_wq);
struct workqueue_struct *system_percpu_wq __ro_after_init;
EXPORT_SYMBOL(system_percpu_wq);
struct workqueue_struct *system_highpri_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_highpri_wq);
struct workqueue_struct *system_long_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_long_wq);
struct workqueue_struct *system_unbound_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_unbound_wq);
struct workqueue_struct *system_dfl_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_dfl_wq);
struct workqueue_struct *system_freezable_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_freezable_wq);
struct workqueue_struct *system_power_efficient_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_power_efficient_wq);
struct workqueue_struct *system_freezable_power_efficient_wq __ro_after_init;
EXPORT_SYMBOL_GPL(system_freezable_power_efficient_wq);
struct workqueue_struct *system_bh_wq;
EXPORT_SYMBOL_GPL(system_bh_wq);
struct workqueue_struct *system_bh_highpri_wq;
EXPORT_SYMBOL_GPL(system_bh_highpri_wq);

static int worker_thread(void *__worker);
static void workqueue_sysfs_unregister(struct workqueue_struct *wq);
static void show_pwq(struct pool_workqueue *pwq);
static void show_one_worker_pool(struct worker_pool *pool);

#define CREATE_TRACE_POINTS
#include <trace/events/workqueue.h>

#define assert_rcu_or_pool_mutex()					\
	RCU_LOCKDEP_WARN(!rcu_read_lock_any_held() &&			\
			 !lockdep_is_held(&wq_pool_mutex),		\
			 "RCU or wq_pool_mutex should be held")

#define for_each_bh_worker_pool(pool, cpu)				\
	for ((pool) = &per_cpu(bh_worker_pools, cpu)[0];		\
	     (pool) < &per_cpu(bh_worker_pools, cpu)[NR_STD_WORKER_POOLS]; \
	     (pool)++)

#define for_each_cpu_worker_pool(pool, cpu)				\
	for ((pool) = &per_cpu(cpu_worker_pools, cpu)[0];		\
	     (pool) < &per_cpu(cpu_worker_pools, cpu)[NR_STD_WORKER_POOLS]; \
	     (pool)++)

/**
 * for_each_pool - iterate through all worker_pools in the system
 * @pool: iteration cursor
 * @pi: integer used for iteration
 *
 * This must be called either with wq_pool_mutex held or RCU read
 * locked.  If the pool needs to be used beyond the locking in effect, the
 * caller is responsible for guaranteeing that the pool stays online.
 *
 * The if/else clause exists only for the lockdep assertion and can be
 * ignored.
 */
#define for_each_pool(pool, pi)						\
	idr_for_each_entry(&worker_pool_idr, pool, pi)			\
		if (({ assert_rcu_or_pool_mutex(); false; })) { }	\
		else

/**
 * for_each_pool_worker - iterate through all workers of a worker_pool
 * @worker: iteration cursor
 * @pool: worker_pool to iterate workers of
 *
 * This must be called with wq_pool_attach_mutex.
 *
 * The if/else clause exists only for the lockdep assertion and can be
 * ignored.
 */
#define for_each_pool_worker(worker, pool)				\
	list_for_each_entry((worker), &(pool)->workers, node)		\
		if (({ lockdep_assert_held(&wq_pool_attach_mutex); false; })) { } \
		else

/**
 * for_each_pwq - iterate through all pool_workqueues of the specified workqueue
 * @pwq: iteration cursor
 * @wq: the target workqueue
 *
 * This must be called either with wq->mutex held or RCU read locked.
 * If the pwq needs to be used beyond the locking in effect, the caller is
 * responsible for guaranteeing that the pwq stays online.
 *
 * The if/else clause exists only for the lockdep assertion and can be
 * ignored.
 */
#define for_each_pwq(pwq, wq)						\
	list_for_each_entry_rcu((pwq), &(wq)->pwqs, pwqs_node,		\
				 lockdep_is_held(&(wq->mutex)))

#ifdef CONFIG_DEBUG_OBJECTS_WORK

static const struct debug_obj_descr work_debug_descr;

static void *work_debug_hint(void *addr)
{
	return ((struct work_struct *) addr)->func;
}

static bool work_is_static_object(void *addr)
{
	struct work_struct *work = addr;

	return test_bit(WORK_STRUCT_STATIC_BIT, work_data_bits(work));
}

/*
 * fixup_init is called when:
 * - an active object is initialized
 */
static bool work_fixup_init(void *addr, enum debug_obj_state state)
{
	struct work_struct *work = addr;

	switch (state) {
	case ODEBUG_STATE_ACTIVE:
		cancel_work_sync(work);
		debug_object_init(work, &work_debug_descr);
		return true;
	default:
		return false;
	}
}

/*
 * fixup_free is called when:
 * - an active object is freed
 */
static bool work_fixup_free(void *addr, enum debug_obj_state state)
{
	struct work_struct *work = addr;

	switch (state) {
	case ODEBUG_STATE_ACTIVE:
		cancel_work_sync(work);
		debug_object_free(work, &work_debug_descr);
		return true;
	default:
		return false;
	}
}

static const struct debug_obj_descr work_debug_descr = {
	.name		= "work_struct",
	.debug_hint	= work_debug_hint,
	.is_static_object = work_is_static_object,
	.fixup_init	= work_fixup_init,
	.fixup_free	= work_fixup_free,
};

static inline void debug_work_activate(struct work_struct *work)
{
	debug_object_activate(work, &work_debug_descr);
}

static inline void debug_work_deactivate(struct work_struct *work)
{
	debug_object_deactivate(work, &work_debug_descr);
}

void __init_work(struct work_struct *work, int onstack)
{
	if (onstack)
		debug_object_init_on_stack(work, &work_debug_descr);
	else
		debug_object_init(work, &work_debug_descr);
}
EXPORT_SYMBOL_GPL(__init_work);

void destroy_work_on_stack(struct work_struct *work)
{
	debug_object_free(work, &work_debug_descr);
}
EXPORT_SYMBOL_GPL(destroy_work_on_stack);

void destroy_delayed_work_on_stack(struct delayed_work *work)
{
	timer_destroy_on_stack(&work->timer);
	debug_object_free(&work->work, &work_debug_descr);
}
EXPORT_SYMBOL_GPL(destroy_delayed_work_on_stack);

#else
static inline void debug_work_activate(struct work_struct *work) { }
static inline void debug_work_deactivate(struct work_struct *work) { }
#endif

/**
 * worker_pool_assign_id - allocate ID and assign it to @pool
 * @pool: the pool pointer of interest
 *
 * Returns 0 if ID in [0, WORK_OFFQ_POOL_NONE) is allocated and assigned
 * successfully, -errno on failure.
 */
static int worker_pool_assign_id(struct worker_pool *pool)
{
	int ret;

	lockdep_assert_held(&wq_pool_mutex);

	ret = idr_alloc(&worker_pool_idr, pool, 0, WORK_OFFQ_POOL_NONE,
			GFP_KERNEL);
	if (ret >= 0) {
		pool->id = ret;
		return 0;
	}
	return ret;
}

static struct pool_workqueue __rcu **
unbound_pwq_slot(struct workqueue_struct *wq, int cpu)
{
       if (cpu >= 0)
               return per_cpu_ptr(wq->cpu_pwq, cpu);
       else
               return &wq->dfl_pwq;
}

/* @cpu < 0 for dfl_pwq */
static struct pool_workqueue *unbound_pwq(struct workqueue_struct *wq, int cpu)
{
	return rcu_dereference_check(*unbound_pwq_slot(wq, cpu),
				     lockdep_is_held(&wq_pool_mutex) ||
				     lockdep_is_held(&wq->mutex));
}

/**
 * unbound_effective_cpumask - effective cpumask of an unbound workqueue
 * @wq: workqueue of interest
 *
 * @wq->unbound_attrs->cpumask contains the cpumask requested by the user which
 * is masked with wq_unbound_cpumask to determine the effective cpumask. The
 * default pwq is always mapped to the pool with the current effective cpumask.
 */
static struct cpumask *unbound_effective_cpumask(struct workqueue_struct *wq)
{
	return unbound_pwq(wq, -1)->pool->attrs->__pod_cpumask;
}

static unsigned int work_color_to_flags(int color)
{
	return color << WORK_STRUCT_COLOR_SHIFT;
}

static int get_work_color(unsigned long work_data)
{
	return (work_data >> WORK_STRUCT_COLOR_SHIFT) &
		((1 << WORK_STRUCT_COLOR_BITS) - 1);
}

static int work_next_color(int color)
{
	return (color + 1) % WORK_NR_COLORS;
}

static unsigned long pool_offq_flags(struct worker_pool *pool)
{
	return (pool->flags & POOL_BH) ? WORK_OFFQ_BH : 0;
}

/*
 * While queued, %WORK_STRUCT_PWQ is set and non flag bits of a work's data
 * contain the pointer to the queued pwq.  Once execution starts, the flag
 * is cleared and the high bits contain OFFQ flags and pool ID.
 *
 * set_work_pwq(), set_work_pool_and_clear_pending() and mark_work_canceling()
 * can be used to set the pwq, pool or clear work->data. These functions should
 * only be called while the work is owned - ie. while the PENDING bit is set.
 *
 * get_work_pool() and get_work_pwq() can be used to obtain the pool or pwq
 * corresponding to a work.  Pool is available once the work has been
 * queued anywhere after initialization until it is sync canceled.  pwq is
 * available only while the work item is queued.
 */
static inline void set_work_data(struct work_struct *work, unsigned long data)
{
	WARN_ON_ONCE(!work_pending(work));
	atomic_long_set(&work->data, data | work_static(work));
}

static void set_work_pwq(struct work_struct *work, struct pool_workqueue *pwq,
			 unsigned long flags)
{
	set_work_data(work, (unsigned long)pwq | WORK_STRUCT_PENDING |
		      WORK_STRUCT_PWQ | flags);
}

static void set_work_pool_and_keep_pending(struct work_struct *work,
					   int pool_id, unsigned long flags)
{
	set_work_data(work, ((unsigned long)pool_id << WORK_OFFQ_POOL_SHIFT) |
		      WORK_STRUCT_PENDING | flags);
}

static void set_work_pool_and_clear_pending(struct work_struct *work,
					    int pool_id, unsigned long flags)
{
	/*
	 * The following wmb is paired with the implied mb in
	 * test_and_set_bit(PENDING) and ensures all updates to @work made
	 * here are visible to and precede any updates by the next PENDING
	 * owner.
	 */
	smp_wmb();
	set_work_data(work, ((unsigned long)pool_id << WORK_OFFQ_POOL_SHIFT) |
		      flags);
	/*
	 * The following mb guarantees that previous clear of a PENDING bit
	 * will not be reordered with any speculative LOADS or STORES from
	 * work->current_func, which is executed afterwards.  This possible
	 * reordering can lead to a missed execution on attempt to queue
	 * the same @work.  E.g. consider this case:
	 *
	 *   CPU#0                         CPU#1
	 *   ----------------------------  --------------------------------
	 *
	 * 1  STORE event_indicated
	 * 2  queue_work_on() {
	 * 3    test_and_set_bit(PENDING)
	 * 4 }                             set_..._and_clear_pending() {
	 * 5                                 set_work_data() # clear bit
	 * 6                                 smp_mb()
	 * 7                               work->current_func() {
	 * 8				      LOAD event_indicated
	 *				   }
	 *
	 * Without an explicit full barrier speculative LOAD on line 8 can
	 * be executed before CPU#0 does STORE on line 1.  If that happens,
	 * CPU#0 observes the PENDING bit is still set and new execution of
	 * a @work is not queued in a hope, that CPU#1 will eventually
	 * finish the queued @work.  Meanwhile CPU#1 does not see
	 * event_indicated is set, because speculative LOAD was executed
	 * before actual STORE.
	 */
	smp_mb();
}

static inline struct pool_workqueue *work_struct_pwq(unsigned long data)
{
	return (struct pool_workqueue *)(data & WORK_STRUCT_PWQ_MASK);
}

static struct pool_workqueue *get_work_pwq(struct work_struct *work)
{
	unsigned long data = atomic_long_read(&work->data);

	if (data & WORK_STRUCT_PWQ)
		return work_struct_pwq(data);
	else
		return NULL;
}

/**
 * get_work_pool - return the worker_pool a given work was associated with
 * @work: the work item of interest
 *
 * Pools are created and destroyed under wq_pool_mutex, and allows read
 * access under RCU read lock.  As such, this function should be
 * called under wq_pool_mutex or inside of a rcu_read_lock() region.
 *
 * All fields of the returned pool are accessible as long as the above
 * mentioned locking is in effect.  If the returned pool needs to be used
 * beyond the critical section, the caller is responsible for ensuring the
 * returned pool is and stays online.
 *
 * Return: The worker_pool @work was last associated with.  %NULL if none.
 */
static struct worker_pool *get_work_pool(struct work_struct *work)
{
	unsigned long data = atomic_long_read(&work->data);
	int pool_id;

	assert_rcu_or_pool_mutex();

	if (data & WORK_STRUCT_PWQ)
		return work_struct_pwq(data)->pool;

	pool_id = data >> WORK_OFFQ_POOL_SHIFT;
	if (pool_id == WORK_OFFQ_POOL_NONE)
		return NULL;

	return idr_find(&worker_pool_idr, pool_id);
}

static unsigned long shift_and_mask(unsigned long v, u32 shift, u32 bits)
{
	return (v >> shift) & ((1U << bits) - 1);
}

static void work_offqd_unpack(struct work_offq_data *offqd, unsigned long data)
{
	WARN_ON_ONCE(data & WORK_STRUCT_PWQ);

	offqd->pool_id = shift_and_mask(data, WORK_OFFQ_POOL_SHIFT,
					WORK_OFFQ_POOL_BITS);
	offqd->disable = shift_and_mask(data, WORK_OFFQ_DISABLE_SHIFT,
					WORK_OFFQ_DISABLE_BITS);
	offqd->flags = data & WORK_OFFQ_FLAG_MASK;
}

static unsigned long work_offqd_pack_flags(struct work_offq_data *offqd)
{
	return ((unsigned long)offqd->disable << WORK_OFFQ_DISABLE_SHIFT) |
		((unsigned long)offqd->flags);
}

/*
 * Policy functions.  These define the policies on how the global worker
 * pools are managed.  Unless noted otherwise, these functions assume that
 * they're being called with pool->lock held.
 */

/*
 * Need to wake up a worker?  Called from anything but currently
 * running workers.
 *
 * Note that, because unbound workers never contribute to nr_running, this
 * function will always return %true for unbound pools as long as the
 * worklist isn't empty.
 */
static bool need_more_worker(struct worker_pool *pool)
{
	return !list_empty(&pool->worklist) && !pool->nr_running;
}

/* Can I start working?  Called from busy but !running workers. */
static bool may_start_working(struct worker_pool *pool)
{
	return pool->nr_idle;
}

/* Do I need to keep working?  Called from currently running workers. */
static bool keep_working(struct worker_pool *pool)
{
	return !list_empty(&pool->worklist) && (pool->nr_running <= 1);
}

/* Do we need a new worker?  Called from manager. */
static bool need_to_create_worker(struct worker_pool *pool)
{
	return need_more_worker(pool) && !may_start_working(pool);
}

/* Do we have too many workers and should some go away? */
static bool too_many_workers(struct worker_pool *pool)
{
	bool managing = pool->flags & POOL_MANAGER_ACTIVE;
	int nr_idle = pool->nr_idle + managing; /* manager is considered idle */
	int nr_busy = pool->nr_workers - nr_idle;

	return nr_idle > 2 && (nr_idle - 2) * MAX_IDLE_WORKERS_RATIO >= nr_busy;
}

/**
 * worker_set_flags - set worker flags and adjust nr_running accordingly
 * @worker: self
 * @flags: flags to set
 *
 * Set @flags in @worker->flags and adjust nr_running accordingly.
 */
static inline void worker_set_flags(struct worker *worker, unsigned int flags)
{
	struct worker_pool *pool = worker->pool;

	lockdep_assert_held(&pool->lock);

	/* If transitioning into NOT_RUNNING, adjust nr_running. */
	if ((flags & WORKER_NOT_RUNNING) &&
	    !(worker->flags & WORKER_NOT_RUNNING)) {
		pool->nr_running--;
	}

	worker->flags |= flags;
}

/**
 * worker_clr_flags - clear worker flags and adjust nr_running accordingly
 * @worker: self
 * @flags: flags to clear
 *
 * Clear @flags in @worker->flags and adjust nr_running accordingly.
 */
static inline void worker_clr_flags(struct worker *worker, unsigned int flags)
{
	struct worker_pool *pool = worker->pool;
	unsigned int oflags = worker->flags;

	lockdep_assert_held(&pool->lock);

	worker->flags &= ~flags;

	/*
	 * If transitioning out of NOT_RUNNING, increment nr_running.  Note
	 * that the nested NOT_RUNNING is not a noop.  NOT_RUNNING is mask
	 * of multiple flags, not a single flag.
	 */
	if ((flags & WORKER_NOT_RUNNING) && (oflags & WORKER_NOT_RUNNING))
		if (!(worker->flags & WORKER_NOT_RUNNING))
			pool->nr_running++;
}

/* Return the first idle worker.  Called with pool->lock held. */
static struct worker *first_idle_worker(struct worker_pool *pool)
{
	if (unlikely(list_empty(&pool->idle_list)))
		return NULL;

	return list_first_entry(&pool->idle_list, struct worker, entry);
}

/**
 * worker_enter_idle - enter idle state
 * @worker: worker which is entering idle state
 *
 * @worker is entering idle state.  Update stats and idle timer if
 * necessary.
 *
 * LOCKING:
 * raw_spin_lock_irq(pool->lock).
 */
static void worker_enter_idle(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;

	if (WARN_ON_ONCE(worker->flags & WORKER_IDLE) ||
	    WARN_ON_ONCE(!list_empty(&worker->entry) &&
			 (worker->hentry.next || worker->hentry.pprev)))
		return;

	/* can't use worker_set_flags(), also called from create_worker() */
	worker->flags |= WORKER_IDLE;
	pool->nr_idle++;
	worker->last_active = jiffies;

	/* idle_list is LIFO */
	list_add(&worker->entry, &pool->idle_list);

	if (too_many_workers(pool) && !timer_pending(&pool->idle_timer))
		mod_timer(&pool->idle_timer, jiffies + IDLE_WORKER_TIMEOUT);

	/* Sanity check nr_running. */
	WARN_ON_ONCE(pool->nr_workers == pool->nr_idle && pool->nr_running);
}

/**
 * worker_leave_idle - leave idle state
 * @worker: worker which is leaving idle state
 *
 * @worker is leaving idle state.  Update stats.
 *
 * LOCKING:
 * raw_spin_lock_irq(pool->lock).
 */
static void worker_leave_idle(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;

	if (WARN_ON_ONCE(!(worker->flags & WORKER_IDLE)))
		return;
	worker_clr_flags(worker, WORKER_IDLE);
	pool->nr_idle--;
	list_del_init(&worker->entry);
}

/**
 * find_worker_executing_work - find worker which is executing a work
 * @pool: pool of interest
 * @work: work to find worker for
 *
 * Find a worker which is executing @work on @pool by searching
 * @pool->busy_hash which is keyed by the address of @work.  For a worker
 * to match, its current execution should match the address of @work and
 * its work function.  This is to avoid unwanted dependency between
 * unrelated work executions through a work item being recycled while still
 * being executed.
 *
 * This is a bit tricky.  A work item may be freed once its execution
 * starts and nothing prevents the freed area from being recycled for
 * another work item.  If the same work item address ends up being reused
 * before the original execution finishes, workqueue will identify the
 * recycled work item as currently executing and make it wait until the
 * current execution finishes, introducing an unwanted dependency.
 *
 * This function checks the work item address and work function to avoid
 * false positives.  Note that this isn't complete as one may construct a
 * work function which can introduce dependency onto itself through a
 * recycled work item.  Well, if somebody wants to shoot oneself in the
 * foot that badly, there's only so much we can do, and if such deadlock
 * actually occurs, it should be easy to locate the culprit work function.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 *
 * Return:
 * Pointer to worker which is executing @work if found, %NULL
 * otherwise.
 */
static struct worker *find_worker_executing_work(struct worker_pool *pool,
						 struct work_struct *work)
{
	struct worker *worker;

	hash_for_each_possible(pool->busy_hash, worker, hentry,
			       (unsigned long)work)
		if (worker->current_work == work &&
		    worker->current_func == work->func)
			return worker;

	return NULL;
}

static void mayday_cursor_func(struct work_struct *work)
{
	/* should not be processed, only for marking position */
	BUG();
}

/**
 * move_linked_works - move linked works to a list
 * @work: start of series of works to be scheduled
 * @head: target list to append @work to
 * @nextp: out parameter for nested worklist walking
 *
 * Schedule linked works starting from @work to @head. Work series to be
 * scheduled starts at @work and includes any consecutive work with
 * WORK_STRUCT_LINKED set in its predecessor. See assign_work() for details on
 * @nextp.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 */
static void move_linked_works(struct work_struct *work, struct list_head *head,
			      struct work_struct **nextp)
{
	struct work_struct *n;

	/*
	 * Linked worklist will always end before the end of the list,
	 * use NULL for list head.
	 */
	list_for_each_entry_safe_from(work, n, NULL, entry) {
		list_move_tail(&work->entry, head);
		if (!(*work_data_bits(work) & WORK_STRUCT_LINKED))
			break;
	}

	/*
	 * If we're already inside safe list traversal and have moved
	 * multiple works to the scheduled queue, the next position
	 * needs to be updated.
	 */
	if (nextp)
		*nextp = n;
}

/**
 * assign_work - assign a work item and its linked work items to a worker
 * @work: work to assign
 * @worker: worker to assign to
 * @nextp: out parameter for nested worklist walking
 *
 * Assign @work and its linked work items to @worker. If @work is already being
 * executed by another worker in the same pool, it'll be punted there.
 *
 * If @nextp is not NULL, it's updated to point to the next work of the last
 * scheduled work. This allows assign_work() to be nested inside
 * list_for_each_entry_safe().
 *
 * Returns %true if @work was successfully assigned to @worker. %false if @work
 * was punted to another worker already executing it.
 */
static bool assign_work(struct work_struct *work, struct worker *worker,
			struct work_struct **nextp)
{
	struct worker_pool *pool = worker->pool;
	struct worker *collision;

	lockdep_assert_held(&pool->lock);

	/* The cursor work should not be processed */
	if (unlikely(work->func == mayday_cursor_func)) {
		/* only worker_thread() can possibly take this branch */
		WARN_ON_ONCE(worker->rescue_wq);
		if (nextp)
			*nextp = list_next_entry(work, entry);
		list_del_init(&work->entry);
		return false;
	}

	/*
	 * A single work shouldn't be executed concurrently by multiple workers.
	 * __queue_work() ensures that @work doesn't jump to a different pool
	 * while still running in the previous pool. Here, we should ensure that
	 * @work is not executed concurrently by multiple workers from the same
	 * pool. Check whether anyone is already processing the work. If so,
	 * defer the work to the currently executing one.
	 */
	collision = find_worker_executing_work(pool, work);
	if (unlikely(collision)) {
		move_linked_works(work, &collision->scheduled, nextp);
		return false;
	}

	move_linked_works(work, &worker->scheduled, nextp);
	return true;
}

static struct irq_work *bh_pool_irq_work(struct worker_pool *pool)
{
	int high = pool->attrs->nice == HIGHPRI_NICE_LEVEL ? 1 : 0;

	return &per_cpu(bh_pool_irq_works, pool->cpu)[high];
}

static void kick_bh_pool(struct worker_pool *pool)
{
#ifdef CONFIG_SMP
	/* see drain_dead_softirq_workfn() for BH_DRAINING */
	if (unlikely(pool->cpu != smp_processor_id() &&
		     !(pool->flags & POOL_BH_DRAINING))) {
		irq_work_queue_on(bh_pool_irq_work(pool), pool->cpu);
		return;
	}
#endif
	if (pool->attrs->nice == HIGHPRI_NICE_LEVEL)
		raise_softirq_irqoff(HI_SOFTIRQ);
	else
		raise_softirq_irqoff(TASKLET_SOFTIRQ);
}

/**
 * kick_pool - wake up an idle worker if necessary
 * @pool: pool to kick
 *
 * @pool may have pending work items. Wake up worker if necessary. Returns
 * whether a worker was woken up.
 */
static bool kick_pool(struct worker_pool *pool)
{
	struct worker *worker = first_idle_worker(pool);
	struct task_struct *p;

	lockdep_assert_held(&pool->lock);

	if (!need_more_worker(pool) || !worker)
		return false;

	if (pool->flags & POOL_BH) {
		kick_bh_pool(pool);
		return true;
	}

	p = worker->task;

#ifdef CONFIG_SMP
	/*
	 * Idle @worker is about to execute @work and waking up provides an
	 * opportunity to migrate @worker at a lower cost by setting the task's
	 * wake_cpu field. Let's see if we want to move @worker to improve
	 * execution locality.
	 *
	 * We're waking the worker that went idle the latest and there's some
	 * chance that @worker is marked idle but hasn't gone off CPU yet. If
	 * so, setting the wake_cpu won't do anything. As this is a best-effort
	 * optimization and the race window is narrow, let's leave as-is for
	 * now. If this becomes pronounced, we can skip over workers which are
	 * still on cpu when picking an idle worker.
	 *
	 * If @pool has non-strict affinity, @worker might have ended up outside
	 * its affinity scope. Repatriate.
	 */
	if (!pool->attrs->affn_strict &&
	    !cpumask_test_cpu(p->wake_cpu, pool->attrs->__pod_cpumask)) {
		struct work_struct *work = list_first_entry(&pool->worklist,
						struct work_struct, entry);
		int wake_cpu = cpumask_any_and_distribute(pool->attrs->__pod_cpumask,
							  cpu_online_mask);
		if (wake_cpu < nr_cpu_ids) {
			p->wake_cpu = wake_cpu;
			get_work_pwq(work)->stats[PWQ_STAT_REPATRIATED]++;
		}
	}
#endif
	wake_up_process(p);
	return true;
}

#ifdef CONFIG_WQ_CPU_INTENSIVE_REPORT

/*
 * Concurrency-managed per-cpu work items that hog CPU for longer than
 * wq_cpu_intensive_thresh_us trigger the automatic CPU_INTENSIVE mechanism,
 * which prevents them from stalling other concurrency-managed work items. If a
 * work function keeps triggering this mechanism, it's likely that the work item
 * should be using an unbound workqueue instead.
 *
 * wq_cpu_intensive_report() tracks work functions which trigger such conditions
 * and report them so that they can be examined and converted to use unbound
 * workqueues as appropriate. To avoid flooding the console, each violating work
 * function is tracked and reported with exponential backoff.
 */
#define WCI_MAX_ENTS 128

struct wci_ent {
	work_func_t		func;
	atomic64_t		cnt;
	struct hlist_node	hash_node;
};

static struct wci_ent wci_ents[WCI_MAX_ENTS];
static int wci_nr_ents;
static DEFINE_RAW_SPINLOCK(wci_lock);
static DEFINE_HASHTABLE(wci_hash, ilog2(WCI_MAX_ENTS));

static struct wci_ent *wci_find_ent(work_func_t func)
{
	struct wci_ent *ent;

	hash_for_each_possible_rcu(wci_hash, ent, hash_node,
				   (unsigned long)func) {
		if (ent->func == func)
			return ent;
	}
	return NULL;
}

static void wq_cpu_intensive_report(work_func_t func)
{
	struct wci_ent *ent;

restart:
	ent = wci_find_ent(func);
	if (ent) {
		u64 cnt;

		/*
		 * Start reporting from the warning_thresh and back off
		 * exponentially.
		 */
		cnt = atomic64_inc_return_relaxed(&ent->cnt);
		if (wq_cpu_intensive_warning_thresh &&
		    cnt >= wq_cpu_intensive_warning_thresh &&
		    is_power_of_2(cnt + 1 - wq_cpu_intensive_warning_thresh))
			printk_deferred(KERN_WARNING "workqueue: %ps hogged CPU for >%luus %llu times, consider switching to WQ_UNBOUND\n",
					ent->func, wq_cpu_intensive_thresh_us,
					atomic64_read(&ent->cnt));
		return;
	}

	/*
	 * @func is a new violation. Allocate a new entry for it. If wcn_ents[]
	 * is exhausted, something went really wrong and we probably made enough
	 * noise already.
	 */
	if (wci_nr_ents >= WCI_MAX_ENTS)
		return;

	raw_spin_lock(&wci_lock);

	if (wci_nr_ents >= WCI_MAX_ENTS) {
		raw_spin_unlock(&wci_lock);
		return;
	}

	if (wci_find_ent(func)) {
		raw_spin_unlock(&wci_lock);
		goto restart;
	}

	ent = &wci_ents[wci_nr_ents++];
	ent->func = func;
	atomic64_set(&ent->cnt, 0);
	hash_add_rcu(wci_hash, &ent->hash_node, (unsigned long)func);

	raw_spin_unlock(&wci_lock);

	goto restart;
}

#else	/* CONFIG_WQ_CPU_INTENSIVE_REPORT */
static void wq_cpu_intensive_report(work_func_t func) {}
#endif	/* CONFIG_WQ_CPU_INTENSIVE_REPORT */

/**
 * wq_worker_running - a worker is running again
 * @task: task waking up
 *
 * This function is called when a worker returns from schedule()
 */
void wq_worker_running(struct task_struct *task)
{
	struct worker *worker = kthread_data(task);

	if (!READ_ONCE(worker->sleeping))
		return;

	/*
	 * If preempted by unbind_workers() between the WORKER_NOT_RUNNING check
	 * and the nr_running increment below, we may ruin the nr_running reset
	 * and leave with an unexpected pool->nr_running == 1 on the newly unbound
	 * pool. Protect against such race.
	 */
	preempt_disable();
	if (!(worker->flags & WORKER_NOT_RUNNING))
		worker->pool->nr_running++;
	preempt_enable();

	/*
	 * CPU intensive auto-detection cares about how long a work item hogged
	 * CPU without sleeping. Reset the starting timestamp on wakeup.
	 */
	worker->current_at = worker->task->se.sum_exec_runtime;

	WRITE_ONCE(worker->sleeping, 0);
}

/**
 * wq_worker_sleeping - a worker is going to sleep
 * @task: task going to sleep
 *
 * This function is called from schedule() when a busy worker is
 * going to sleep.
 */
void wq_worker_sleeping(struct task_struct *task)
{
	struct worker *worker = kthread_data(task);
	struct worker_pool *pool;

	/*
	 * Rescuers, which may not have all the fields set up like normal
	 * workers, also reach here, let's not access anything before
	 * checking NOT_RUNNING.
	 */
	if (worker->flags & WORKER_NOT_RUNNING)
		return;

	pool = worker->pool;

	/* Return if preempted before wq_worker_running() was reached */
	if (READ_ONCE(worker->sleeping))
		return;

	WRITE_ONCE(worker->sleeping, 1);
	raw_spin_lock_irq(&pool->lock);

	/*
	 * Recheck in case unbind_workers() preempted us. We don't
	 * want to decrement nr_running after the worker is unbound
	 * and nr_running has been reset.
	 */
	if (worker->flags & WORKER_NOT_RUNNING) {
		raw_spin_unlock_irq(&pool->lock);
		return;
	}

	pool->nr_running--;
	if (kick_pool(pool))
		worker->current_pwq->stats[PWQ_STAT_CM_WAKEUP]++;

	raw_spin_unlock_irq(&pool->lock);
}

/**
 * wq_worker_tick - a scheduler tick occurred while a kworker is running
 * @task: task currently running
 *
 * Called from sched_tick(). We're in the IRQ context and the current
 * worker's fields which follow the 'K' locking rule can be accessed safely.
 */
void wq_worker_tick(struct task_struct *task)
{
	struct worker *worker = kthread_data(task);
	struct pool_workqueue *pwq = worker->current_pwq;
	struct worker_pool *pool = worker->pool;

	if (!pwq)
		return;

	pwq->stats[PWQ_STAT_CPU_TIME] += TICK_USEC;

	if (!wq_cpu_intensive_thresh_us)
		return;

	/*
	 * If the current worker is concurrency managed and hogged the CPU for
	 * longer than wq_cpu_intensive_thresh_us, it's automatically marked
	 * CPU_INTENSIVE to avoid stalling other concurrency-managed work items.
	 *
	 * Set @worker->sleeping means that @worker is in the process of
	 * switching out voluntarily and won't be contributing to
	 * @pool->nr_running until it wakes up. As wq_worker_sleeping() also
	 * decrements ->nr_running, setting CPU_INTENSIVE here can lead to
	 * double decrements. The task is releasing the CPU anyway. Let's skip.
	 * We probably want to make this prettier in the future.
	 */
	if ((worker->flags & WORKER_NOT_RUNNING) || READ_ONCE(worker->sleeping) ||
	    worker->task->se.sum_exec_runtime - worker->current_at <
	    wq_cpu_intensive_thresh_us * NSEC_PER_USEC)
		return;

	raw_spin_lock(&pool->lock);

	worker_set_flags(worker, WORKER_CPU_INTENSIVE);
	wq_cpu_intensive_report(worker->current_func);
	pwq->stats[PWQ_STAT_CPU_INTENSIVE]++;

	if (kick_pool(pool))
		pwq->stats[PWQ_STAT_CM_WAKEUP]++;

	raw_spin_unlock(&pool->lock);
}

/**
 * wq_worker_last_func - retrieve worker's last work function
 * @task: Task to retrieve last work function of.
 *
 * Determine the last function a worker executed. This is called from
 * the scheduler to get a worker's last known identity.
 *
 * CONTEXT:
 * raw_spin_lock_irq(rq->lock)
 *
 * This function is called during schedule() when a kworker is going
 * to sleep. It's used by psi to identify aggregation workers during
 * dequeuing, to allow periodic aggregation to shut-off when that
 * worker is the last task in the system or cgroup to go to sleep.
 *
 * As this function doesn't involve any workqueue-related locking, it
 * only returns stable values when called from inside the scheduler's
 * queuing and dequeuing paths, when @task, which must be a kworker,
 * is guaranteed to not be processing any works.
 *
 * Return:
 * The last work function %current executed as a worker, NULL if it
 * hasn't executed any work yet.
 */
work_func_t wq_worker_last_func(struct task_struct *task)
{
	struct worker *worker = kthread_data(task);

	return worker->last_func;
}

/**
 * wq_node_nr_active - Determine wq_node_nr_active to use
 * @wq: workqueue of interest
 * @node: NUMA node, can be %NUMA_NO_NODE
 *
 * Determine wq_node_nr_active to use for @wq on @node. Returns:
 *
 * - %NULL for per-cpu workqueues as they don't need to use shared nr_active.
 *
 * - node_nr_active[nr_node_ids] if @node is %NUMA_NO_NODE.
 *
 * - Otherwise, node_nr_active[@node].
 */
static struct wq_node_nr_active *wq_node_nr_active(struct workqueue_struct *wq,
						   int node)
{
	if (!(wq->flags & WQ_UNBOUND))
		return NULL;

	if (node == NUMA_NO_NODE)
		node = nr_node_ids;

	return wq->node_nr_active[node];
}

/**
 * wq_update_node_max_active - Update per-node max_actives to use
 * @wq: workqueue to update
 * @off_cpu: CPU that's going down, -1 if a CPU is not going down
 *
 * Update @wq->node_nr_active[]->max. @wq must be unbound. max_active is
 * distributed among nodes according to the proportions of numbers of online
 * cpus. The result is always between @wq->min_active and max_active.
 */
static void wq_update_node_max_active(struct workqueue_struct *wq, int off_cpu)
{
	struct cpumask *effective = unbound_effective_cpumask(wq);
	int min_active = READ_ONCE(wq->min_active);
	int max_active = READ_ONCE(wq->max_active);
	int total_cpus, node;

	lockdep_assert_held(&wq->mutex);

	if (!wq_topo_initialized)
		return;

	if (off_cpu >= 0 && !cpumask_test_cpu(off_cpu, effective))
		off_cpu = -1;

	total_cpus = cpumask_weight_and(effective, cpu_online_mask);
	if (off_cpu >= 0)
		total_cpus--;

	/* If all CPUs of the wq get offline, use the default values */
	if (unlikely(!total_cpus)) {
		for_each_node(node)
			wq_node_nr_active(wq, node)->max = min_active;

		wq_node_nr_active(wq, NUMA_NO_NODE)->max = max_active;
		return;
	}

	for_each_node(node) {
		int node_cpus;

		node_cpus = cpumask_weight_and(effective, cpumask_of_node(node));
		if (off_cpu >= 0 && cpu_to_node(off_cpu) == node)
			node_cpus--;

		wq_node_nr_active(wq, node)->max =
			clamp(DIV_ROUND_UP(max_active * node_cpus, total_cpus),
			      min_active, max_active);
	}

	wq_node_nr_active(wq, NUMA_NO_NODE)->max = max_active;
}

/**
 * get_pwq - get an extra reference on the specified pool_workqueue
 * @pwq: pool_workqueue to get
 *
 * Obtain an extra reference on @pwq.  The caller should guarantee that
 * @pwq has positive refcnt and be holding the matching pool->lock.
 */
static void get_pwq(struct pool_workqueue *pwq)
{
	lockdep_assert_held(&pwq->pool->lock);
	WARN_ON_ONCE(pwq->refcnt <= 0);
	pwq->refcnt++;
}

/**
 * put_pwq - put a pool_workqueue reference
 * @pwq: pool_workqueue to put
 *
 * Drop a reference of @pwq.  If its refcnt reaches zero, schedule its
 * destruction.  The caller should be holding the matching pool->lock.
 */
static void put_pwq(struct pool_workqueue *pwq)
{
	lockdep_assert_held(&pwq->pool->lock);
	if (likely(--pwq->refcnt))
		return;
	/*
	 * @pwq can't be released under pool->lock, bounce to a dedicated
	 * kthread_worker to avoid A-A deadlocks.
	 */
	kthread_queue_work(pwq_release_worker, &pwq->release_work);
}

/**
 * put_pwq_unlocked - put_pwq() with surrounding pool lock/unlock
 * @pwq: pool_workqueue to put (can be %NULL)
 *
 * put_pwq() with locking.  This function also allows %NULL @pwq.
 */
static void put_pwq_unlocked(struct pool_workqueue *pwq)
{
	if (pwq) {
		/*
		 * As both pwqs and pools are RCU protected, the
		 * following lock operations are safe.
		 */
		raw_spin_lock_irq(&pwq->pool->lock);
		put_pwq(pwq);
		raw_spin_unlock_irq(&pwq->pool->lock);
	}
}

static bool pwq_is_empty(struct pool_workqueue *pwq)
{
	return !pwq->nr_active && list_empty(&pwq->inactive_works);
}

static void __pwq_activate_work(struct pool_workqueue *pwq,
				struct work_struct *work)
{
	unsigned long *wdb = work_data_bits(work);

	WARN_ON_ONCE(!(*wdb & WORK_STRUCT_INACTIVE));
	trace_workqueue_activate_work(work);
	if (list_empty(&pwq->pool->worklist))
		pwq->pool->watchdog_ts = jiffies;
	move_linked_works(work, &pwq->pool->worklist, NULL);
	__clear_bit(WORK_STRUCT_INACTIVE_BIT, wdb);
}

static bool tryinc_node_nr_active(struct wq_node_nr_active *nna)
{
	int max = READ_ONCE(nna->max);
	int old = atomic_read(&nna->nr);

	do {
		if (old >= max)
			return false;
	} while (!atomic_try_cmpxchg_relaxed(&nna->nr, &old, old + 1));

	return true;
}

/**
 * pwq_tryinc_nr_active - Try to increment nr_active for a pwq
 * @pwq: pool_workqueue of interest
 * @fill: max_active may have increased, try to increase concurrency level
 *
 * Try to increment nr_active for @pwq. Returns %true if an nr_active count is
 * successfully obtained. %false otherwise.
 */
static bool pwq_tryinc_nr_active(struct pool_workqueue *pwq, bool fill)
{
	struct workqueue_struct *wq = pwq->wq;
	struct worker_pool *pool = pwq->pool;
	struct wq_node_nr_active *nna = wq_node_nr_active(wq, pool->node);
	bool obtained = false;

	lockdep_assert_held(&pool->lock);

	if (!nna) {
		/* BH or per-cpu workqueue, pwq->nr_active is sufficient */
		obtained = pwq->nr_active < READ_ONCE(wq->max_active);
		goto out;
	}

	if (unlikely(pwq->plugged))
		return false;

	/*
	 * Unbound workqueue uses per-node shared nr_active $nna. If @pwq is
	 * already waiting on $nna, pwq_dec_nr_active() will maintain the
	 * concurrency level. Don't jump the line.
	 *
	 * We need to ignore the pending test after max_active has increased as
	 * pwq_dec_nr_active() can only maintain the concurrency level but not
	 * increase it. This is indicated by @fill.
	 */
	if (!list_empty(&pwq->pending_node) && likely(!fill))
		goto out;

	obtained = tryinc_node_nr_active(nna);
	if (obtained)
		goto out;

	/*
	 * Lockless acquisition failed. Lock, add ourself to $nna->pending_pwqs
	 * and try again. The smp_mb() is paired with the implied memory barrier
	 * of atomic_dec_return() in pwq_dec_nr_active() to ensure that either
	 * we see the decremented $nna->nr or they see non-empty
	 * $nna->pending_pwqs.
	 */
	raw_spin_lock(&nna->lock);

	if (list_empty(&pwq->pending_node))
		list_add_tail(&pwq->pending_node, &nna->pending_pwqs);
	else if (likely(!fill))
		goto out_unlock;

	smp_mb();

	obtained = tryinc_node_nr_active(nna);

	/*
	 * If @fill, @pwq might have already been pending. Being spuriously
	 * pending in cold paths doesn't affect anything. Let's leave it be.
	 */
	if (obtained && likely(!fill))
		list_del_init(&pwq->pending_node);

out_unlock:
	raw_spin_unlock(&nna->lock);
out:
	if (obtained)
		pwq->nr_active++;
	return obtained;
}

/**
 * pwq_activate_first_inactive - Activate the first inactive work item on a pwq
 * @pwq: pool_workqueue of interest
 * @fill: max_active may have increased, try to increase concurrency level
 *
 * Activate the first inactive work item of @pwq if available and allowed by
 * max_active limit.
 *
 * Returns %true if an inactive work item has been activated. %false if no
 * inactive work item is found or max_active limit is reached.
 */
static bool pwq_activate_first_inactive(struct pool_workqueue *pwq, bool fill)
{
	struct work_struct *work =
		list_first_entry_or_null(&pwq->inactive_works,
					 struct work_struct, entry);

	if (work && pwq_tryinc_nr_active(pwq, fill)) {
		__pwq_activate_work(pwq, work);
		return true;
	} else {
		return false;
	}
}

/**
 * unplug_oldest_pwq - unplug the oldest pool_workqueue
 * @wq: workqueue_struct where its oldest pwq is to be unplugged
 *
 * This function should only be called for ordered workqueues where only the
 * oldest pwq is unplugged, the others are plugged to suspend execution to
 * ensure proper work item ordering::
 *
 *    dfl_pwq --------------+     [P] - plugged
 *                          |
 *                          v
 *    pwqs -> A -> B [P] -> C [P] (newest)
 *            |    |        |
 *            1    3        5
 *            |    |        |
 *            2    4        6
 *
 * When the oldest pwq is drained and removed, this function should be called
 * to unplug the next oldest one to start its work item execution. Note that
 * pwq's are linked into wq->pwqs with the oldest first, so the first one in
 * the list is the oldest.
 */
static void unplug_oldest_pwq(struct workqueue_struct *wq)
{
	struct pool_workqueue *pwq;

	lockdep_assert_held(&wq->mutex);

	/* Caller should make sure that pwqs isn't empty before calling */
	pwq = list_first_entry_or_null(&wq->pwqs, struct pool_workqueue,
				       pwqs_node);
	raw_spin_lock_irq(&pwq->pool->lock);
	if (pwq->plugged) {
		pwq->plugged = false;
		if (pwq_activate_first_inactive(pwq, true))
			kick_pool(pwq->pool);
	}
	raw_spin_unlock_irq(&pwq->pool->lock);
}

/**
 * node_activate_pending_pwq - Activate a pending pwq on a wq_node_nr_active
 * @nna: wq_node_nr_active to activate a pending pwq for
 * @caller_pool: worker_pool the caller is locking
 *
 * Activate a pwq in @nna->pending_pwqs. Called with @caller_pool locked.
 * @caller_pool may be unlocked and relocked to lock other worker_pools.
 */
static void node_activate_pending_pwq(struct wq_node_nr_active *nna,
				      struct worker_pool *caller_pool)
{
	struct worker_pool *locked_pool = caller_pool;
	struct pool_workqueue *pwq;
	struct work_struct *work;

	lockdep_assert_held(&caller_pool->lock);

	raw_spin_lock(&nna->lock);
retry:
	pwq = list_first_entry_or_null(&nna->pending_pwqs,
				       struct pool_workqueue, pending_node);
	if (!pwq)
		goto out_unlock;

	/*
	 * If @pwq is for a different pool than @locked_pool, we need to lock
	 * @pwq->pool->lock. Let's trylock first. If unsuccessful, do the unlock
	 * / lock dance. For that, we also need to release @nna->lock as it's
	 * nested inside pool locks.
	 */
	if (pwq->pool != locked_pool) {
		raw_spin_unlock(&locked_pool->lock);
		locked_pool = pwq->pool;
		if (!raw_spin_trylock(&locked_pool->lock)) {
			raw_spin_unlock(&nna->lock);
			raw_spin_lock(&locked_pool->lock);
			raw_spin_lock(&nna->lock);
			goto retry;
		}
	}

	/*
	 * $pwq may not have any inactive work items due to e.g. cancellations.
	 * Drop it from pending_pwqs and see if there's another one.
	 */
	work = list_first_entry_or_null(&pwq->inactive_works,
					struct work_struct, entry);
	if (!work) {
		list_del_init(&pwq->pending_node);
		goto retry;
	}

	/*
	 * Acquire an nr_active count and activate the inactive work item. If
	 * $pwq still has inactive work items, rotate it to the end of the
	 * pending_pwqs so that we round-robin through them. This means that
	 * inactive work items are not activated in queueing order which is fine
	 * given that there has never been any ordering across different pwqs.
	 */
	if (likely(tryinc_node_nr_active(nna))) {
		pwq->nr_active++;
		__pwq_activate_work(pwq, work);

		if (list_empty(&pwq->inactive_works))
			list_del_init(&pwq->pending_node);
		else
			list_move_tail(&pwq->pending_node, &nna->pending_pwqs);

		/* if activating a foreign pool, make sure it's running */
		if (pwq->pool != caller_pool)
			kick_pool(pwq->pool);
	}

out_unlock:
	raw_spin_unlock(&nna->lock);
	if (locked_pool != caller_pool) {
		raw_spin_unlock(&locked_pool->lock);
		raw_spin_lock(&caller_pool->lock);
	}
}

/**
 * pwq_dec_nr_active - Retire an active count
 * @pwq: pool_workqueue of interest
 *
 * Decrement @pwq's nr_active and try to activate the first inactive work item.
 * For unbound workqueues, this function may temporarily drop @pwq->pool->lock.
 */
static void pwq_dec_nr_active(struct pool_workqueue *pwq)
{
	struct worker_pool *pool = pwq->pool;
	struct wq_node_nr_active *nna = wq_node_nr_active(pwq->wq, pool->node);

	lockdep_assert_held(&pool->lock);

	/*
	 * @pwq->nr_active should be decremented for both percpu and unbound
	 * workqueues.
	 */
	pwq->nr_active--;

	/*
	 * For a percpu workqueue, it's simple. Just need to kick the first
	 * inactive work item on @pwq itself.
	 */
	if (!nna) {
		pwq_activate_first_inactive(pwq, false);
		return;
	}

	/*
	 * If @pwq is for an unbound workqueue, it's more complicated because
	 * multiple pwqs and pools may be sharing the nr_active count. When a
	 * pwq needs to wait for an nr_active count, it puts itself on
	 * $nna->pending_pwqs. The following atomic_dec_return()'s implied
	 * memory barrier is paired with smp_mb() in pwq_tryinc_nr_active() to
	 * guarantee that either we see non-empty pending_pwqs or they see
	 * decremented $nna->nr.
	 *
	 * $nna->max may change as CPUs come online/offline and @pwq->wq's
	 * max_active gets updated. However, it is guaranteed to be equal to or
	 * larger than @pwq->wq->min_active which is above zero unless freezing.
	 * This maintains the forward progress guarantee.
	 */
	if (atomic_dec_return(&nna->nr) >= READ_ONCE(nna->max))
		return;

	if (!list_empty(&nna->pending_pwqs))
		node_activate_pending_pwq(nna, pool);
}

/**
 * pwq_dec_nr_in_flight - decrement pwq's nr_in_flight
 * @pwq: pwq of interest
 * @work_data: work_data of work which left the queue
 *
 * A work either has completed or is removed from pending queue,
 * decrement nr_in_flight of its pwq and handle workqueue flushing.
 *
 * NOTE:
 * For unbound workqueues, this function may temporarily drop @pwq->pool->lock
 * and thus should be called after all other state updates for the in-flight
 * work item is complete.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 */
static void pwq_dec_nr_in_flight(struct pool_workqueue *pwq, unsigned long work_data)
{
	int color = get_work_color(work_data);

	if (!(work_data & WORK_STRUCT_INACTIVE))
		pwq_dec_nr_active(pwq);

	pwq->nr_in_flight[color]--;

	/* is flush in progress and are we at the flushing tip? */
	if (likely(pwq->flush_color != color))
		goto out_put;

	/* are there still in-flight works? */
	if (pwq->nr_in_flight[color])
		goto out_put;

	/* this pwq is done, clear flush_color */
	pwq->flush_color = -1;

	/*
	 * If this was the last pwq, wake up the first flusher.  It
	 * will handle the rest.
	 */
	if (atomic_dec_and_test(&pwq->wq->nr_pwqs_to_flush))
		complete(&pwq->wq->first_flusher->done);
out_put:
	put_pwq(pwq);
}

/**
 * try_to_grab_pending - steal work item from worklist and disable irq
 * @work: work item to steal
 * @cflags: %WORK_CANCEL_ flags
 * @irq_flags: place to store irq state
 *
 * Try to grab PENDING bit of @work.  This function can handle @work in any
 * stable state - idle, on timer or on worklist.
 *
 * Return:
 *
 *  ========	================================================================
 *  1		if @work was pending and we successfully stole PENDING
 *  0		if @work was idle and we claimed PENDING
 *  -EAGAIN	if PENDING couldn't be grabbed at the moment, safe to busy-retry
 *  ========	================================================================
 *
 * Note:
 * On >= 0 return, the caller owns @work's PENDING bit.  To avoid getting
 * interrupted while holding PENDING and @work off queue, irq must be
 * disabled on entry.  This, combined with delayed_work->timer being
 * irqsafe, ensures that we return -EAGAIN for finite short period of time.
 *
 * On successful return, >= 0, irq is disabled and the caller is
 * responsible for releasing it using local_irq_restore(*@irq_flags).
 *
 * This function is safe to call from any context including IRQ handler.
 */
static int try_to_grab_pending(struct work_struct *work, u32 cflags,
			       unsigned long *irq_flags)
{
	struct worker_pool *pool;
	struct pool_workqueue *pwq;

	local_irq_save(*irq_flags);

	/* try to steal the timer if it exists */
	if (cflags & WORK_CANCEL_DELAYED) {
		struct delayed_work *dwork = to_delayed_work(work);

		/*
		 * dwork->timer is irqsafe.  If timer_delete() fails, it's
		 * guaranteed that the timer is not queued anywhere and not
		 * running on the local CPU.
		 */
		if (likely(timer_delete(&dwork->timer)))
			return 1;
	}

	/* try to claim PENDING the normal way */
	if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)))
		return 0;

	rcu_read_lock();
	/*
	 * The queueing is in progress, or it is already queued. Try to
	 * steal it from ->worklist without clearing WORK_STRUCT_PENDING.
	 */
	pool = get_work_pool(work);
	if (!pool)
		goto fail;

	raw_spin_lock(&pool->lock);
	/*
	 * work->data is guaranteed to point to pwq only while the work
	 * item is queued on pwq->wq, and both updating work->data to point
	 * to pwq on queueing and to pool on dequeueing are done under
	 * pwq->pool->lock.  This in turn guarantees that, if work->data
	 * points to pwq which is associated with a locked pool, the work
	 * item is currently queued on that pool.
	 */
	pwq = get_work_pwq(work);
	if (pwq && pwq->pool == pool) {
		unsigned long work_data = *work_data_bits(work);

		debug_work_deactivate(work);

		/*
		 * A cancelable inactive work item must be in the
		 * pwq->inactive_works since a queued barrier can't be
		 * canceled (see the comments in insert_wq_barrier()).
		 *
		 * An inactive work item cannot be deleted directly because
		 * it might have linked barrier work items which, if left
		 * on the inactive_works list, will confuse pwq->nr_active
		 * management later on and cause stall.  Move the linked
		 * barrier work items to the worklist when deleting the grabbed
		 * item. Also keep WORK_STRUCT_INACTIVE in work_data, so that
		 * it doesn't participate in nr_active management in later
		 * pwq_dec_nr_in_flight().
		 */
		if (work_data & WORK_STRUCT_INACTIVE)
			move_linked_works(work, &pwq->pool->worklist, NULL);

		list_del_init(&work->entry);

		/*
		 * work->data points to pwq iff queued. Let's point to pool. As
		 * this destroys work->data needed by the next step, stash it.
		 */
		set_work_pool_and_keep_pending(work, pool->id,
					       pool_offq_flags(pool));

		/* must be the last step, see the function comment */
		pwq_dec_nr_in_flight(pwq, work_data);

		raw_spin_unlock(&pool->lock);
		rcu_read_unlock();
		return 1;
	}
	raw_spin_unlock(&pool->lock);
fail:
	rcu_read_unlock();
	local_irq_restore(*irq_flags);
	return -EAGAIN;
}

/**
 * work_grab_pending - steal work item from worklist and disable irq
 * @work: work item to steal
 * @cflags: %WORK_CANCEL_ flags
 * @irq_flags: place to store IRQ state
 *
 * Grab PENDING bit of @work. @work can be in any stable state - idle, on timer
 * or on worklist.
 *
 * Can be called from any context. IRQ is disabled on return with IRQ state
 * stored in *@irq_flags. The caller is responsible for re-enabling it using
 * local_irq_restore().
 *
 * Returns %true if @work was pending. %false if idle.
 */
static bool work_grab_pending(struct work_struct *work, u32 cflags,
			      unsigned long *irq_flags)
{
	int ret;

	while (true) {
		ret = try_to_grab_pending(work, cflags, irq_flags);
		if (ret >= 0)
			return ret;
		cpu_relax();
	}
}

/**
 * insert_work - insert a work into a pool
 * @pwq: pwq @work belongs to
 * @work: work to insert
 * @head: insertion point
 * @extra_flags: extra WORK_STRUCT_* flags to set
 *
 * Insert @work which belongs to @pwq after @head.  @extra_flags is or'd to
 * work_struct flags.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 */
static void insert_work(struct pool_workqueue *pwq, struct work_struct *work,
			struct list_head *head, unsigned int extra_flags)
{
	debug_work_activate(work);

	/* record the work call stack in order to print it in KASAN reports */
	kasan_record_aux_stack(work);

	/* we own @work, set data and link */
	set_work_pwq(work, pwq, extra_flags);
	list_add_tail(&work->entry, head);
	get_pwq(pwq);
}

/*
 * Test whether @work is being queued from another work executing on the
 * same workqueue.
 */
static bool is_chained_work(struct workqueue_struct *wq)
{
	struct worker *worker;

	worker = current_wq_worker();
	/*
	 * Return %true iff I'm a worker executing a work item on @wq.  If
	 * I'm @worker, it's safe to dereference it without locking.
	 */
	return worker && worker->current_pwq->wq == wq;
}

/*
 * When queueing an unbound work item to a wq, prefer local CPU if allowed
 * by wq_unbound_cpumask.  Otherwise, round robin among the allowed ones to
 * avoid perturbing sensitive tasks.
 */
static int wq_select_unbound_cpu(int cpu)
{
	int new_cpu;

	if (likely(!wq_debug_force_rr_cpu)) {
		if (cpumask_test_cpu(cpu, wq_unbound_cpumask))
			return cpu;
	} else {
		pr_warn_once("workqueue: round-robin CPU selection forced, expect performance impact\n");
	}

	new_cpu = __this_cpu_read(wq_rr_cpu_last);
	new_cpu = cpumask_next_and_wrap(new_cpu, wq_unbound_cpumask, cpu_online_mask);
	if (unlikely(new_cpu >= nr_cpu_ids))
		return cpu;
	__this_cpu_write(wq_rr_cpu_last, new_cpu);

	return new_cpu;
}

static void __queue_work(int cpu, struct workqueue_struct *wq,
			 struct work_struct *work)
{
	struct pool_workqueue *pwq;
	struct worker_pool *last_pool, *pool;
	unsigned int work_flags;
	unsigned int req_cpu = cpu;

	/*
	 * While a work item is PENDING && off queue, a task trying to
	 * steal the PENDING will busy-loop waiting for it to either get
	 * queued or lose PENDING.  Grabbing PENDING and queueing should
	 * happen with IRQ disabled.
	 */
	lockdep_assert_irqs_disabled();

	/*
	 * For a draining wq, only works from the same workqueue are
	 * allowed. The __WQ_DESTROYING helps to spot the issue that
	 * queues a new work item to a wq after destroy_workqueue(wq).
	 */
	if (unlikely(wq->flags & (__WQ_DESTROYING | __WQ_DRAINING) &&
		     WARN_ONCE(!is_chained_work(wq), "workqueue: cannot queue %ps on wq %s\n",
			       work->func, wq->name))) {
		return;
	}
	rcu_read_lock();
retry:
	/* pwq which will be used unless @work is executing elsewhere */
	if (req_cpu == WORK_CPU_UNBOUND) {
		if (wq->flags & WQ_UNBOUND)
			cpu = wq_select_unbound_cpu(raw_smp_processor_id());
		else
			cpu = raw_smp_processor_id();
	}

	pwq = rcu_dereference(*per_cpu_ptr(wq->cpu_pwq, cpu));
	pool = pwq->pool;

	/*
	 * If @work was previously on a different pool, it might still be
	 * running there, in which case the work needs to be queued on that
	 * pool to guarantee non-reentrancy.
	 *
	 * For ordered workqueue, work items must be queued on the newest pwq
	 * for accurate order management.  Guaranteed order also guarantees
	 * non-reentrancy.  See the comments above unplug_oldest_pwq().
	 */
	last_pool = get_work_pool(work);
	if (last_pool && last_pool != pool && !(wq->flags & __WQ_ORDERED)) {
		struct worker *worker;

		raw_spin_lock(&last_pool->lock);

		worker = find_worker_executing_work(last_pool, work);

		if (worker && worker->current_pwq->wq == wq) {
			pwq = worker->current_pwq;
			pool = pwq->pool;
			WARN_ON_ONCE(pool != last_pool);
		} else {
			/* meh... not running there, queue here */
			raw_spin_unlock(&last_pool->lock);
			raw_spin_lock(&pool->lock);
		}
	} else {
		raw_spin_lock(&pool->lock);
	}

	/*
	 * pwq is determined and locked. For unbound pools, we could have raced
	 * with pwq release and it could already be dead. If its refcnt is zero,
	 * repeat pwq selection. Note that unbound pwqs never die without
	 * another pwq replacing it in cpu_pwq or while work items are executing
	 * on it, so the retrying is guaranteed to make forward-progress.
	 */
	if (unlikely(!pwq->refcnt)) {
		if (wq->flags & WQ_UNBOUND) {
			raw_spin_unlock(&pool->lock);
			cpu_relax();
			goto retry;
		}
		/* oops */
		WARN_ONCE(true, "workqueue: per-cpu pwq for %s on cpu%d has 0 refcnt",
			  wq->name, cpu);
	}

	/* pwq determined, queue */
	trace_workqueue_queue_work(req_cpu, pwq, work);

	if (WARN_ON(!list_empty(&work->entry)))
		goto out;

	pwq->nr_in_flight[pwq->work_color]++;
	work_flags = work_color_to_flags(pwq->work_color);

	/*
	 * Limit the number of concurrently active work items to max_active.
	 * @work must also queue behind existing inactive work items to maintain
	 * ordering when max_active changes. See wq_adjust_max_active().
	 */
	if (list_empty(&pwq->inactive_works) && pwq_tryinc_nr_active(pwq, false)) {
		if (list_empty(&pool->worklist))
			pool->watchdog_ts = jiffies;

		trace_workqueue_activate_work(work);
		insert_work(pwq, work, &pool->worklist, work_flags);
		kick_pool(pool);
	} else {
		work_flags |= WORK_STRUCT_INACTIVE;
		insert_work(pwq, work, &pwq->inactive_works, work_flags);
	}

out:
	raw_spin_unlock(&pool->lock);
	rcu_read_unlock();
}

static bool clear_pending_if_disabled(struct work_struct *work)
{
	unsigned long data = *work_data_bits(work);
	struct work_offq_data offqd;

	if (likely((data & WORK_STRUCT_PWQ) ||
		   !(data & WORK_OFFQ_DISABLE_MASK)))
		return false;

	work_offqd_unpack(&offqd, data);
	set_work_pool_and_clear_pending(work, offqd.pool_id,
					work_offqd_pack_flags(&offqd));
	return true;
}

/**
 * queue_work_on - queue work on specific cpu
 * @cpu: CPU number to execute work on
 * @wq: workqueue to use
 * @work: work to queue
 *
 * We queue the work to a specific CPU, the caller must ensure it
 * can't go away.  Callers that fail to ensure that the specified
 * CPU cannot go away will execute on a randomly chosen CPU.
 * But note well that callers specifying a CPU that never has been
 * online will get a splat.
 *
 * Return: %false if @work was already on a queue, %true otherwise.
 */
bool queue_work_on(int cpu, struct workqueue_struct *wq,
		   struct work_struct *work)
{
	bool ret = false;
	unsigned long irq_flags;

	local_irq_save(irq_flags);

	if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)) &&
	    !clear_pending_if_disabled(work)) {
		__queue_work(cpu, wq, work);
		ret = true;
	}

	local_irq_restore(irq_flags);
	return ret;
}
EXPORT_SYMBOL(queue_work_on);

/**
 * select_numa_node_cpu - Select a CPU based on NUMA node
 * @node: NUMA node ID that we want to select a CPU from
 *
 * This function will attempt to find a "random" cpu available on a given
 * node. If there are no CPUs available on the given node it will return
 * WORK_CPU_UNBOUND indicating that we should just schedule to any
 * available CPU if we need to schedule this work.
 */
static int select_numa_node_cpu(int node)
{
	int cpu;

	/* Delay binding to CPU if node is not valid or online */
	if (node < 0 || node >= MAX_NUMNODES || !node_online(node))
		return WORK_CPU_UNBOUND;

	/* Use local node/cpu if we are already there */
	cpu = raw_smp_processor_id();
	if (node == cpu_to_node(cpu))
		return cpu;

	/* Use "random" otherwise know as "first" online CPU of node */
	cpu = cpumask_any_and(cpumask_of_node(node), cpu_online_mask);

	/* If CPU is valid return that, otherwise just defer */
	return cpu < nr_cpu_ids ? cpu : WORK_CPU_UNBOUND;
}

/**
 * queue_work_node - queue work on a "random" cpu for a given NUMA node
 * @node: NUMA node that we are targeting the work for
 * @wq: workqueue to use
 * @work: work to queue
 *
 * We queue the work to a "random" CPU within a given NUMA node. The basic
 * idea here is to provide a way to somehow associate work with a given
 * NUMA node.
 *
 * This function will only make a best effort attempt at getting this onto
 * the right NUMA node. If no node is requested or the requested node is
 * offline then we just fall back to standard queue_work behavior.
 *
 * Currently the "random" CPU ends up being the first available CPU in the
 * intersection of cpu_online_mask and the cpumask of the node, unless we
 * are running on the node. In that case we just use the current CPU.
 *
 * Return: %false if @work was already on a queue, %true otherwise.
 */
bool queue_work_node(int node, struct workqueue_struct *wq,
		     struct work_struct *work)
{
	unsigned long irq_flags;
	bool ret = false;

	/*
	 * This current implementation is specific to unbound workqueues.
	 * Specifically we only return the first available CPU for a given
	 * node instead of cycling through individual CPUs within the node.
	 *
	 * If this is used with a per-cpu workqueue then the logic in
	 * workqueue_select_cpu_near would need to be updated to allow for
	 * some round robin type logic.
	 */
	WARN_ON_ONCE(!(wq->flags & WQ_UNBOUND));

	local_irq_save(irq_flags);

	if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)) &&
	    !clear_pending_if_disabled(work)) {
		int cpu = select_numa_node_cpu(node);

		__queue_work(cpu, wq, work);
		ret = true;
	}

	local_irq_restore(irq_flags);
	return ret;
}
EXPORT_SYMBOL_GPL(queue_work_node);

void delayed_work_timer_fn(struct timer_list *t)
{
	struct delayed_work *dwork = timer_container_of(dwork, t, timer);

	/* should have been called from irqsafe timer with irq already off */
	__queue_work(dwork->cpu, dwork->wq, &dwork->work);
}
EXPORT_SYMBOL(delayed_work_timer_fn);

static void __queue_delayed_work(int cpu, struct workqueue_struct *wq,
				struct delayed_work *dwork, unsigned long delay)
{
	struct timer_list *timer = &dwork->timer;
	struct work_struct *work = &dwork->work;

	WARN_ON_ONCE(!wq);
	WARN_ON_ONCE(timer->function != delayed_work_timer_fn);
	WARN_ON_ONCE(timer_pending(timer));
	WARN_ON_ONCE(!list_empty(&work->entry));

	/*
	 * If @delay is 0, queue @dwork->work immediately.  This is for
	 * both optimization and correctness.  The earliest @timer can
	 * expire is on the closest next tick and delayed_work users depend
	 * on that there's no such delay when @delay is 0.
	 */
	if (!delay) {
		__queue_work(cpu, wq, &dwork->work);
		return;
	}

	WARN_ON_ONCE(cpu != WORK_CPU_UNBOUND && !cpu_online(cpu));
	dwork->wq = wq;
	dwork->cpu = cpu;
	timer->expires = jiffies + delay;

	if (housekeeping_enabled(HK_TYPE_TIMER)) {
		/* If the current cpu is a housekeeping cpu, use it. */
		cpu = smp_processor_id();
		if (!housekeeping_test_cpu(cpu, HK_TYPE_TIMER))
			cpu = housekeeping_any_cpu(HK_TYPE_TIMER);
		add_timer_on(timer, cpu);
	} else {
		if (likely(cpu == WORK_CPU_UNBOUND))
			add_timer_global(timer);
		else
			add_timer_on(timer, cpu);
	}
}

/**
 * queue_delayed_work_on - queue work on specific CPU after delay
 * @cpu: CPU number to execute work on
 * @wq: workqueue to use
 * @dwork: work to queue
 * @delay: number of jiffies to wait before queueing
 *
 * We queue the delayed_work to a specific CPU, for non-zero delays the
 * caller must ensure it is online and can't go away. Callers that fail
 * to ensure this, may get @dwork->timer queued to an offlined CPU and
 * this will prevent queueing of @dwork->work unless the offlined CPU
 * becomes online again.
 *
 * Return: %false if @work was already on a queue, %true otherwise.  If
 * @delay is zero and @dwork is idle, it will be scheduled for immediate
 * execution.
 */
bool queue_delayed_work_on(int cpu, struct workqueue_struct *wq,
			   struct delayed_work *dwork, unsigned long delay)
{
	struct work_struct *work = &dwork->work;
	bool ret = false;
	unsigned long irq_flags;

	/* read the comment in __queue_work() */
	local_irq_save(irq_flags);

	if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)) &&
	    !clear_pending_if_disabled(work)) {
		__queue_delayed_work(cpu, wq, dwork, delay);
		ret = true;
	}

	local_irq_restore(irq_flags);
	return ret;
}
EXPORT_SYMBOL(queue_delayed_work_on);

/**
 * mod_delayed_work_on - modify delay of or queue a delayed work on specific CPU
 * @cpu: CPU number to execute work on
 * @wq: workqueue to use
 * @dwork: work to queue
 * @delay: number of jiffies to wait before queueing
 *
 * If @dwork is idle, equivalent to queue_delayed_work_on(); otherwise,
 * modify @dwork's timer so that it expires after @delay.  If @delay is
 * zero, @work is guaranteed to be scheduled immediately regardless of its
 * current state.
 *
 * Return: %false if @dwork was idle and queued, %true if @dwork was
 * pending and its timer was modified.
 *
 * This function is safe to call from any context including IRQ handler.
 * See try_to_grab_pending() for details.
 */
bool mod_delayed_work_on(int cpu, struct workqueue_struct *wq,
			 struct delayed_work *dwork, unsigned long delay)
{
	unsigned long irq_flags;
	bool ret;

	ret = work_grab_pending(&dwork->work, WORK_CANCEL_DELAYED, &irq_flags);

	if (!clear_pending_if_disabled(&dwork->work))
		__queue_delayed_work(cpu, wq, dwork, delay);

	local_irq_restore(irq_flags);
	return ret;
}
EXPORT_SYMBOL_GPL(mod_delayed_work_on);

static void rcu_work_rcufn(struct rcu_head *rcu)
{
	struct rcu_work *rwork = container_of(rcu, struct rcu_work, rcu);

	/* read the comment in __queue_work() */
	local_irq_disable();
	__queue_work(WORK_CPU_UNBOUND, rwork->wq, &rwork->work);
	local_irq_enable();
}

/**
 * queue_rcu_work - queue work after a RCU grace period
 * @wq: workqueue to use
 * @rwork: work to queue
 *
 * Return: %false if @rwork was already pending, %true otherwise.  Note
 * that a full RCU grace period is guaranteed only after a %true return.
 * While @rwork is guaranteed to be executed after a %false return, the
 * execution may happen before a full RCU grace period has passed.
 */
bool queue_rcu_work(struct workqueue_struct *wq, struct rcu_work *rwork)
{
	struct work_struct *work = &rwork->work;

	/*
	 * rcu_work can't be canceled or disabled. Warn if the user reached
	 * inside @rwork and disabled the inner work.
	 */
	if (!test_and_set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(work)) &&
	    !WARN_ON_ONCE(clear_pending_if_disabled(work))) {
		rwork->wq = wq;
		call_rcu_hurry(&rwork->rcu, rcu_work_rcufn);
		return true;
	}

	return false;
}
EXPORT_SYMBOL(queue_rcu_work);

static struct worker *alloc_worker(int node)
{
	struct worker *worker;

	worker = kzalloc_node(sizeof(*worker), GFP_KERNEL, node);
	if (worker) {
		INIT_LIST_HEAD(&worker->entry);
		INIT_LIST_HEAD(&worker->scheduled);
		INIT_LIST_HEAD(&worker->node);
		/* on creation a worker is in !idle && prep state */
		worker->flags = WORKER_PREP;
	}
	return worker;
}

static cpumask_t *pool_allowed_cpus(struct worker_pool *pool)
{
	if (pool->cpu < 0 && pool->attrs->affn_strict)
		return pool->attrs->__pod_cpumask;
	else
		return pool->attrs->cpumask;
}

/**
 * worker_attach_to_pool() - attach a worker to a pool
 * @worker: worker to be attached
 * @pool: the target pool
 *
 * Attach @worker to @pool.  Once attached, the %WORKER_UNBOUND flag and
 * cpu-binding of @worker are kept coordinated with the pool across
 * cpu-[un]hotplugs.
 */
static void worker_attach_to_pool(struct worker *worker,
				  struct worker_pool *pool)
{
	mutex_lock(&wq_pool_attach_mutex);

	/*
	 * The wq_pool_attach_mutex ensures %POOL_DISASSOCIATED remains stable
	 * across this function. See the comments above the flag definition for
	 * details. BH workers are, while per-CPU, always DISASSOCIATED.
	 */
	if (pool->flags & POOL_DISASSOCIATED) {
		worker->flags |= WORKER_UNBOUND;
	} else {
		WARN_ON_ONCE(pool->flags & POOL_BH);
		kthread_set_per_cpu(worker->task, pool->cpu);
	}

	if (worker->rescue_wq)
		set_cpus_allowed_ptr(worker->task, pool_allowed_cpus(pool));

	list_add_tail(&worker->node, &pool->workers);
	worker->pool = pool;

	mutex_unlock(&wq_pool_attach_mutex);
}

static void unbind_worker(struct worker *worker)
{
	lockdep_assert_held(&wq_pool_attach_mutex);

	kthread_set_per_cpu(worker->task, -1);
	if (cpumask_intersects(wq_unbound_cpumask, cpu_active_mask))
		WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, wq_unbound_cpumask) < 0);
	else
		WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, cpu_possible_mask) < 0);
}


static void detach_worker(struct worker *worker)
{
	lockdep_assert_held(&wq_pool_attach_mutex);

	unbind_worker(worker);
	list_del(&worker->node);
}

/**
 * worker_detach_from_pool() - detach a worker from its pool
 * @worker: worker which is attached to its pool
 *
 * Undo the attaching which had been done in worker_attach_to_pool().  The
 * caller worker shouldn't access to the pool after detached except it has
 * other reference to the pool.
 */
static void worker_detach_from_pool(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;

	/* there is one permanent BH worker per CPU which should never detach */
	WARN_ON_ONCE(pool->flags & POOL_BH);

	mutex_lock(&wq_pool_attach_mutex);
	detach_worker(worker);
	worker->pool = NULL;
	mutex_unlock(&wq_pool_attach_mutex);

	/* clear leftover flags without pool->lock after it is detached */
	worker->flags &= ~(WORKER_UNBOUND | WORKER_REBOUND);
}

static int format_worker_id(char *buf, size_t size, struct worker *worker,
			    struct worker_pool *pool)
{
	if (worker->rescue_wq)
		return scnprintf(buf, size, "kworker/R-%s",
				 worker->rescue_wq->name);

	if (pool) {
		if (pool->cpu >= 0)
			return scnprintf(buf, size, "kworker/%d:%d%s",
					 pool->cpu, worker->id,
					 pool->attrs->nice < 0  ? "H" : "");
		else
			return scnprintf(buf, size, "kworker/u%d:%d",
					 pool->id, worker->id);
	} else {
		return scnprintf(buf, size, "kworker/dying");
	}
}

/**
 * create_worker - create a new workqueue worker
 * @pool: pool the new worker will belong to
 *
 * Create and start a new worker which is attached to @pool.
 *
 * CONTEXT:
 * Might sleep.  Does GFP_KERNEL allocations.
 *
 * Return:
 * Pointer to the newly created worker.
 */
static struct worker *create_worker(struct worker_pool *pool)
{
	struct worker *worker;
	int id;

	/* ID is needed to determine kthread name */
	id = ida_alloc(&pool->worker_ida, GFP_KERNEL);
	if (id < 0) {
		pr_err_once("workqueue: Failed to allocate a worker ID: %pe\n",
			    ERR_PTR(id));
		return NULL;
	}

	worker = alloc_worker(pool->node);
	if (!worker) {
		pr_err_once("workqueue: Failed to allocate a worker\n");
		goto fail;
	}

	worker->id = id;

	if (!(pool->flags & POOL_BH)) {
		char id_buf[WORKER_ID_LEN];

		format_worker_id(id_buf, sizeof(id_buf), worker, pool);
		worker->task = kthread_create_on_node(worker_thread, worker,
						      pool->node, "%s", id_buf);
		if (IS_ERR(worker->task)) {
			if (PTR_ERR(worker->task) == -EINTR) {
				pr_err("workqueue: Interrupted when creating a worker thread \"%s\"\n",
				       id_buf);
			} else {
				pr_err_once("workqueue: Failed to create a worker thread: %pe",
					    worker->task);
			}
			goto fail;
		}

		set_user_nice(worker->task, pool->attrs->nice);
		kthread_bind_mask(worker->task, pool_allowed_cpus(pool));
	}

	/* successful, attach the worker to the pool */
	worker_attach_to_pool(worker, pool);

	/* start the newly created worker */
	raw_spin_lock_irq(&pool->lock);

	worker->pool->nr_workers++;
	worker_enter_idle(worker);

	/*
	 * @worker is waiting on a completion in kthread() and will trigger hung
	 * check if not woken up soon. As kick_pool() is noop if @pool is empty,
	 * wake it up explicitly.
	 */
	if (worker->task)
		wake_up_process(worker->task);

	raw_spin_unlock_irq(&pool->lock);

	return worker;

fail:
	ida_free(&pool->worker_ida, id);
	kfree(worker);
	return NULL;
}

static void detach_dying_workers(struct list_head *cull_list)
{
	struct worker *worker;

	list_for_each_entry(worker, cull_list, entry)
		detach_worker(worker);
}

static void reap_dying_workers(struct list_head *cull_list)
{
	struct worker *worker, *tmp;

	list_for_each_entry_safe(worker, tmp, cull_list, entry) {
		list_del_init(&worker->entry);
		kthread_stop_put(worker->task);
		kfree(worker);
	}
}

/**
 * set_worker_dying - Tag a worker for destruction
 * @worker: worker to be destroyed
 * @list: transfer worker away from its pool->idle_list and into list
 *
 * Tag @worker for destruction and adjust @pool stats accordingly.  The worker
 * should be idle.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 */
static void set_worker_dying(struct worker *worker, struct list_head *list)
{
	struct worker_pool *pool = worker->pool;

	lockdep_assert_held(&pool->lock);
	lockdep_assert_held(&wq_pool_attach_mutex);

	/* sanity check frenzy */
	if (WARN_ON(worker->current_work) ||
	    WARN_ON(!list_empty(&worker->scheduled)) ||
	    WARN_ON(!(worker->flags & WORKER_IDLE)))
		return;

	pool->nr_workers--;
	pool->nr_idle--;

	worker->flags |= WORKER_DIE;

	list_move(&worker->entry, list);

	/* get an extra task struct reference for later kthread_stop_put() */
	get_task_struct(worker->task);
}

/**
 * idle_worker_timeout - check if some idle workers can now be deleted.
 * @t: The pool's idle_timer that just expired
 *
 * The timer is armed in worker_enter_idle(). Note that it isn't disarmed in
 * worker_leave_idle(), as a worker flicking between idle and active while its
 * pool is at the too_many_workers() tipping point would cause too much timer
 * housekeeping overhead. Since IDLE_WORKER_TIMEOUT is long enough, we just let
 * it expire and re-evaluate things from there.
 */
static void idle_worker_timeout(struct timer_list *t)
{
	struct worker_pool *pool = timer_container_of(pool, t, idle_timer);
	bool do_cull = false;

	if (work_pending(&pool->idle_cull_work))
		return;

	raw_spin_lock_irq(&pool->lock);

	if (too_many_workers(pool)) {
		struct worker *worker;
		unsigned long expires;

		/* idle_list is kept in LIFO order, check the last one */
		worker = list_last_entry(&pool->idle_list, struct worker, entry);
		expires = worker->last_active + IDLE_WORKER_TIMEOUT;
		do_cull = !time_before(jiffies, expires);

		if (!do_cull)
			mod_timer(&pool->idle_timer, expires);
	}
	raw_spin_unlock_irq(&pool->lock);

	if (do_cull)
		queue_work(system_dfl_wq, &pool->idle_cull_work);
}

/**
 * idle_cull_fn - cull workers that have been idle for too long.
 * @work: the pool's work for handling these idle workers
 *
 * This goes through a pool's idle workers and gets rid of those that have been
 * idle for at least IDLE_WORKER_TIMEOUT seconds.
 *
 * We don't want to disturb isolated CPUs because of a pcpu kworker being
 * culled, so this also resets worker affinity. This requires a sleepable
 * context, hence the split between timer callback and work item.
 */
static void idle_cull_fn(struct work_struct *work)
{
	struct worker_pool *pool = container_of(work, struct worker_pool, idle_cull_work);
	LIST_HEAD(cull_list);

	/*
	 * Grabbing wq_pool_attach_mutex here ensures an already-running worker
	 * cannot proceed beyong set_pf_worker() in its self-destruct path.
	 * This is required as a previously-preempted worker could run after
	 * set_worker_dying() has happened but before detach_dying_workers() did.
	 */
	mutex_lock(&wq_pool_attach_mutex);
	raw_spin_lock_irq(&pool->lock);

	while (too_many_workers(pool)) {
		struct worker *worker;
		unsigned long expires;

		worker = list_last_entry(&pool->idle_list, struct worker, entry);
		expires = worker->last_active + IDLE_WORKER_TIMEOUT;

		if (time_before(jiffies, expires)) {
			mod_timer(&pool->idle_timer, expires);
			break;
		}

		set_worker_dying(worker, &cull_list);
	}

	raw_spin_unlock_irq(&pool->lock);
	detach_dying_workers(&cull_list);
	mutex_unlock(&wq_pool_attach_mutex);

	reap_dying_workers(&cull_list);
}

static void send_mayday(struct pool_workqueue *pwq)
{
	struct workqueue_struct *wq = pwq->wq;

	lockdep_assert_held(&wq_mayday_lock);

	if (!wq->rescuer)
		return;

	/* mayday mayday mayday */
	if (list_empty(&pwq->mayday_node)) {
		/*
		 * If @pwq is for an unbound wq, its base ref may be put at
		 * any time due to an attribute change.  Pin @pwq until the
		 * rescuer is done with it.
		 */
		get_pwq(pwq);
		list_add_tail(&pwq->mayday_node, &wq->maydays);
		wake_up_process(wq->rescuer->task);
		pwq->stats[PWQ_STAT_MAYDAY]++;
	}
}

static void pool_mayday_timeout(struct timer_list *t)
{
	struct worker_pool *pool = timer_container_of(pool, t, mayday_timer);
	struct work_struct *work;

	raw_spin_lock_irq(&pool->lock);
	raw_spin_lock(&wq_mayday_lock);		/* for wq->maydays */

	if (need_to_create_worker(pool)) {
		/*
		 * We've been trying to create a new worker but
		 * haven't been successful.  We might be hitting an
		 * allocation deadlock.  Send distress signals to
		 * rescuers.
		 */
		list_for_each_entry(work, &pool->worklist, entry)
			send_mayday(get_work_pwq(work));
	}

	raw_spin_unlock(&wq_mayday_lock);
	raw_spin_unlock_irq(&pool->lock);

	mod_timer(&pool->mayday_timer, jiffies + MAYDAY_INTERVAL);
}

/**
 * maybe_create_worker - create a new worker if necessary
 * @pool: pool to create a new worker for
 *
 * Create a new worker for @pool if necessary.  @pool is guaranteed to
 * have at least one idle worker on return from this function.  If
 * creating a new worker takes longer than MAYDAY_INTERVAL, mayday is
 * sent to all rescuers with works scheduled on @pool to resolve
 * possible allocation deadlock.
 *
 * On return, need_to_create_worker() is guaranteed to be %false and
 * may_start_working() %true.
 *
 * LOCKING:
 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
 * multiple times.  Does GFP_KERNEL allocations.  Called only from
 * manager.
 */
static void maybe_create_worker(struct worker_pool *pool)
__releases(&pool->lock)
__acquires(&pool->lock)
{
restart:
	raw_spin_unlock_irq(&pool->lock);

	/* if we don't make progress in MAYDAY_INITIAL_TIMEOUT, call for help */
	mod_timer(&pool->mayday_timer, jiffies + MAYDAY_INITIAL_TIMEOUT);

	while (true) {
		if (create_worker(pool) || !need_to_create_worker(pool))
			break;

		schedule_timeout_interruptible(CREATE_COOLDOWN);

		if (!need_to_create_worker(pool))
			break;
	}

	timer_delete_sync(&pool->mayday_timer);
	raw_spin_lock_irq(&pool->lock);
	/*
	 * This is necessary even after a new worker was just successfully
	 * created as @pool->lock was dropped and the new worker might have
	 * already become busy.
	 */
	if (need_to_create_worker(pool))
		goto restart;
}

#ifdef CONFIG_PREEMPT_RT
static void worker_lock_callback(struct worker_pool *pool)
{
	spin_lock(&pool->cb_lock);
}

static void worker_unlock_callback(struct worker_pool *pool)
{
	spin_unlock(&pool->cb_lock);
}

static void workqueue_callback_cancel_wait_running(struct worker_pool *pool)
{
	spin_lock(&pool->cb_lock);
	spin_unlock(&pool->cb_lock);
}

#else

static void worker_lock_callback(struct worker_pool *pool) { }
static void worker_unlock_callback(struct worker_pool *pool) { }
static void workqueue_callback_cancel_wait_running(struct worker_pool *pool) { }

#endif

/**
 * manage_workers - manage worker pool
 * @worker: self
 *
 * Assume the manager role and manage the worker pool @worker belongs
 * to.  At any given time, there can be only zero or one manager per
 * pool.  The exclusion is handled automatically by this function.
 *
 * The caller can safely start processing works on false return.  On
 * true return, it's guaranteed that need_to_create_worker() is false
 * and may_start_working() is true.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
 * multiple times.  Does GFP_KERNEL allocations.
 *
 * Return:
 * %false if the pool doesn't need management and the caller can safely
 * start processing works, %true if management function was performed and
 * the conditions that the caller verified before calling the function may
 * no longer be true.
 */
static bool manage_workers(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;

	if (pool->flags & POOL_MANAGER_ACTIVE)
		return false;

	pool->flags |= POOL_MANAGER_ACTIVE;
	pool->manager = worker;

	maybe_create_worker(pool);

	pool->manager = NULL;
	pool->flags &= ~POOL_MANAGER_ACTIVE;
	rcuwait_wake_up(&manager_wait);
	return true;
}

/**
 * process_one_work - process single work
 * @worker: self
 * @work: work to process
 *
 * Process @work.  This function contains all the logics necessary to
 * process a single work including synchronization against and
 * interaction with other workers on the same cpu, queueing and
 * flushing.  As long as context requirement is met, any worker can
 * call this function to process a work.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock) which is released and regrabbed.
 */
static void process_one_work(struct worker *worker, struct work_struct *work)
__releases(&pool->lock)
__acquires(&pool->lock)
{
	struct pool_workqueue *pwq = get_work_pwq(work);
	struct worker_pool *pool = worker->pool;
	unsigned long work_data;
	int lockdep_start_depth, rcu_start_depth;
	bool bh_draining = pool->flags & POOL_BH_DRAINING;
#ifdef CONFIG_LOCKDEP
	/*
	 * It is permissible to free the struct work_struct from
	 * inside the function that is called from it, this we need to
	 * take into account for lockdep too.  To avoid bogus "held
	 * lock freed" warnings as well as problems when looking into
	 * work->lockdep_map, make a copy and use that here.
	 */
	struct lockdep_map lockdep_map;

	lockdep_copy_map(&lockdep_map, &work->lockdep_map);
#endif
	/* ensure we're on the correct CPU */
	WARN_ON_ONCE(!(pool->flags & POOL_DISASSOCIATED) &&
		     raw_smp_processor_id() != pool->cpu);

	/* claim and dequeue */
	debug_work_deactivate(work);
	hash_add(pool->busy_hash, &worker->hentry, (unsigned long)work);
	worker->current_work = work;
	worker->current_func = work->func;
	worker->current_pwq = pwq;
	if (worker->task)
		worker->current_at = worker->task->se.sum_exec_runtime;
	work_data = *work_data_bits(work);
	worker->current_color = get_work_color(work_data);

	/*
	 * Record wq name for cmdline and debug reporting, may get
	 * overridden through set_worker_desc().
	 */
	strscpy(worker->desc, pwq->wq->name, WORKER_DESC_LEN);

	list_del_init(&work->entry);

	/*
	 * CPU intensive works don't participate in concurrency management.
	 * They're the scheduler's responsibility.  This takes @worker out
	 * of concurrency management and the next code block will chain
	 * execution of the pending work items.
	 */
	if (unlikely(pwq->wq->flags & WQ_CPU_INTENSIVE))
		worker_set_flags(worker, WORKER_CPU_INTENSIVE);

	/*
	 * Kick @pool if necessary. It's always noop for per-cpu worker pools
	 * since nr_running would always be >= 1 at this point. This is used to
	 * chain execution of the pending work items for WORKER_NOT_RUNNING
	 * workers such as the UNBOUND and CPU_INTENSIVE ones.
	 */
	kick_pool(pool);

	/*
	 * Record the last pool and clear PENDING which should be the last
	 * update to @work.  Also, do this inside @pool->lock so that
	 * PENDING and queued state changes happen together while IRQ is
	 * disabled.
	 */
	set_work_pool_and_clear_pending(work, pool->id, pool_offq_flags(pool));

	pwq->stats[PWQ_STAT_STARTED]++;
	raw_spin_unlock_irq(&pool->lock);

	rcu_start_depth = rcu_preempt_depth();
	lockdep_start_depth = lockdep_depth(current);
	/* see drain_dead_softirq_workfn() */
	if (!bh_draining)
		lock_map_acquire(pwq->wq->lockdep_map);
	lock_map_acquire(&lockdep_map);
	/*
	 * Strictly speaking we should mark the invariant state without holding
	 * any locks, that is, before these two lock_map_acquire()'s.
	 *
	 * However, that would result in:
	 *
	 *   A(W1)
	 *   WFC(C)
	 *		A(W1)
	 *		C(C)
	 *
	 * Which would create W1->C->W1 dependencies, even though there is no
	 * actual deadlock possible. There are two solutions, using a
	 * read-recursive acquire on the work(queue) 'locks', but this will then
	 * hit the lockdep limitation on recursive locks, or simply discard
	 * these locks.
	 *
	 * AFAICT there is no possible deadlock scenario between the
	 * flush_work() and complete() primitives (except for single-threaded
	 * workqueues), so hiding them isn't a problem.
	 */
	lockdep_invariant_state(true);
	trace_workqueue_execute_start(work);
	worker->current_func(work);
	/*
	 * While we must be careful to not use "work" after this, the trace
	 * point will only record its address.
	 */
	trace_workqueue_execute_end(work, worker->current_func);

	lock_map_release(&lockdep_map);
	if (!bh_draining)
		lock_map_release(pwq->wq->lockdep_map);

	if (unlikely((worker->task && in_atomic()) ||
		     lockdep_depth(current) != lockdep_start_depth ||
		     rcu_preempt_depth() != rcu_start_depth)) {
		pr_err("BUG: workqueue leaked atomic, lock or RCU: %s[%d]\n"
		       "     preempt=0x%08x lock=%d->%d RCU=%d->%d workfn=%ps\n",
		       current->comm, task_pid_nr(current), preempt_count(),
		       lockdep_start_depth, lockdep_depth(current),
		       rcu_start_depth, rcu_preempt_depth(),
		       worker->current_func);
		debug_show_held_locks(current);
		dump_stack();
	}

	/*
	 * The following prevents a kworker from hogging CPU on !PREEMPTION
	 * kernels, where a requeueing work item waiting for something to
	 * happen could deadlock with stop_machine as such work item could
	 * indefinitely requeue itself while all other CPUs are trapped in
	 * stop_machine. At the same time, report a quiescent RCU state so
	 * the same condition doesn't freeze RCU.
	 */
	if (worker->task)
		cond_resched();

	raw_spin_lock_irq(&pool->lock);

	pwq->stats[PWQ_STAT_COMPLETED]++;

	/*
	 * In addition to %WQ_CPU_INTENSIVE, @worker may also have been marked
	 * CPU intensive by wq_worker_tick() if @work hogged CPU longer than
	 * wq_cpu_intensive_thresh_us. Clear it.
	 */
	worker_clr_flags(worker, WORKER_CPU_INTENSIVE);

	/* tag the worker for identification in schedule() */
	worker->last_func = worker->current_func;

	/* we're done with it, release */
	hash_del(&worker->hentry);
	worker->current_work = NULL;
	worker->current_func = NULL;
	worker->current_pwq = NULL;
	worker->current_color = INT_MAX;

	/* must be the last step, see the function comment */
	pwq_dec_nr_in_flight(pwq, work_data);
}

/**
 * process_scheduled_works - process scheduled works
 * @worker: self
 *
 * Process all scheduled works.  Please note that the scheduled list
 * may change while processing a work, so this function repeatedly
 * fetches a work from the top and executes it.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock) which may be released and regrabbed
 * multiple times.
 */
static void process_scheduled_works(struct worker *worker)
{
	struct work_struct *work;
	bool first = true;

	while ((work = list_first_entry_or_null(&worker->scheduled,
						struct work_struct, entry))) {
		if (first) {
			worker->pool->watchdog_ts = jiffies;
			first = false;
		}
		process_one_work(worker, work);
	}
}

static void set_pf_worker(bool val)
{
	mutex_lock(&wq_pool_attach_mutex);
	if (val)
		current->flags |= PF_WQ_WORKER;
	else
		current->flags &= ~PF_WQ_WORKER;
	mutex_unlock(&wq_pool_attach_mutex);
}

/**
 * worker_thread - the worker thread function
 * @__worker: self
 *
 * The worker thread function.  All workers belong to a worker_pool -
 * either a per-cpu one or dynamic unbound one.  These workers process all
 * work items regardless of their specific target workqueue.  The only
 * exception is work items which belong to workqueues with a rescuer which
 * will be explained in rescuer_thread().
 *
 * Return: 0
 */
static int worker_thread(void *__worker)
{
	struct worker *worker = __worker;
	struct worker_pool *pool = worker->pool;

	/* tell the scheduler that this is a workqueue worker */
	set_pf_worker(true);
woke_up:
	raw_spin_lock_irq(&pool->lock);

	/* am I supposed to die? */
	if (unlikely(worker->flags & WORKER_DIE)) {
		raw_spin_unlock_irq(&pool->lock);
		set_pf_worker(false);
		/*
		 * The worker is dead and PF_WQ_WORKER is cleared, worker->pool
		 * shouldn't be accessed, reset it to NULL in case otherwise.
		 */
		worker->pool = NULL;
		ida_free(&pool->worker_ida, worker->id);
		return 0;
	}

	worker_leave_idle(worker);
recheck:
	/* no more worker necessary? */
	if (!need_more_worker(pool))
		goto sleep;

	/* do we need to manage? */
	if (unlikely(!may_start_working(pool)) && manage_workers(worker))
		goto recheck;

	/*
	 * ->scheduled list can only be filled while a worker is
	 * preparing to process a work or actually processing it.
	 * Make sure nobody diddled with it while I was sleeping.
	 */
	WARN_ON_ONCE(!list_empty(&worker->scheduled));

	/*
	 * Finish PREP stage.  We're guaranteed to have at least one idle
	 * worker or that someone else has already assumed the manager
	 * role.  This is where @worker starts participating in concurrency
	 * management if applicable and concurrency management is restored
	 * after being rebound.  See rebind_workers() for details.
	 */
	worker_clr_flags(worker, WORKER_PREP | WORKER_REBOUND);

	do {
		struct work_struct *work =
			list_first_entry(&pool->worklist,
					 struct work_struct, entry);

		if (assign_work(work, worker, NULL))
			process_scheduled_works(worker);
	} while (keep_working(pool));

	worker_set_flags(worker, WORKER_PREP);
sleep:
	/*
	 * pool->lock is held and there's no work to process and no need to
	 * manage, sleep.  Workers are woken up only while holding
	 * pool->lock or from local cpu, so setting the current state
	 * before releasing pool->lock is enough to prevent losing any
	 * event.
	 */
	worker_enter_idle(worker);
	__set_current_state(TASK_IDLE);
	raw_spin_unlock_irq(&pool->lock);
	schedule();
	goto woke_up;
}

static bool assign_rescuer_work(struct pool_workqueue *pwq, struct worker *rescuer)
{
	struct worker_pool *pool = pwq->pool;
	struct work_struct *cursor = &pwq->mayday_cursor;
	struct work_struct *work, *n;

	/* have work items to rescue? */
	if (!pwq->nr_active)
		return false;

	/* need rescue? */
	if (!need_to_create_worker(pool)) {
		/*
		 * The pool has idle workers and doesn't need the rescuer, so it
		 * could simply return false here.
		 *
		 * However, the memory pressure might not be fully relieved.
		 * In PERCPU pool with concurrency enabled, having idle workers
		 * does not necessarily mean memory pressure is gone; it may
		 * simply mean regular workers have woken up, completed their
		 * work, and gone idle again due to concurrency limits.
		 *
		 * In this case, those working workers may later sleep again,
		 * the pool may run out of idle workers, and it will have to
		 * allocate new ones and wait for the timer to send mayday,
		 * causing unnecessary delay - especially if memory pressure
		 * was never resolved throughout.
		 *
		 * Do more work if memory pressure is still on to reduce
		 * relapse, using (pool->flags & POOL_MANAGER_ACTIVE), though
		 * not precisely, unless there are other PWQs needing help.
		 */
		if (!(pool->flags & POOL_MANAGER_ACTIVE) ||
		    !list_empty(&pwq->wq->maydays))
			return false;
	}

	/* search from the start or cursor if available */
	if (list_empty(&cursor->entry))
		work = list_first_entry(&pool->worklist, struct work_struct, entry);
	else
		work = list_next_entry(cursor, entry);

	/* find the next work item to rescue */
	list_for_each_entry_safe_from(work, n, &pool->worklist, entry) {
		if (get_work_pwq(work) == pwq && assign_work(work, rescuer, &n)) {
			pwq->stats[PWQ_STAT_RESCUED]++;
			/* put the cursor for next search */
			list_move_tail(&cursor->entry, &n->entry);
			return true;
		}
	}

	return false;
}

/**
 * rescuer_thread - the rescuer thread function
 * @__rescuer: self
 *
 * Workqueue rescuer thread function.  There's one rescuer for each
 * workqueue which has WQ_MEM_RECLAIM set.
 *
 * Regular work processing on a pool may block trying to create a new
 * worker which uses GFP_KERNEL allocation which has slight chance of
 * developing into deadlock if some works currently on the same queue
 * need to be processed to satisfy the GFP_KERNEL allocation.  This is
 * the problem rescuer solves.
 *
 * When such condition is possible, the pool summons rescuers of all
 * workqueues which have works queued on the pool and let them process
 * those works so that forward progress can be guaranteed.
 *
 * This should happen rarely.
 *
 * Return: 0
 */
static int rescuer_thread(void *__rescuer)
{
	struct worker *rescuer = __rescuer;
	struct workqueue_struct *wq = rescuer->rescue_wq;
	bool should_stop;

	set_user_nice(current, RESCUER_NICE_LEVEL);

	/*
	 * Mark rescuer as worker too.  As WORKER_PREP is never cleared, it
	 * doesn't participate in concurrency management.
	 */
	set_pf_worker(true);
repeat:
	set_current_state(TASK_IDLE);

	/*
	 * By the time the rescuer is requested to stop, the workqueue
	 * shouldn't have any work pending, but @wq->maydays may still have
	 * pwq(s) queued.  This can happen by non-rescuer workers consuming
	 * all the work items before the rescuer got to them.  Go through
	 * @wq->maydays processing before acting on should_stop so that the
	 * list is always empty on exit.
	 */
	should_stop = kthread_should_stop();

	/* see whether any pwq is asking for help */
	raw_spin_lock_irq(&wq_mayday_lock);

	while (!list_empty(&wq->maydays)) {
		struct pool_workqueue *pwq = list_first_entry(&wq->maydays,
					struct pool_workqueue, mayday_node);
		struct worker_pool *pool = pwq->pool;
		unsigned int count = 0;

		__set_current_state(TASK_RUNNING);
		list_del_init(&pwq->mayday_node);

		raw_spin_unlock_irq(&wq_mayday_lock);

		worker_attach_to_pool(rescuer, pool);

		raw_spin_lock_irq(&pool->lock);

		WARN_ON_ONCE(!list_empty(&rescuer->scheduled));

		while (assign_rescuer_work(pwq, rescuer)) {
			process_scheduled_works(rescuer);

			/*
			 * If the per-turn work item limit is reached and other
			 * PWQs are in mayday, requeue mayday for this PWQ and
			 * let the rescuer handle the other PWQs first.
			 */
			if (++count > RESCUER_BATCH && !list_empty(&pwq->wq->maydays) &&
			    pwq->nr_active && need_to_create_worker(pool)) {
				raw_spin_lock(&wq_mayday_lock);
				send_mayday(pwq);
				raw_spin_unlock(&wq_mayday_lock);
				break;
			}
		}

		/* The cursor can not be left behind without the rescuer watching it. */
		if (!list_empty(&pwq->mayday_cursor.entry) && list_empty(&pwq->mayday_node))
			list_del_init(&pwq->mayday_cursor.entry);

		/*
		 * Leave this pool. Notify regular workers; otherwise, we end up
		 * with 0 concurrency and stalling the execution.
		 */
		kick_pool(pool);

		raw_spin_unlock_irq(&pool->lock);

		worker_detach_from_pool(rescuer);

		/*
		 * Put the reference grabbed by send_mayday().  @pool might
		 * go away any time after it.
		 */
		put_pwq_unlocked(pwq);

		raw_spin_lock_irq(&wq_mayday_lock);
	}

	raw_spin_unlock_irq(&wq_mayday_lock);

	if (should_stop) {
		__set_current_state(TASK_RUNNING);
		set_pf_worker(false);
		return 0;
	}

	/* rescuers should never participate in concurrency management */
	WARN_ON_ONCE(!(rescuer->flags & WORKER_NOT_RUNNING));
	schedule();
	goto repeat;
}

static void bh_worker(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;
	int nr_restarts = BH_WORKER_RESTARTS;
	unsigned long end = jiffies + BH_WORKER_JIFFIES;

	worker_lock_callback(pool);
	raw_spin_lock_irq(&pool->lock);
	worker_leave_idle(worker);

	/*
	 * This function follows the structure of worker_thread(). See there for
	 * explanations on each step.
	 */
	if (!need_more_worker(pool))
		goto done;

	WARN_ON_ONCE(!list_empty(&worker->scheduled));
	worker_clr_flags(worker, WORKER_PREP | WORKER_REBOUND);

	do {
		struct work_struct *work =
			list_first_entry(&pool->worklist,
					 struct work_struct, entry);

		if (assign_work(work, worker, NULL))
			process_scheduled_works(worker);
	} while (keep_working(pool) &&
		 --nr_restarts && time_before(jiffies, end));

	worker_set_flags(worker, WORKER_PREP);
done:
	worker_enter_idle(worker);
	kick_pool(pool);
	raw_spin_unlock_irq(&pool->lock);
	worker_unlock_callback(pool);
}

/*
 * TODO: Convert all tasklet users to workqueue and use softirq directly.
 *
 * This is currently called from tasklet[_hi]action() and thus is also called
 * whenever there are tasklets to run. Let's do an early exit if there's nothing
 * queued. Once conversion from tasklet is complete, the need_more_worker() test
 * can be dropped.
 *
 * After full conversion, we'll add worker->softirq_action, directly use the
 * softirq action and obtain the worker pointer from the softirq_action pointer.
 */
void workqueue_softirq_action(bool highpri)
{
	struct worker_pool *pool =
		&per_cpu(bh_worker_pools, smp_processor_id())[highpri];
	if (need_more_worker(pool))
		bh_worker(list_first_entry(&pool->workers, struct worker, node));
}

struct wq_drain_dead_softirq_work {
	struct work_struct	work;
	struct worker_pool	*pool;
	struct completion	done;
};

static void drain_dead_softirq_workfn(struct work_struct *work)
{
	struct wq_drain_dead_softirq_work *dead_work =
		container_of(work, struct wq_drain_dead_softirq_work, work);
	struct worker_pool *pool = dead_work->pool;
	bool repeat;

	/*
	 * @pool's CPU is dead and we want to execute its still pending work
	 * items from this BH work item which is running on a different CPU. As
	 * its CPU is dead, @pool can't be kicked and, as work execution path
	 * will be nested, a lockdep annotation needs to be suppressed. Mark
	 * @pool with %POOL_BH_DRAINING for the special treatments.
	 */
	raw_spin_lock_irq(&pool->lock);
	pool->flags |= POOL_BH_DRAINING;
	raw_spin_unlock_irq(&pool->lock);

	bh_worker(list_first_entry(&pool->workers, struct worker, node));

	raw_spin_lock_irq(&pool->lock);
	pool->flags &= ~POOL_BH_DRAINING;
	repeat = need_more_worker(pool);
	raw_spin_unlock_irq(&pool->lock);

	/*
	 * bh_worker() might hit consecutive execution limit and bail. If there
	 * still are pending work items, reschedule self and return so that we
	 * don't hog this CPU's BH.
	 */
	if (repeat) {
		if (pool->attrs->nice == HIGHPRI_NICE_LEVEL)
			queue_work(system_bh_highpri_wq, work);
		else
			queue_work(system_bh_wq, work);
	} else {
		complete(&dead_work->done);
	}
}

/*
 * @cpu is dead. Drain the remaining BH work items on the current CPU. It's
 * possible to allocate dead_work per CPU and avoid flushing. However, then we
 * have to worry about draining overlapping with CPU coming back online or
 * nesting (one CPU's dead_work queued on another CPU which is also dead and so
 * on). Let's keep it simple and drain them synchronously. These are BH work
 * items which shouldn't be requeued on the same pool. Shouldn't take long.
 */
void workqueue_softirq_dead(unsigned int cpu)
{
	int i;

	for (i = 0; i < NR_STD_WORKER_POOLS; i++) {
		struct worker_pool *pool = &per_cpu(bh_worker_pools, cpu)[i];
		struct wq_drain_dead_softirq_work dead_work;

		if (!need_more_worker(pool))
			continue;

		INIT_WORK_ONSTACK(&dead_work.work, drain_dead_softirq_workfn);
		dead_work.pool = pool;
		init_completion(&dead_work.done);

		if (pool->attrs->nice == HIGHPRI_NICE_LEVEL)
			queue_work(system_bh_highpri_wq, &dead_work.work);
		else
			queue_work(system_bh_wq, &dead_work.work);

		wait_for_completion(&dead_work.done);
		destroy_work_on_stack(&dead_work.work);
	}
}

/**
 * check_flush_dependency - check for flush dependency sanity
 * @target_wq: workqueue being flushed
 * @target_work: work item being flushed (NULL for workqueue flushes)
 * @from_cancel: are we called from the work cancel path
 *
 * %current is trying to flush the whole @target_wq or @target_work on it.
 * If this is not the cancel path (which implies work being flushed is either
 * already running, or will not be at all), check if @target_wq doesn't have
 * %WQ_MEM_RECLAIM and verify that %current is not reclaiming memory or running
 * on a workqueue which doesn't have %WQ_MEM_RECLAIM as that can break forward-
 * progress guarantee leading to a deadlock.
 */
static void check_flush_dependency(struct workqueue_struct *target_wq,
				   struct work_struct *target_work,
				   bool from_cancel)
{
	work_func_t target_func;
	struct worker *worker;

	if (from_cancel || target_wq->flags & WQ_MEM_RECLAIM)
		return;

	worker = current_wq_worker();
	target_func = target_work ? target_work->func : NULL;

	WARN_ONCE(current->flags & PF_MEMALLOC,
		  "workqueue: PF_MEMALLOC task %d(%s) is flushing !WQ_MEM_RECLAIM %s:%ps",
		  current->pid, current->comm, target_wq->name, target_func);
	WARN_ONCE(worker && ((worker->current_pwq->wq->flags &
			      (WQ_MEM_RECLAIM | __WQ_LEGACY)) == WQ_MEM_RECLAIM),
		  "workqueue: WQ_MEM_RECLAIM %s:%ps is flushing !WQ_MEM_RECLAIM %s:%ps",
		  worker->current_pwq->wq->name, worker->current_func,
		  target_wq->name, target_func);
}

struct wq_barrier {
	struct work_struct	work;
	struct completion	done;
	struct task_struct	*task;	/* purely informational */
};

static void wq_barrier_func(struct work_struct *work)
{
	struct wq_barrier *barr = container_of(work, struct wq_barrier, work);
	complete(&barr->done);
}

/**
 * insert_wq_barrier - insert a barrier work
 * @pwq: pwq to insert barrier into
 * @barr: wq_barrier to insert
 * @target: target work to attach @barr to
 * @worker: worker currently executing @target, NULL if @target is not executing
 *
 * @barr is linked to @target such that @barr is completed only after
 * @target finishes execution.  Please note that the ordering
 * guarantee is observed only with respect to @target and on the local
 * cpu.
 *
 * Currently, a queued barrier can't be canceled.  This is because
 * try_to_grab_pending() can't determine whether the work to be
 * grabbed is at the head of the queue and thus can't clear LINKED
 * flag of the previous work while there must be a valid next work
 * after a work with LINKED flag set.
 *
 * Note that when @worker is non-NULL, @target may be modified
 * underneath us, so we can't reliably determine pwq from @target.
 *
 * CONTEXT:
 * raw_spin_lock_irq(pool->lock).
 */
static void insert_wq_barrier(struct pool_workqueue *pwq,
			      struct wq_barrier *barr,
			      struct work_struct *target, struct worker *worker)
{
	static __maybe_unused struct lock_class_key bh_key, thr_key;
	unsigned int work_flags = 0;
	unsigned int work_color;
	struct list_head *head;

	/*
	 * debugobject calls are safe here even with pool->lock locked
	 * as we know for sure that this will not trigger any of the
	 * checks and call back into the fixup functions where we
	 * might deadlock.
	 *
	 * BH and threaded workqueues need separate lockdep keys to avoid
	 * spuriously triggering "inconsistent {SOFTIRQ-ON-W} -> {IN-SOFTIRQ-W}
	 * usage".
	 */
	INIT_WORK_ONSTACK_KEY(&barr->work, wq_barrier_func,
			      (pwq->wq->flags & WQ_BH) ? &bh_key : &thr_key);
	__set_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(&barr->work));

	init_completion_map(&barr->done, &target->lockdep_map);

	barr->task = current;

	/* The barrier work item does not participate in nr_active. */
	work_flags |= WORK_STRUCT_INACTIVE;

	/*
	 * If @target is currently being executed, schedule the
	 * barrier to the worker; otherwise, put it after @target.
	 */
	if (worker) {
		head = worker->scheduled.next;
		work_color = worker->current_color;
	} else {
		unsigned long *bits = work_data_bits(target);

		head = target->entry.next;
		/* there can already be other linked works, inherit and set */
		work_flags |= *bits & WORK_STRUCT_LINKED;
		work_color = get_work_color(*bits);
		__set_bit(WORK_STRUCT_LINKED_BIT, bits);
	}

	pwq->nr_in_flight[work_color]++;
	work_flags |= work_color_to_flags(work_color);

	insert_work(pwq, &barr->work, head, work_flags);
}

/**
 * flush_workqueue_prep_pwqs - prepare pwqs for workqueue flushing
 * @wq: workqueue being flushed
 * @flush_color: new flush color, < 0 for no-op
 * @work_color: new work color, < 0 for no-op
 *
 * Prepare pwqs for workqueue flushing.
 *
 * If @flush_color is non-negative, flush_color on all pwqs should be
 * -1.  If no pwq has in-flight commands at the specified color, all
 * pwq->flush_color's stay at -1 and %false is returned.  If any pwq
 * has in flight commands, its pwq->flush_color is set to
 * @flush_color, @wq->nr_pwqs_to_flush is updated accordingly, pwq
 * wakeup logic is armed and %true is returned.
 *
 * The caller should have initialized @wq->first_flusher prior to
 * calling this function with non-negative @flush_color.  If
 * @flush_color is negative, no flush color update is done and %false
 * is returned.
 *
 * If @work_color is non-negative, all pwqs should have the same
 * work_color which is previous to @work_color and all will be
 * advanced to @work_color.
 *
 * CONTEXT:
 * mutex_lock(wq->mutex).
 *
 * Return:
 * %true if @flush_color >= 0 and there's something to flush.  %false
 * otherwise.
 */
static bool flush_workqueue_prep_pwqs(struct workqueue_struct *wq,
				      int flush_color, int work_color)
{
	bool wait = false;
	struct pool_workqueue *pwq;
	struct worker_pool *current_pool = NULL;

	if (flush_color >= 0) {
		WARN_ON_ONCE(atomic_read(&wq->nr_pwqs_to_flush));
		atomic_set(&wq->nr_pwqs_to_flush, 1);
	}

	/*
	 * For unbound workqueue, pwqs will map to only a few pools.
	 * Most of the time, pwqs within the same pool will be linked
	 * sequentially to wq->pwqs by cpu index. So in the majority
	 * of pwq iters, the pool is the same, only doing lock/unlock
	 * if the pool has changed. This can largely reduce expensive
	 * lock operations.
	 */
	for_each_pwq(pwq, wq) {
		if (current_pool != pwq->pool) {
			if (likely(current_pool))
				raw_spin_unlock_irq(&current_pool->lock);
			current_pool = pwq->pool;
			raw_spin_lock_irq(&current_pool->lock);
		}

		if (flush_color >= 0) {
			WARN_ON_ONCE(pwq->flush_color != -1);

			if (pwq->nr_in_flight[flush_color]) {
				pwq->flush_color = flush_color;
				atomic_inc(&wq->nr_pwqs_to_flush);
				wait = true;
			}
		}

		if (work_color >= 0) {
			WARN_ON_ONCE(work_color != work_next_color(pwq->work_color));
			pwq->work_color = work_color;
		}

	}

	if (current_pool)
		raw_spin_unlock_irq(&current_pool->lock);

	if (flush_color >= 0 && atomic_dec_and_test(&wq->nr_pwqs_to_flush))
		complete(&wq->first_flusher->done);

	return wait;
}

static void touch_wq_lockdep_map(struct workqueue_struct *wq)
{
#ifdef CONFIG_LOCKDEP
	if (unlikely(!wq->lockdep_map))
		return;

	if (wq->flags & WQ_BH)
		local_bh_disable();

	lock_map_acquire(wq->lockdep_map);
	lock_map_release(wq->lockdep_map);

	if (wq->flags & WQ_BH)
		local_bh_enable();
#endif
}

static void touch_work_lockdep_map(struct work_struct *work,
				   struct workqueue_struct *wq)
{
#ifdef CONFIG_LOCKDEP
	if (wq->flags & WQ_BH)
		local_bh_disable();

	lock_map_acquire(&work->lockdep_map);
	lock_map_release(&work->lockdep_map);

	if (wq->flags & WQ_BH)
		local_bh_enable();
#endif
}

/**
 * __flush_workqueue - ensure that any scheduled work has run to completion.
 * @wq: workqueue to flush
 *
 * This function sleeps until all work items which were queued on entry
 * have finished execution, but it is not livelocked by new incoming ones.
 */
void __flush_workqueue(struct workqueue_struct *wq)
{
	struct wq_flusher this_flusher = {
		.list = LIST_HEAD_INIT(this_flusher.list),
		.flush_color = -1,
		.done = COMPLETION_INITIALIZER_ONSTACK_MAP(this_flusher.done, (*wq->lockdep_map)),
	};
	int next_color;

	if (WARN_ON(!wq_online))
		return;

	touch_wq_lockdep_map(wq);

	mutex_lock(&wq->mutex);

	/*
	 * Start-to-wait phase
	 */
	next_color = work_next_color(wq->work_color);

	if (next_color != wq->flush_color) {
		/*
		 * Color space is not full.  The current work_color
		 * becomes our flush_color and work_color is advanced
		 * by one.
		 */
		WARN_ON_ONCE(!list_empty(&wq->flusher_overflow));
		this_flusher.flush_color = wq->work_color;
		wq->work_color = next_color;

		if (!wq->first_flusher) {
			/* no flush in progress, become the first flusher */
			WARN_ON_ONCE(wq->flush_color != this_flusher.flush_color);

			wq->first_flusher = &this_flusher;

			if (!flush_workqueue_prep_pwqs(wq, wq->flush_color,
						       wq->work_color)) {
				/* nothing to flush, done */
				wq->flush_color = next_color;
				wq->first_flusher = NULL;
				goto out_unlock;
			}
		} else {
			/* wait in queue */
			WARN_ON_ONCE(wq->flush_color == this_flusher.flush_color);
			list_add_tail(&this_flusher.list, &wq->flusher_queue);
			flush_workqueue_prep_pwqs(wq, -1, wq->work_color);
		}
	} else {
		/*
		 * Oops, color space is full, wait on overflow queue.
		 * The next flush completion will assign us
		 * flush_color and transfer to flusher_queue.
		 */
		list_add_tail(&this_flusher.list, &wq->flusher_overflow);
	}

	check_flush_dependency(wq, NULL, false);

	mutex_unlock(&wq->mutex);

	wait_for_completion(&this_flusher.done);

	/*
	 * Wake-up-and-cascade phase
	 *
	 * First flushers are responsible for cascading flushes and
	 * handling overflow.  Non-first flushers can simply return.
	 */
	if (READ_ONCE(wq->first_flusher) != &this_flusher)
		return;

	mutex_lock(&wq->mutex);

	/* we might have raced, check again with mutex held */
	if (wq->first_flusher != &this_flusher)
		goto out_unlock;

	WRITE_ONCE(wq->first_flusher, NULL);

	WARN_ON_ONCE(!list_empty(&this_flusher.list));
	WARN_ON_ONCE(wq->flush_color != this_flusher.flush_color);

	while (true) {
		struct wq_flusher *next, *tmp;

		/* complete all the flushers sharing the current flush color */
		list_for_each_entry_safe(next, tmp, &wq->flusher_queue, list) {
			if (next->flush_color != wq->flush_color)
				break;
			list_del_init(&next->list);
			complete(&next->done);
		}

		WARN_ON_ONCE(!list_empty(&wq->flusher_overflow) &&
			     wq->flush_color != work_next_color(wq->work_color));

		/* this flush_color is finished, advance by one */
		wq->flush_color = work_next_color(wq->flush_color);

		/* one color has been freed, handle overflow queue */
		if (!list_empty(&wq->flusher_overflow)) {
			/*
			 * Assign the same color to all overflowed
			 * flushers, advance work_color and append to
			 * flusher_queue.  This is the start-to-wait
			 * phase for these overflowed flushers.
			 */
			list_for_each_entry(tmp, &wq->flusher_overflow, list)
				tmp->flush_color = wq->work_color;

			wq->work_color = work_next_color(wq->work_color);

			list_splice_tail_init(&wq->flusher_overflow,
					      &wq->flusher_queue);
			flush_workqueue_prep_pwqs(wq, -1, wq->work_color);
		}

		if (list_empty(&wq->flusher_queue)) {
			WARN_ON_ONCE(wq->flush_color != wq->work_color);
			break;
		}

		/*
		 * Need to flush more colors.  Make the next flusher
		 * the new first flusher and arm pwqs.
		 */
		WARN_ON_ONCE(wq->flush_color == wq->work_color);
		WARN_ON_ONCE(wq->flush_color != next->flush_color);

		list_del_init(&next->list);
		wq->first_flusher = next;

		if (flush_workqueue_prep_pwqs(wq, wq->flush_color, -1))
			break;

		/*
		 * Meh... this color is already done, clear first
		 * flusher and repeat cascading.
		 */
		wq->first_flusher = NULL;
	}

out_unlock:
	mutex_unlock(&wq->mutex);
}
EXPORT_SYMBOL(__flush_workqueue);

/**
 * drain_workqueue - drain a workqueue
 * @wq: workqueue to drain
 *
 * Wait until the workqueue becomes empty.  While draining is in progress,
 * only chain queueing is allowed.  IOW, only currently pending or running
 * work items on @wq can queue further work items on it.  @wq is flushed
 * repeatedly until it becomes empty.  The number of flushing is determined
 * by the depth of chaining and should be relatively short.  Whine if it
 * takes too long.
 */
void drain_workqueue(struct workqueue_struct *wq)
{
	unsigned int flush_cnt = 0;
	struct pool_workqueue *pwq;

	/*
	 * __queue_work() needs to test whether there are drainers, is much
	 * hotter than drain_workqueue() and already looks at @wq->flags.
	 * Use __WQ_DRAINING so that queue doesn't have to check nr_drainers.
	 */
	mutex_lock(&wq->mutex);
	if (!wq->nr_drainers++)
		wq->flags |= __WQ_DRAINING;
	mutex_unlock(&wq->mutex);
reflush:
	__flush_workqueue(wq);

	mutex_lock(&wq->mutex);

	for_each_pwq(pwq, wq) {
		bool drained;

		raw_spin_lock_irq(&pwq->pool->lock);
		drained = pwq_is_empty(pwq);
		raw_spin_unlock_irq(&pwq->pool->lock);

		if (drained)
			continue;

		if (++flush_cnt == 10 ||
		    (flush_cnt % 100 == 0 && flush_cnt <= 1000))
			pr_warn("workqueue %s: %s() isn't complete after %u tries\n",
				wq->name, __func__, flush_cnt);

		mutex_unlock(&wq->mutex);
		goto reflush;
	}

	if (!--wq->nr_drainers)
		wq->flags &= ~__WQ_DRAINING;
	mutex_unlock(&wq->mutex);
}
EXPORT_SYMBOL_GPL(drain_workqueue);

static bool start_flush_work(struct work_struct *work, struct wq_barrier *barr,
			     bool from_cancel)
{
	struct worker *worker = NULL;
	struct worker_pool *pool;
	struct pool_workqueue *pwq;
	struct workqueue_struct *wq;

	rcu_read_lock();
	pool = get_work_pool(work);
	if (!pool) {
		rcu_read_unlock();
		return false;
	}

	raw_spin_lock_irq(&pool->lock);
	/* see the comment in try_to_grab_pending() with the same code */
	pwq = get_work_pwq(work);
	if (pwq) {
		if (unlikely(pwq->pool != pool))
			goto already_gone;
	} else {
		worker = find_worker_executing_work(pool, work);
		if (!worker)
			goto already_gone;
		pwq = worker->current_pwq;
	}

	wq = pwq->wq;
	check_flush_dependency(wq, work, from_cancel);

	insert_wq_barrier(pwq, barr, work, worker);
	raw_spin_unlock_irq(&pool->lock);

	touch_work_lockdep_map(work, wq);

	/*
	 * Force a lock recursion deadlock when using flush_work() inside a
	 * single-threaded or rescuer equipped workqueue.
	 *
	 * For single threaded workqueues the deadlock happens when the work
	 * is after the work issuing the flush_work(). For rescuer equipped
	 * workqueues the deadlock happens when the rescuer stalls, blocking
	 * forward progress.
	 */
	if (!from_cancel && (wq->saved_max_active == 1 || wq->rescuer))
		touch_wq_lockdep_map(wq);

	rcu_read_unlock();
	return true;
already_gone:
	raw_spin_unlock_irq(&pool->lock);
	rcu_read_unlock();
	return false;
}

static bool __flush_work(struct work_struct *work, bool from_cancel)
{
	struct wq_barrier barr;

	if (WARN_ON(!wq_online))
		return false;

	if (WARN_ON(!work->func))
		return false;

	if (!start_flush_work(work, &barr, from_cancel))
		return false;

	/*
	 * start_flush_work() returned %true. If @from_cancel is set, we know
	 * that @work must have been executing during start_flush_work() and
	 * can't currently be queued. Its data must contain OFFQ bits. If @work
	 * was queued on a BH workqueue, we also know that it was running in the
	 * BH context and thus can be busy-waited.
	 */
	if (from_cancel) {
		unsigned long data = *work_data_bits(work);

		if (!WARN_ON_ONCE(data & WORK_STRUCT_PWQ) &&
		    (data & WORK_OFFQ_BH)) {
			/*
			 * On RT, prevent a live lock when %current preempted
			 * soft interrupt processing by blocking on lock which
			 * is owned by the thread invoking the callback.
			 */
			while (!try_wait_for_completion(&barr.done)) {
				if (IS_ENABLED(CONFIG_PREEMPT_RT)) {
					struct worker_pool *pool;

					guard(rcu)();
					pool = get_work_pool(work);
					if (pool)
						workqueue_callback_cancel_wait_running(pool);
				} else {
					cpu_relax();
				}
			}
			goto out_destroy;
		}
	}

	wait_for_completion(&barr.done);

out_destroy:
	destroy_work_on_stack(&barr.work);
	return true;
}

/**
 * flush_work - wait for a work to finish executing the last queueing instance
 * @work: the work to flush
 *
 * Wait until @work has finished execution.  @work is guaranteed to be idle
 * on return if it hasn't been requeued since flush started.
 *
 * Return:
 * %true if flush_work() waited for the work to finish execution,
 * %false if it was already idle.
 */
bool flush_work(struct work_struct *work)
{
	might_sleep();
	return __flush_work(work, false);
}
EXPORT_SYMBOL_GPL(flush_work);

/**
 * flush_delayed_work - wait for a dwork to finish executing the last queueing
 * @dwork: the delayed work to flush
 *
 * Delayed timer is cancelled and the pending work is queued for
 * immediate execution.  Like flush_work(), this function only
 * considers the last queueing instance of @dwork.
 *
 * Return:
 * %true if flush_work() waited for the work to finish execution,
 * %false if it was already idle.
 */
bool flush_delayed_work(struct delayed_work *dwork)
{
	local_irq_disable();
	if (timer_delete_sync(&dwork->timer))
		__queue_work(dwork->cpu, dwork->wq, &dwork->work);
	local_irq_enable();
	return flush_work(&dwork->work);
}
EXPORT_SYMBOL(flush_delayed_work);

/**
 * flush_rcu_work - wait for a rwork to finish executing the last queueing
 * @rwork: the rcu work to flush
 *
 * Return:
 * %true if flush_rcu_work() waited for the work to finish execution,
 * %false if it was already idle.
 */
bool flush_rcu_work(struct rcu_work *rwork)
{
	if (test_bit(WORK_STRUCT_PENDING_BIT, work_data_bits(&rwork->work))) {
		rcu_barrier();
		flush_work(&rwork->work);
		return true;
	} else {
		return flush_work(&rwork->work);
	}
}
EXPORT_SYMBOL(flush_rcu_work);

static void work_offqd_disable(struct work_offq_data *offqd)
{
	const unsigned long max = (1lu << WORK_OFFQ_DISABLE_BITS) - 1;

	if (likely(offqd->disable < max))
		offqd->disable++;
	else
		WARN_ONCE(true, "workqueue: work disable count overflowed\n");
}

static void work_offqd_enable(struct work_offq_data *offqd)
{
	if (likely(offqd->disable > 0))
		offqd->disable--;
	else
		WARN_ONCE(true, "workqueue: work disable count underflowed\n");
}

static bool __cancel_work(struct work_struct *work, u32 cflags)
{
	struct work_offq_data offqd;
	unsigned long irq_flags;
	int ret;

	ret = work_grab_pending(work, cflags, &irq_flags);

	work_offqd_unpack(&offqd, *work_data_bits(work));

	if (cflags & WORK_CANCEL_DISABLE)
		work_offqd_disable(&offqd);

	set_work_pool_and_clear_pending(work, offqd.pool_id,
					work_offqd_pack_flags(&offqd));
	local_irq_restore(irq_flags);
	return ret;
}

static bool __cancel_work_sync(struct work_struct *work, u32 cflags)
{
	bool ret;

	ret = __cancel_work(work, cflags | WORK_CANCEL_DISABLE);

	if (*work_data_bits(work) & WORK_OFFQ_BH)
		WARN_ON_ONCE(in_hardirq());
	else
		might_sleep();

	/*
	 * Skip __flush_work() during early boot when we know that @work isn't
	 * executing. This allows canceling during early boot.
	 */
	if (wq_online)
		__flush_work(work, true);

	if (!(cflags & WORK_CANCEL_DISABLE))
		enable_work(work);

	return ret;
}

/*
 * See cancel_delayed_work()
 */
bool cancel_work(struct work_struct *work)
{
	return __cancel_work(work, 0);
}
EXPORT_SYMBOL(cancel_work);

/**
 * cancel_work_sync - cancel a work and wait for it to finish
 * @work: the work to cancel
 *
 * Cancel @work and wait for its execution to finish. This function can be used
 * even if the work re-queues itself or migrates to another workqueue. On return
 * from this function, @work is guaranteed to be not pending or executing on any
 * CPU as long as there aren't racing enqueues.
 *
 * cancel_work_sync(&delayed_work->work) must not be used for delayed_work's.
 * Use cancel_delayed_work_sync() instead.
 *
 * Must be called from a sleepable context if @work was last queued on a non-BH
 * workqueue. Can also be called from non-hardirq atomic contexts including BH
 * if @work was last queued on a BH workqueue.
 *
 * Returns %true if @work was pending, %false otherwise.
 */
bool cancel_work_sync(struct work_struct *work)
{
	return __cancel_work_sync(work, 0);
}
EXPORT_SYMBOL_GPL(cancel_work_sync);

/**
 * cancel_delayed_work - cancel a delayed work
 * @dwork: delayed_work to cancel
 *
 * Kill off a pending delayed_work.
 *
 * Return: %true if @dwork was pending and canceled; %false if it wasn't
 * pending.
 *
 * Note:
 * The work callback function may still be running on return, unless
 * it returns %true and the work doesn't re-arm itself.  Explicitly flush or
 * use cancel_delayed_work_sync() to wait on it.
 *
 * This function is safe to call from any context including IRQ handler.
 */
bool cancel_delayed_work(struct delayed_work *dwork)
{
	return __cancel_work(&dwork->work, WORK_CANCEL_DELAYED);
}
EXPORT_SYMBOL(cancel_delayed_work);

/**
 * cancel_delayed_work_sync - cancel a delayed work and wait for it to finish
 * @dwork: the delayed work cancel
 *
 * This is cancel_work_sync() for delayed works.
 *
 * Return:
 * %true if @dwork was pending, %false otherwise.
 */
bool cancel_delayed_work_sync(struct delayed_work *dwork)
{
	return __cancel_work_sync(&dwork->work, WORK_CANCEL_DELAYED);
}
EXPORT_SYMBOL(cancel_delayed_work_sync);

/**
 * disable_work - Disable and cancel a work item
 * @work: work item to disable
 *
 * Disable @work by incrementing its disable count and cancel it if currently
 * pending. As long as the disable count is non-zero, any attempt to queue @work
 * will fail and return %false. The maximum supported disable depth is 2 to the
 * power of %WORK_OFFQ_DISABLE_BITS, currently 65536.
 *
 * Can be called from any context. Returns %true if @work was pending, %false
 * otherwise.
 */
bool disable_work(struct work_struct *work)
{
	return __cancel_work(work, WORK_CANCEL_DISABLE);
}
EXPORT_SYMBOL_GPL(disable_work);

/**
 * disable_work_sync - Disable, cancel and drain a work item
 * @work: work item to disable
 *
 * Similar to disable_work() but also wait for @work to finish if currently
 * executing.
 *
 * Must be called from a sleepable context if @work was last queued on a non-BH
 * workqueue. Can also be called from non-hardirq atomic contexts including BH
 * if @work was last queued on a BH workqueue.
 *
 * Returns %true if @work was pending, %false otherwise.
 */
bool disable_work_sync(struct work_struct *work)
{
	return __cancel_work_sync(work, WORK_CANCEL_DISABLE);
}
EXPORT_SYMBOL_GPL(disable_work_sync);

/**
 * enable_work - Enable a work item
 * @work: work item to enable
 *
 * Undo disable_work[_sync]() by decrementing @work's disable count. @work can
 * only be queued if its disable count is 0.
 *
 * Can be called from any context. Returns %true if the disable count reached 0.
 * Otherwise, %false.
 */
bool enable_work(struct work_struct *work)
{
	struct work_offq_data offqd;
	unsigned long irq_flags;

	work_grab_pending(work, 0, &irq_flags);

	work_offqd_unpack(&offqd, *work_data_bits(work));
	work_offqd_enable(&offqd);
	set_work_pool_and_clear_pending(work, offqd.pool_id,
					work_offqd_pack_flags(&offqd));
	local_irq_restore(irq_flags);

	return !offqd.disable;
}
EXPORT_SYMBOL_GPL(enable_work);

/**
 * disable_delayed_work - Disable and cancel a delayed work item
 * @dwork: delayed work item to disable
 *
 * disable_work() for delayed work items.
 */
bool disable_delayed_work(struct delayed_work *dwork)
{
	return __cancel_work(&dwork->work,
			     WORK_CANCEL_DELAYED | WORK_CANCEL_DISABLE);
}
EXPORT_SYMBOL_GPL(disable_delayed_work);

/**
 * disable_delayed_work_sync - Disable, cancel and drain a delayed work item
 * @dwork: delayed work item to disable
 *
 * disable_work_sync() for delayed work items.
 */
bool disable_delayed_work_sync(struct delayed_work *dwork)
{
	return __cancel_work_sync(&dwork->work,
				  WORK_CANCEL_DELAYED | WORK_CANCEL_DISABLE);
}
EXPORT_SYMBOL_GPL(disable_delayed_work_sync);

/**
 * enable_delayed_work - Enable a delayed work item
 * @dwork: delayed work item to enable
 *
 * enable_work() for delayed work items.
 */
bool enable_delayed_work(struct delayed_work *dwork)
{
	return enable_work(&dwork->work);
}
EXPORT_SYMBOL_GPL(enable_delayed_work);

/**
 * schedule_on_each_cpu - execute a function synchronously on each online CPU
 * @func: the function to call
 *
 * schedule_on_each_cpu() executes @func on each online CPU using the
 * system workqueue and blocks until all CPUs have completed.
 * schedule_on_each_cpu() is very slow.
 *
 * Return:
 * 0 on success, -errno on failure.
 */
int schedule_on_each_cpu(work_func_t func)
{
	int cpu;
	struct work_struct __percpu *works;

	works = alloc_percpu(struct work_struct);
	if (!works)
		return -ENOMEM;

	cpus_read_lock();

	for_each_online_cpu(cpu) {
		struct work_struct *work = per_cpu_ptr(works, cpu);

		INIT_WORK(work, func);
		schedule_work_on(cpu, work);
	}

	for_each_online_cpu(cpu)
		flush_work(per_cpu_ptr(works, cpu));

	cpus_read_unlock();
	free_percpu(works);
	return 0;
}

/**
 * execute_in_process_context - reliably execute the routine with user context
 * @fn:		the function to execute
 * @ew:		guaranteed storage for the execute work structure (must
 *		be available when the work executes)
 *
 * Executes the function immediately if process context is available,
 * otherwise schedules the function for delayed execution.
 *
 * Return:	0 - function was executed
 *		1 - function was scheduled for execution
 */
int execute_in_process_context(work_func_t fn, struct execute_work *ew)
{
	if (!in_interrupt()) {
		fn(&ew->work);
		return 0;
	}

	INIT_WORK(&ew->work, fn);
	schedule_work(&ew->work);

	return 1;
}
EXPORT_SYMBOL_GPL(execute_in_process_context);

/**
 * free_workqueue_attrs - free a workqueue_attrs
 * @attrs: workqueue_attrs to free
 *
 * Undo alloc_workqueue_attrs().
 */
void free_workqueue_attrs(struct workqueue_attrs *attrs)
{
	if (attrs) {
		free_cpumask_var(attrs->cpumask);
		free_cpumask_var(attrs->__pod_cpumask);
		kfree(attrs);
	}
}

/**
 * alloc_workqueue_attrs - allocate a workqueue_attrs
 *
 * Allocate a new workqueue_attrs, initialize with default settings and
 * return it.
 *
 * Return: The allocated new workqueue_attr on success. %NULL on failure.
 */
struct workqueue_attrs *alloc_workqueue_attrs_noprof(void)
{
	struct workqueue_attrs *attrs;

	attrs = kzalloc_obj(*attrs);
	if (!attrs)
		goto fail;
	if (!alloc_cpumask_var(&attrs->cpumask, GFP_KERNEL))
		goto fail;
	if (!alloc_cpumask_var(&attrs->__pod_cpumask, GFP_KERNEL))
		goto fail;

	cpumask_copy(attrs->cpumask, cpu_possible_mask);
	attrs->affn_scope = WQ_AFFN_DFL;
	return attrs;
fail:
	free_workqueue_attrs(attrs);
	return NULL;
}

static void copy_workqueue_attrs(struct workqueue_attrs *to,
				 const struct workqueue_attrs *from)
{
	to->nice = from->nice;
	cpumask_copy(to->cpumask, from->cpumask);
	cpumask_copy(to->__pod_cpumask, from->__pod_cpumask);
	to->affn_strict = from->affn_strict;

	/*
	 * Unlike hash and equality test, copying shouldn't ignore wq-only
	 * fields as copying is used for both pool and wq attrs. Instead,
	 * get_unbound_pool() explicitly clears the fields.
	 */
	to->affn_scope = from->affn_scope;
	to->ordered = from->ordered;
}

/*
 * Some attrs fields are workqueue-only. Clear them for worker_pool's. See the
 * comments in 'struct workqueue_attrs' definition.
 */
static void wqattrs_clear_for_pool(struct workqueue_attrs *attrs)
{
	attrs->affn_scope = WQ_AFFN_NR_TYPES;
	attrs->ordered = false;
	if (attrs->affn_strict)
		cpumask_copy(attrs->cpumask, cpu_possible_mask);
}

/* hash value of the content of @attr */
static u32 wqattrs_hash(const struct workqueue_attrs *attrs)
{
	u32 hash = 0;

	hash = jhash_1word(attrs->nice, hash);
	hash = jhash_1word(attrs->affn_strict, hash);
	hash = jhash(cpumask_bits(attrs->__pod_cpumask),
		     BITS_TO_LONGS(nr_cpumask_bits) * sizeof(long), hash);
	if (!attrs->affn_strict)
		hash = jhash(cpumask_bits(attrs->cpumask),
			     BITS_TO_LONGS(nr_cpumask_bits) * sizeof(long), hash);
	return hash;
}

/* content equality test */
static bool wqattrs_equal(const struct workqueue_attrs *a,
			  const struct workqueue_attrs *b)
{
	if (a->nice != b->nice)
		return false;
	if (a->affn_strict != b->affn_strict)
		return false;
	if (!cpumask_equal(a->__pod_cpumask, b->__pod_cpumask))
		return false;
	if (!a->affn_strict && !cpumask_equal(a->cpumask, b->cpumask))
		return false;
	return true;
}

/* Update @attrs with actually available CPUs */
static void wqattrs_actualize_cpumask(struct workqueue_attrs *attrs,
				      const cpumask_t *unbound_cpumask)
{
	/*
	 * Calculate the effective CPU mask of @attrs given @unbound_cpumask. If
	 * @attrs->cpumask doesn't overlap with @unbound_cpumask, we fallback to
	 * @unbound_cpumask.
	 */
	cpumask_and(attrs->cpumask, attrs->cpumask, unbound_cpumask);
	if (unlikely(cpumask_empty(attrs->cpumask)))
		cpumask_copy(attrs->cpumask, unbound_cpumask);
}

/* find wq_pod_type to use for @attrs */
static const struct wq_pod_type *
wqattrs_pod_type(const struct workqueue_attrs *attrs)
{
	enum wq_affn_scope scope;
	struct wq_pod_type *pt;

	/* to synchronize access to wq_affn_dfl */
	lockdep_assert_held(&wq_pool_mutex);

	if (attrs->affn_scope == WQ_AFFN_DFL)
		scope = wq_affn_dfl;
	else
		scope = attrs->affn_scope;

	pt = &wq_pod_types[scope];

	if (!WARN_ON_ONCE(attrs->affn_scope == WQ_AFFN_NR_TYPES) &&
	    likely(pt->nr_pods))
		return pt;

	/*
	 * Before workqueue_init_topology(), only SYSTEM is available which is
	 * initialized in workqueue_init_early().
	 */
	pt = &wq_pod_types[WQ_AFFN_SYSTEM];
	BUG_ON(!pt->nr_pods);
	return pt;
}

/**
 * init_worker_pool - initialize a newly zalloc'd worker_pool
 * @pool: worker_pool to initialize
 *
 * Initialize a newly zalloc'd @pool.  It also allocates @pool->attrs.
 *
 * Return: 0 on success, -errno on failure.  Even on failure, all fields
 * inside @pool proper are initialized and put_unbound_pool() can be called
 * on @pool safely to release it.
 */
static int init_worker_pool(struct worker_pool *pool)
{
	raw_spin_lock_init(&pool->lock);
	pool->id = -1;
	pool->cpu = -1;
	pool->node = NUMA_NO_NODE;
	pool->flags |= POOL_DISASSOCIATED;
	pool->watchdog_ts = jiffies;
	INIT_LIST_HEAD(&pool->worklist);
	INIT_LIST_HEAD(&pool->idle_list);
	hash_init(pool->busy_hash);

	timer_setup(&pool->idle_timer, idle_worker_timeout, TIMER_DEFERRABLE);
	INIT_WORK(&pool->idle_cull_work, idle_cull_fn);

	timer_setup(&pool->mayday_timer, pool_mayday_timeout, 0);

	INIT_LIST_HEAD(&pool->workers);

	ida_init(&pool->worker_ida);
	INIT_HLIST_NODE(&pool->hash_node);
	pool->refcnt = 1;
#ifdef CONFIG_PREEMPT_RT
	spin_lock_init(&pool->cb_lock);
#endif

	/* shouldn't fail above this point */
	pool->attrs = alloc_workqueue_attrs();
	if (!pool->attrs)
		return -ENOMEM;

	wqattrs_clear_for_pool(pool->attrs);

	return 0;
}

#ifdef CONFIG_LOCKDEP
static void wq_init_lockdep(struct workqueue_struct *wq)
{
	char *lock_name;

	lockdep_register_key(&wq->key);
	lock_name = kasprintf(GFP_KERNEL, "%s%s", "(wq_completion)", wq->name);
	if (!lock_name)
		lock_name = wq->name;

	wq->lock_name = lock_name;
	wq->lockdep_map = &wq->__lockdep_map;
	lockdep_init_map(wq->lockdep_map, lock_name, &wq->key, 0);
}

static void wq_unregister_lockdep(struct workqueue_struct *wq)
{
	if (wq->lockdep_map != &wq->__lockdep_map)
		return;

	lockdep_unregister_key(&wq->key);
}

static void wq_free_lockdep(struct workqueue_struct *wq)
{
	if (wq->lockdep_map != &wq->__lockdep_map)
		return;

	if (wq->lock_name != wq->name)
		kfree(wq->lock_name);
}
#else
static void wq_init_lockdep(struct workqueue_struct *wq)
{
}

static void wq_unregister_lockdep(struct workqueue_struct *wq)
{
}

static void wq_free_lockdep(struct workqueue_struct *wq)
{
}
#endif

static void free_node_nr_active(struct wq_node_nr_active **nna_ar)
{
	int node;

	for_each_node(node) {
		kfree(nna_ar[node]);
		nna_ar[node] = NULL;
	}

	kfree(nna_ar[nr_node_ids]);
	nna_ar[nr_node_ids] = NULL;
}

static void init_node_nr_active(struct wq_node_nr_active *nna)
{
	nna->max = WQ_DFL_MIN_ACTIVE;
	atomic_set(&nna->nr, 0);
	raw_spin_lock_init(&nna->lock);
	INIT_LIST_HEAD(&nna->pending_pwqs);
}

/*
 * Each node's nr_active counter will be accessed mostly from its own node and
 * should be allocated in the node.
 */
static int alloc_node_nr_active(struct wq_node_nr_active **nna_ar)
{
	struct wq_node_nr_active *nna;
	int node;

	for_each_node(node) {
		nna = kzalloc_node(sizeof(*nna), GFP_KERNEL, node);
		if (!nna)
			goto err_free;
		init_node_nr_active(nna);
		nna_ar[node] = nna;
	}

	/* [nr_node_ids] is used as the fallback */
	nna = kzalloc_node(sizeof(*nna), GFP_KERNEL, NUMA_NO_NODE);
	if (!nna)
		goto err_free;
	init_node_nr_active(nna);
	nna_ar[nr_node_ids] = nna;

	return 0;

err_free:
	free_node_nr_active(nna_ar);
	return -ENOMEM;
}

static void rcu_free_wq(struct rcu_head *rcu)
{
	struct workqueue_struct *wq =
		container_of(rcu, struct workqueue_struct, rcu);

	if (wq->flags & WQ_UNBOUND)
		free_node_nr_active(wq->node_nr_active);

	wq_free_lockdep(wq);
	free_percpu(wq->cpu_pwq);
	free_workqueue_attrs(wq->unbound_attrs);
	kfree(wq);
}

static void rcu_free_pool(struct rcu_head *rcu)
{
	struct worker_pool *pool = container_of(rcu, struct worker_pool, rcu);

	ida_destroy(&pool->worker_ida);
	free_workqueue_attrs(pool->attrs);
	kfree(pool);
}

/**
 * put_unbound_pool - put a worker_pool
 * @pool: worker_pool to put
 *
 * Put @pool.  If its refcnt reaches zero, it gets destroyed in RCU
 * safe manner.  get_unbound_pool() calls this function on its failure path
 * and this function should be able to release pools which went through,
 * successfully or not, init_worker_pool().
 *
 * Should be called with wq_pool_mutex held.
 */
static void put_unbound_pool(struct worker_pool *pool)
{
	struct worker *worker;
	LIST_HEAD(cull_list);

	lockdep_assert_held(&wq_pool_mutex);

	if (--pool->refcnt)
		return;

	/* sanity checks */
	if (WARN_ON(!(pool->cpu < 0)) ||
	    WARN_ON(!list_empty(&pool->worklist)))
		return;

	/* release id and unhash */
	if (pool->id >= 0)
		idr_remove(&worker_pool_idr, pool->id);
	hash_del(&pool->hash_node);

	/*
	 * Become the manager and destroy all workers.  This prevents
	 * @pool's workers from blocking on attach_mutex.  We're the last
	 * manager and @pool gets freed with the flag set.
	 *
	 * Having a concurrent manager is quite unlikely to happen as we can
	 * only get here with
	 *   pwq->refcnt == pool->refcnt == 0
	 * which implies no work queued to the pool, which implies no worker can
	 * become the manager. However a worker could have taken the role of
	 * manager before the refcnts dropped to 0, since maybe_create_worker()
	 * drops pool->lock
	 */
	while (true) {
		rcuwait_wait_event(&manager_wait,
				   !(pool->flags & POOL_MANAGER_ACTIVE),
				   TASK_UNINTERRUPTIBLE);

		mutex_lock(&wq_pool_attach_mutex);
		raw_spin_lock_irq(&pool->lock);
		if (!(pool->flags & POOL_MANAGER_ACTIVE)) {
			pool->flags |= POOL_MANAGER_ACTIVE;
			break;
		}
		raw_spin_unlock_irq(&pool->lock);
		mutex_unlock(&wq_pool_attach_mutex);
	}

	while ((worker = first_idle_worker(pool)))
		set_worker_dying(worker, &cull_list);
	WARN_ON(pool->nr_workers || pool->nr_idle);
	raw_spin_unlock_irq(&pool->lock);

	detach_dying_workers(&cull_list);

	mutex_unlock(&wq_pool_attach_mutex);

	reap_dying_workers(&cull_list);

	/* shut down the timers */
	timer_delete_sync(&pool->idle_timer);
	cancel_work_sync(&pool->idle_cull_work);
	timer_delete_sync(&pool->mayday_timer);

	/* RCU protected to allow dereferences from get_work_pool() */
	call_rcu(&pool->rcu, rcu_free_pool);
}

/**
 * get_unbound_pool - get a worker_pool with the specified attributes
 * @attrs: the attributes of the worker_pool to get
 *
 * Obtain a worker_pool which has the same attributes as @attrs, bump the
 * reference count and return it.  If there already is a matching
 * worker_pool, it will be used; otherwise, this function attempts to
 * create a new one.
 *
 * Should be called with wq_pool_mutex held.
 *
 * Return: On success, a worker_pool with the same attributes as @attrs.
 * On failure, %NULL.
 */
static struct worker_pool *get_unbound_pool(const struct workqueue_attrs *attrs)
{
	struct wq_pod_type *pt = &wq_pod_types[WQ_AFFN_NUMA];
	u32 hash = wqattrs_hash(attrs);
	struct worker_pool *pool;
	int pod, node = NUMA_NO_NODE;

	lockdep_assert_held(&wq_pool_mutex);

	/* do we already have a matching pool? */
	hash_for_each_possible(unbound_pool_hash, pool, hash_node, hash) {
		if (wqattrs_equal(pool->attrs, attrs)) {
			pool->refcnt++;
			return pool;
		}
	}

	/* If __pod_cpumask is contained inside a NUMA pod, that's our node */
	for (pod = 0; pod < pt->nr_pods; pod++) {
		if (cpumask_subset(attrs->__pod_cpumask, pt->pod_cpus[pod])) {
			node = pt->pod_node[pod];
			break;
		}
	}

	/* nope, create a new one */
	pool = kzalloc_node(sizeof(*pool), GFP_KERNEL, node);
	if (!pool || init_worker_pool(pool) < 0)
		goto fail;

	pool->node = node;
	copy_workqueue_attrs(pool->attrs, attrs);
	wqattrs_clear_for_pool(pool->attrs);

	if (worker_pool_assign_id(pool) < 0)
		goto fail;

	/* create and start the initial worker */
	if (wq_online && !create_worker(pool))
		goto fail;

	/* install */
	hash_add(unbound_pool_hash, &pool->hash_node, hash);

	return pool;
fail:
	if (pool)
		put_unbound_pool(pool);
	return NULL;
}

/*
 * Scheduled on pwq_release_worker by put_pwq() when an unbound pwq hits zero
 * refcnt and needs to be destroyed.
 */
static void pwq_release_workfn(struct kthread_work *work)
{
	struct pool_workqueue *pwq = container_of(work, struct pool_workqueue,
						  release_work);
	struct workqueue_struct *wq = pwq->wq;
	struct worker_pool *pool = pwq->pool;
	bool is_last = false;

	/*
	 * When @pwq is not linked, it doesn't hold any reference to the
	 * @wq, and @wq is invalid to access.
	 */
	if (!list_empty(&pwq->pwqs_node)) {
		mutex_lock(&wq->mutex);
		list_del_rcu(&pwq->pwqs_node);
		is_last = list_empty(&wq->pwqs);

		/*
		 * For ordered workqueue with a plugged dfl_pwq, restart it now.
		 */
		if (!is_last && (wq->flags & __WQ_ORDERED))
			unplug_oldest_pwq(wq);

		mutex_unlock(&wq->mutex);
	}

	if (wq->flags & WQ_UNBOUND) {
		mutex_lock(&wq_pool_mutex);
		put_unbound_pool(pool);
		mutex_unlock(&wq_pool_mutex);
	}

	if (!list_empty(&pwq->pending_node)) {
		struct wq_node_nr_active *nna =
			wq_node_nr_active(pwq->wq, pwq->pool->node);

		raw_spin_lock_irq(&nna->lock);
		list_del_init(&pwq->pending_node);
		raw_spin_unlock_irq(&nna->lock);
	}

	kfree_rcu(pwq, rcu);

	/*
	 * If we're the last pwq going away, @wq is already dead and no one
	 * is gonna access it anymore.  Schedule RCU free.
	 */
	if (is_last) {
		wq_unregister_lockdep(wq);
		call_rcu(&wq->rcu, rcu_free_wq);
	}
}

/* initialize newly allocated @pwq which is associated with @wq and @pool */
static void init_pwq(struct pool_workqueue *pwq, struct workqueue_struct *wq,
		     struct worker_pool *pool)
{
	BUG_ON((unsigned long)pwq & ~WORK_STRUCT_PWQ_MASK);

	memset(pwq, 0, sizeof(*pwq));

	pwq->pool = pool;
	pwq->wq = wq;
	pwq->flush_color = -1;
	pwq->refcnt = 1;
	INIT_LIST_HEAD(&pwq->inactive_works);
	INIT_LIST_HEAD(&pwq->pending_node);
	INIT_LIST_HEAD(&pwq->pwqs_node);
	INIT_LIST_HEAD(&pwq->mayday_node);
	kthread_init_work(&pwq->release_work, pwq_release_workfn);

	/*
	 * Set the dummy cursor work with valid function and get_work_pwq().
	 *
	 * The cursor work should only be in the pwq->pool->worklist, and
	 * should not be treated as a processable work item.
	 *
	 * WORK_STRUCT_PENDING and WORK_STRUCT_INACTIVE just make it less
	 * surprise for kernel debugging tools and reviewers.
	 */
	INIT_WORK(&pwq->mayday_cursor, mayday_cursor_func);
	atomic_long_set(&pwq->mayday_cursor.data, (unsigned long)pwq |
			WORK_STRUCT_PENDING | WORK_STRUCT_PWQ | WORK_STRUCT_INACTIVE);
}

/* sync @pwq with the current state of its associated wq and link it */
static void link_pwq(struct pool_workqueue *pwq)
{
	struct workqueue_struct *wq = pwq->wq;

	lockdep_assert_held(&wq->mutex);

	/* may be called multiple times, ignore if already linked */
	if (!list_empty(&pwq->pwqs_node))
		return;

	/* set the matching work_color */
	pwq->work_color = wq->work_color;

	/* link in @pwq */
	list_add_tail_rcu(&pwq->pwqs_node, &wq->pwqs);
}

/* obtain a pool matching @attr and create a pwq associating the pool and @wq */
static struct pool_workqueue *alloc_unbound_pwq(struct workqueue_struct *wq,
					const struct workqueue_attrs *attrs)
{
	struct worker_pool *pool;
	struct pool_workqueue *pwq;

	lockdep_assert_held(&wq_pool_mutex);

	pool = get_unbound_pool(attrs);
	if (!pool)
		return NULL;

	pwq = kmem_cache_alloc_node(pwq_cache, GFP_KERNEL, pool->node);
	if (!pwq) {
		put_unbound_pool(pool);
		return NULL;
	}

	init_pwq(pwq, wq, pool);
	return pwq;
}

static void apply_wqattrs_lock(void)
{
	mutex_lock(&wq_pool_mutex);
}

static void apply_wqattrs_unlock(void)
{
	mutex_unlock(&wq_pool_mutex);
}

/**
 * wq_calc_pod_cpumask - calculate a wq_attrs' cpumask for a pod
 * @attrs: the wq_attrs of the default pwq of the target workqueue
 * @cpu: the target CPU
 *
 * Calculate the cpumask a workqueue with @attrs should use on @pod.
 * The result is stored in @attrs->__pod_cpumask.
 *
 * If pod affinity is not enabled, @attrs->cpumask is always used. If enabled
 * and @pod has online CPUs requested by @attrs, the returned cpumask is the
 * intersection of the possible CPUs of @pod and @attrs->cpumask.
 *
 * The caller is responsible for ensuring that the cpumask of @pod stays stable.
 */
static void wq_calc_pod_cpumask(struct workqueue_attrs *attrs, int cpu)
{
	const struct wq_pod_type *pt = wqattrs_pod_type(attrs);
	int pod = pt->cpu_pod[cpu];

	/* calculate possible CPUs in @pod that @attrs wants */
	cpumask_and(attrs->__pod_cpumask, pt->pod_cpus[pod], attrs->cpumask);
	/* does @pod have any online CPUs @attrs wants? */
	if (!cpumask_intersects(attrs->__pod_cpumask, wq_online_cpumask)) {
		cpumask_copy(attrs->__pod_cpumask, attrs->cpumask);
		return;
	}
}

/* install @pwq into @wq and return the old pwq, @cpu < 0 for dfl_pwq */
static struct pool_workqueue *install_unbound_pwq(struct workqueue_struct *wq,
					int cpu, struct pool_workqueue *pwq)
{
	struct pool_workqueue __rcu **slot = unbound_pwq_slot(wq, cpu);
	struct pool_workqueue *old_pwq;

	lockdep_assert_held(&wq_pool_mutex);
	lockdep_assert_held(&wq->mutex);

	/* link_pwq() can handle duplicate calls */
	link_pwq(pwq);

	old_pwq = rcu_access_pointer(*slot);
	rcu_assign_pointer(*slot, pwq);
	return old_pwq;
}

/* context to store the prepared attrs & pwqs before applying */
struct apply_wqattrs_ctx {
	struct workqueue_struct	*wq;		/* target workqueue */
	struct workqueue_attrs	*attrs;		/* attrs to apply */
	struct list_head	list;		/* queued for batching commit */
	struct pool_workqueue	*dfl_pwq;
	struct pool_workqueue	*pwq_tbl[];
};

/* free the resources after success or abort */
static void apply_wqattrs_cleanup(struct apply_wqattrs_ctx *ctx)
{
	if (ctx) {
		int cpu;

		for_each_possible_cpu(cpu)
			put_pwq_unlocked(ctx->pwq_tbl[cpu]);
		put_pwq_unlocked(ctx->dfl_pwq);

		free_workqueue_attrs(ctx->attrs);

		kfree(ctx);
	}
}

/* allocate the attrs and pwqs for later installation */
static struct apply_wqattrs_ctx *
apply_wqattrs_prepare(struct workqueue_struct *wq,
		      const struct workqueue_attrs *attrs,
		      const cpumask_var_t unbound_cpumask)
{
	struct apply_wqattrs_ctx *ctx;
	struct workqueue_attrs *new_attrs;
	int cpu;

	lockdep_assert_held(&wq_pool_mutex);

	if (WARN_ON(attrs->affn_scope < 0 ||
		    attrs->affn_scope >= WQ_AFFN_NR_TYPES))
		return ERR_PTR(-EINVAL);

	ctx = kzalloc_flex(*ctx, pwq_tbl, nr_cpu_ids);

	new_attrs = alloc_workqueue_attrs();
	if (!ctx || !new_attrs)
		goto out_free;

	/*
	 * If something goes wrong during CPU up/down, we'll fall back to
	 * the default pwq covering whole @attrs->cpumask.  Always create
	 * it even if we don't use it immediately.
	 */
	copy_workqueue_attrs(new_attrs, attrs);
	wqattrs_actualize_cpumask(new_attrs, unbound_cpumask);
	cpumask_copy(new_attrs->__pod_cpumask, new_attrs->cpumask);
	ctx->dfl_pwq = alloc_unbound_pwq(wq, new_attrs);
	if (!ctx->dfl_pwq)
		goto out_free;

	for_each_possible_cpu(cpu) {
		if (new_attrs->ordered) {
			ctx->dfl_pwq->refcnt++;
			ctx->pwq_tbl[cpu] = ctx->dfl_pwq;
		} else {
			wq_calc_pod_cpumask(new_attrs, cpu);
			ctx->pwq_tbl[cpu] = alloc_unbound_pwq(wq, new_attrs);
			if (!ctx->pwq_tbl[cpu])
				goto out_free;
		}
	}

	/* save the user configured attrs and sanitize it. */
	copy_workqueue_attrs(new_attrs, attrs);
	cpumask_and(new_attrs->cpumask, new_attrs->cpumask, cpu_possible_mask);
	cpumask_copy(new_attrs->__pod_cpumask, new_attrs->cpumask);
	ctx->attrs = new_attrs;

	/*
	 * For initialized ordered workqueues, there should only be one pwq
	 * (dfl_pwq). Set the plugged flag of ctx->dfl_pwq to suspend execution
	 * of newly queued work items until execution of older work items in
	 * the old pwq's have completed.
	 */
	if ((wq->flags & __WQ_ORDERED) && !list_empty(&wq->pwqs))
		ctx->dfl_pwq->plugged = true;

	ctx->wq = wq;
	return ctx;

out_free:
	free_workqueue_attrs(new_attrs);
	apply_wqattrs_cleanup(ctx);
	return ERR_PTR(-ENOMEM);
}

/* set attrs and install prepared pwqs, @ctx points to old pwqs on return */
static void apply_wqattrs_commit(struct apply_wqattrs_ctx *ctx)
{
	int cpu;

	/* all pwqs have been created successfully, let's install'em */
	mutex_lock(&ctx->wq->mutex);

	copy_workqueue_attrs(ctx->wq->unbound_attrs, ctx->attrs);

	/* save the previous pwqs and install the new ones */
	for_each_possible_cpu(cpu)
		ctx->pwq_tbl[cpu] = install_unbound_pwq(ctx->wq, cpu,
							ctx->pwq_tbl[cpu]);
	ctx->dfl_pwq = install_unbound_pwq(ctx->wq, -1, ctx->dfl_pwq);

	/* update node_nr_active->max */
	wq_update_node_max_active(ctx->wq, -1);

	mutex_unlock(&ctx->wq->mutex);
}

static int apply_workqueue_attrs_locked(struct workqueue_struct *wq,
					const struct workqueue_attrs *attrs)
{
	struct apply_wqattrs_ctx *ctx;

	/* only unbound workqueues can change attributes */
	if (WARN_ON(!(wq->flags & WQ_UNBOUND)))
		return -EINVAL;

	ctx = apply_wqattrs_prepare(wq, attrs, wq_unbound_cpumask);
	if (IS_ERR(ctx))
		return PTR_ERR(ctx);

	/* the ctx has been prepared successfully, let's commit it */
	apply_wqattrs_commit(ctx);
	apply_wqattrs_cleanup(ctx);

	return 0;
}

/**
 * apply_workqueue_attrs - apply new workqueue_attrs to an unbound workqueue
 * @wq: the target workqueue
 * @attrs: the workqueue_attrs to apply, allocated with alloc_workqueue_attrs()
 *
 * Apply @attrs to an unbound workqueue @wq. Unless disabled, this function maps
 * a separate pwq to each CPU pod with possibles CPUs in @attrs->cpumask so that
 * work items are affine to the pod it was issued on. Older pwqs are released as
 * in-flight work items finish. Note that a work item which repeatedly requeues
 * itself back-to-back will stay on its current pwq.
 *
 * Performs GFP_KERNEL allocations.
 *
 * Return: 0 on success and -errno on failure.
 */
int apply_workqueue_attrs(struct workqueue_struct *wq,
			  const struct workqueue_attrs *attrs)
{
	int ret;

	mutex_lock(&wq_pool_mutex);
	ret = apply_workqueue_attrs_locked(wq, attrs);
	mutex_unlock(&wq_pool_mutex);

	return ret;
}

/**
 * unbound_wq_update_pwq - update a pwq slot for CPU hot[un]plug
 * @wq: the target workqueue
 * @cpu: the CPU to update the pwq slot for
 *
 * This function is to be called from %CPU_DOWN_PREPARE, %CPU_ONLINE and
 * %CPU_DOWN_FAILED.  @cpu is in the same pod of the CPU being hot[un]plugged.
 *
 *
 * If pod affinity can't be adjusted due to memory allocation failure, it falls
 * back to @wq->dfl_pwq which may not be optimal but is always correct.
 *
 * Note that when the last allowed CPU of a pod goes offline for a workqueue
 * with a cpumask spanning multiple pods, the workers which were already
 * executing the work items for the workqueue will lose their CPU affinity and
 * may execute on any CPU. This is similar to how per-cpu workqueues behave on
 * CPU_DOWN. If a workqueue user wants strict affinity, it's the user's
 * responsibility to flush the work item from CPU_DOWN_PREPARE.
 */
static void unbound_wq_update_pwq(struct workqueue_struct *wq, int cpu)
{
	struct pool_workqueue *old_pwq = NULL, *pwq;
	struct workqueue_attrs *target_attrs;

	lockdep_assert_held(&wq_pool_mutex);

	if (!(wq->flags & WQ_UNBOUND) || wq->unbound_attrs->ordered)
		return;

	/*
	 * We don't wanna alloc/free wq_attrs for each wq for each CPU.
	 * Let's use a preallocated one.  The following buf is protected by
	 * CPU hotplug exclusion.
	 */
	target_attrs = unbound_wq_update_pwq_attrs_buf;

	copy_workqueue_attrs(target_attrs, wq->unbound_attrs);
	wqattrs_actualize_cpumask(target_attrs, wq_unbound_cpumask);

	/* nothing to do if the target cpumask matches the current pwq */
	wq_calc_pod_cpumask(target_attrs, cpu);
	if (wqattrs_equal(target_attrs, unbound_pwq(wq, cpu)->pool->attrs))
		return;

	/* create a new pwq */
	pwq = alloc_unbound_pwq(wq, target_attrs);
	if (!pwq) {
		pr_warn("workqueue: allocation failed while updating CPU pod affinity of \"%s\"\n",
			wq->name);
		goto use_dfl_pwq;
	}

	/* Install the new pwq. */
	mutex_lock(&wq->mutex);
	old_pwq = install_unbound_pwq(wq, cpu, pwq);
	goto out_unlock;

use_dfl_pwq:
	mutex_lock(&wq->mutex);
	pwq = unbound_pwq(wq, -1);
	raw_spin_lock_irq(&pwq->pool->lock);
	get_pwq(pwq);
	raw_spin_unlock_irq(&pwq->pool->lock);
	old_pwq = install_unbound_pwq(wq, cpu, pwq);
out_unlock:
	mutex_unlock(&wq->mutex);
	put_pwq_unlocked(old_pwq);
}

static int alloc_and_link_pwqs(struct workqueue_struct *wq)
{
	bool highpri = wq->flags & WQ_HIGHPRI;
	int cpu, ret;

	lockdep_assert_held(&wq_pool_mutex);

	wq->cpu_pwq = alloc_percpu(struct pool_workqueue *);
	if (!wq->cpu_pwq)
		goto enomem;

	if (!(wq->flags & WQ_UNBOUND)) {
		struct worker_pool __percpu *pools;

		if (wq->flags & WQ_BH)
			pools = bh_worker_pools;
		else
			pools = cpu_worker_pools;

		for_each_possible_cpu(cpu) {
			struct pool_workqueue **pwq_p;
			struct worker_pool *pool;

			pool = &(per_cpu_ptr(pools, cpu)[highpri]);
			pwq_p = per_cpu_ptr(wq->cpu_pwq, cpu);

			*pwq_p = kmem_cache_alloc_node(pwq_cache, GFP_KERNEL,
						       pool->node);
			if (!*pwq_p)
				goto enomem;

			init_pwq(*pwq_p, wq, pool);

			mutex_lock(&wq->mutex);
			link_pwq(*pwq_p);
			mutex_unlock(&wq->mutex);
		}
		return 0;
	}

	if (wq->flags & __WQ_ORDERED) {
		struct pool_workqueue *dfl_pwq;

		ret = apply_workqueue_attrs_locked(wq, ordered_wq_attrs[highpri]);
		/* there should only be single pwq for ordering guarantee */
		dfl_pwq = rcu_access_pointer(wq->dfl_pwq);
		WARN(!ret && (wq->pwqs.next != &dfl_pwq->pwqs_node ||
			      wq->pwqs.prev != &dfl_pwq->pwqs_node),
		     "ordering guarantee broken for workqueue %s\n", wq->name);
	} else {
		ret = apply_workqueue_attrs_locked(wq, unbound_std_wq_attrs[highpri]);
	}

	return ret;

enomem:
	if (wq->cpu_pwq) {
		for_each_possible_cpu(cpu) {
			struct pool_workqueue *pwq = *per_cpu_ptr(wq->cpu_pwq, cpu);

			if (pwq)
				kmem_cache_free(pwq_cache, pwq);
		}
		free_percpu(wq->cpu_pwq);
		wq->cpu_pwq = NULL;
	}
	return -ENOMEM;
}

static int wq_clamp_max_active(int max_active, unsigned int flags,
			       const char *name)
{
	if (max_active < 1 || max_active > WQ_MAX_ACTIVE)
		pr_warn("workqueue: max_active %d requested for %s is out of range, clamping between %d and %d\n",
			max_active, name, 1, WQ_MAX_ACTIVE);

	return clamp_val(max_active, 1, WQ_MAX_ACTIVE);
}

/*
 * Workqueues which may be used during memory reclaim should have a rescuer
 * to guarantee forward progress.
 */
static int init_rescuer(struct workqueue_struct *wq)
{
	struct worker *rescuer;
	char id_buf[WORKER_ID_LEN];
	int ret;

	lockdep_assert_held(&wq_pool_mutex);

	if (!(wq->flags & WQ_MEM_RECLAIM))
		return 0;

	rescuer = alloc_worker(NUMA_NO_NODE);
	if (!rescuer) {
		pr_err("workqueue: Failed to allocate a rescuer for wq \"%s\"\n",
		       wq->name);
		return -ENOMEM;
	}

	rescuer->rescue_wq = wq;
	format_worker_id(id_buf, sizeof(id_buf), rescuer, NULL);

	rescuer->task = kthread_create(rescuer_thread, rescuer, "%s", id_buf);
	if (IS_ERR(rescuer->task)) {
		ret = PTR_ERR(rescuer->task);
		pr_err("workqueue: Failed to create a rescuer kthread for wq \"%s\": %pe",
		       wq->name, ERR_PTR(ret));
		kfree(rescuer);
		return ret;
	}

	wq->rescuer = rescuer;

	/* initial cpumask is consistent with the detached rescuer and unbind_worker() */
	if (cpumask_intersects(wq_unbound_cpumask, cpu_active_mask))
		kthread_bind_mask(rescuer->task, wq_unbound_cpumask);
	else
		kthread_bind_mask(rescuer->task, cpu_possible_mask);

	wake_up_process(rescuer->task);

	return 0;
}

/**
 * wq_adjust_max_active - update a wq's max_active to the current setting
 * @wq: target workqueue
 *
 * If @wq isn't freezing, set @wq->max_active to the saved_max_active and
 * activate inactive work items accordingly. If @wq is freezing, clear
 * @wq->max_active to zero.
 */
static void wq_adjust_max_active(struct workqueue_struct *wq)
{
	bool activated;
	int new_max, new_min;

	lockdep_assert_held(&wq->mutex);

	if ((wq->flags & WQ_FREEZABLE) && workqueue_freezing) {
		new_max = 0;
		new_min = 0;
	} else {
		new_max = wq->saved_max_active;
		new_min = wq->saved_min_active;
	}

	if (wq->max_active == new_max && wq->min_active == new_min)
		return;

	/*
	 * Update @wq->max/min_active and then kick inactive work items if more
	 * active work items are allowed. This doesn't break work item ordering
	 * because new work items are always queued behind existing inactive
	 * work items if there are any.
	 */
	WRITE_ONCE(wq->max_active, new_max);
	WRITE_ONCE(wq->min_active, new_min);

	if (wq->flags & WQ_UNBOUND)
		wq_update_node_max_active(wq, -1);

	if (new_max == 0)
		return;

	/*
	 * Round-robin through pwq's activating the first inactive work item
	 * until max_active is filled.
	 */
	do {
		struct pool_workqueue *pwq;

		activated = false;
		for_each_pwq(pwq, wq) {
			unsigned long irq_flags;

			/* can be called during early boot w/ irq disabled */
			raw_spin_lock_irqsave(&pwq->pool->lock, irq_flags);
			if (pwq_activate_first_inactive(pwq, true)) {
				activated = true;
				kick_pool(pwq->pool);
			}
			raw_spin_unlock_irqrestore(&pwq->pool->lock, irq_flags);
		}
	} while (activated);
}

__printf(1, 0)
static struct workqueue_struct *__alloc_workqueue(const char *fmt,
						  unsigned int flags,
						  int max_active, va_list args)
{
	struct workqueue_struct *wq;
	size_t wq_size;
	int name_len;

	if (flags & WQ_BH) {
		if (WARN_ON_ONCE(flags & ~__WQ_BH_ALLOWS))
			return NULL;
		if (WARN_ON_ONCE(max_active))
			return NULL;
	}

	/* see the comment above the definition of WQ_POWER_EFFICIENT */
	if ((flags & WQ_POWER_EFFICIENT) && wq_power_efficient)
		flags |= WQ_UNBOUND;

	/* allocate wq and format name */
	if (flags & WQ_UNBOUND)
		wq_size = struct_size(wq, node_nr_active, nr_node_ids + 1);
	else
		wq_size = sizeof(*wq);

	wq = kzalloc_noprof(wq_size, GFP_KERNEL);
	if (!wq)
		return NULL;

	if (flags & WQ_UNBOUND) {
		wq->unbound_attrs = alloc_workqueue_attrs_noprof();
		if (!wq->unbound_attrs)
			goto err_free_wq;
	}

	name_len = vsnprintf(wq->name, sizeof(wq->name), fmt, args);

	if (name_len >= WQ_NAME_LEN)
		pr_warn_once("workqueue: name exceeds WQ_NAME_LEN. Truncating to: %s\n",
			     wq->name);

	if (flags & WQ_BH) {
		/*
		 * BH workqueues always share a single execution context per CPU
		 * and don't impose any max_active limit.
		 */
		max_active = INT_MAX;
	} else {
		max_active = max_active ?: WQ_DFL_ACTIVE;
		max_active = wq_clamp_max_active(max_active, flags, wq->name);
	}

	/* init wq */
	wq->flags = flags;
	wq->max_active = max_active;
	wq->min_active = min(max_active, WQ_DFL_MIN_ACTIVE);
	wq->saved_max_active = wq->max_active;
	wq->saved_min_active = wq->min_active;
	mutex_init(&wq->mutex);
	atomic_set(&wq->nr_pwqs_to_flush, 0);
	INIT_LIST_HEAD(&wq->pwqs);
	INIT_LIST_HEAD(&wq->flusher_queue);
	INIT_LIST_HEAD(&wq->flusher_overflow);
	INIT_LIST_HEAD(&wq->maydays);

	INIT_LIST_HEAD(&wq->list);

	if (flags & WQ_UNBOUND) {
		if (alloc_node_nr_active(wq->node_nr_active) < 0)
			goto err_free_wq;
	}

	/*
	 * wq_pool_mutex protects the workqueues list, allocations of PWQs,
	 * and the global freeze state.
	 */
	apply_wqattrs_lock();

	if (alloc_and_link_pwqs(wq) < 0)
		goto err_unlock_free_node_nr_active;

	mutex_lock(&wq->mutex);
	wq_adjust_max_active(wq);
	mutex_unlock(&wq->mutex);

	list_add_tail_rcu(&wq->list, &workqueues);

	if (wq_online && init_rescuer(wq) < 0)
		goto err_unlock_destroy;

	apply_wqattrs_unlock();

	if ((wq->flags & WQ_SYSFS) && workqueue_sysfs_register(wq))
		goto err_destroy;

	return wq;

err_unlock_free_node_nr_active:
	apply_wqattrs_unlock();
	/*
	 * Failed alloc_and_link_pwqs() may leave pending pwq->release_work,
	 * flushing the pwq_release_worker ensures that the pwq_release_workfn()
	 * completes before calling kfree(wq).
	 */
	if (wq->flags & WQ_UNBOUND) {
		kthread_flush_worker(pwq_release_worker);
		free_node_nr_active(wq->node_nr_active);
	}
err_free_wq:
	free_workqueue_attrs(wq->unbound_attrs);
	kfree(wq);
	return NULL;
err_unlock_destroy:
	apply_wqattrs_unlock();
err_destroy:
	destroy_workqueue(wq);
	return NULL;
}

__printf(1, 4)
struct workqueue_struct *alloc_workqueue_noprof(const char *fmt,
						unsigned int flags,
						int max_active, ...)
{
	struct workqueue_struct *wq;
	va_list args;

	va_start(args, max_active);
	wq = __alloc_workqueue(fmt, flags, max_active, args);
	va_end(args);
	if (!wq)
		return NULL;

	wq_init_lockdep(wq);

	return wq;
}
EXPORT_SYMBOL_GPL(alloc_workqueue_noprof);

#ifdef CONFIG_LOCKDEP
__printf(1, 5)
struct workqueue_struct *
alloc_workqueue_lockdep_map(const char *fmt, unsigned int flags,
			    int max_active, struct lockdep_map *lockdep_map, ...)
{
	struct workqueue_struct *wq;
	va_list args;

	va_start(args, lockdep_map);
	wq = __alloc_workqueue(fmt, flags, max_active, args);
	va_end(args);
	if (!wq)
		return NULL;

	wq->lockdep_map = lockdep_map;

	return wq;
}
EXPORT_SYMBOL_GPL(alloc_workqueue_lockdep_map);
#endif

static bool pwq_busy(struct pool_workqueue *pwq)
{
	int i;

	for (i = 0; i < WORK_NR_COLORS; i++)
		if (pwq->nr_in_flight[i])
			return true;

	if ((pwq != rcu_access_pointer(pwq->wq->dfl_pwq)) && (pwq->refcnt > 1))
		return true;
	if (!pwq_is_empty(pwq))
		return true;

	return false;
}

/**
 * destroy_workqueue - safely terminate a workqueue
 * @wq: target workqueue
 *
 * Safely destroy a workqueue. All work currently pending will be done first.
 *
 * This function does NOT guarantee that non-pending work that has been
 * submitted with queue_delayed_work() and similar functions will be done
 * before destroying the workqueue. The fundamental problem is that, currently,
 * the workqueue has no way of accessing non-pending delayed_work. delayed_work
 * is only linked on the timer-side. All delayed_work must, therefore, be
 * canceled before calling this function.
 *
 * TODO: It would be better if the problem described above wouldn't exist and
 * destroy_workqueue() would cleanly cancel all pending and non-pending
 * delayed_work.
 */
void destroy_workqueue(struct workqueue_struct *wq)
{
	struct pool_workqueue *pwq;
	int cpu;

	/*
	 * Remove it from sysfs first so that sanity check failure doesn't
	 * lead to sysfs name conflicts.
	 */
	workqueue_sysfs_unregister(wq);

	/* mark the workqueue destruction is in progress */
	mutex_lock(&wq->mutex);
	wq->flags |= __WQ_DESTROYING;
	mutex_unlock(&wq->mutex);

	/* drain it before proceeding with destruction */
	drain_workqueue(wq);

	/* kill rescuer, if sanity checks fail, leave it w/o rescuer */
	if (wq->rescuer) {
		/* rescuer will empty maydays list before exiting */
		kthread_stop(wq->rescuer->task);
		kfree(wq->rescuer);
		wq->rescuer = NULL;
	}

	/*
	 * Sanity checks - grab all the locks so that we wait for all
	 * in-flight operations which may do put_pwq().
	 */
	mutex_lock(&wq_pool_mutex);
	mutex_lock(&wq->mutex);
	for_each_pwq(pwq, wq) {
		raw_spin_lock_irq(&pwq->pool->lock);
		if (WARN_ON(pwq_busy(pwq))) {
			pr_warn("%s: %s has the following busy pwq\n",
				__func__, wq->name);
			show_pwq(pwq);
			raw_spin_unlock_irq(&pwq->pool->lock);
			mutex_unlock(&wq->mutex);
			mutex_unlock(&wq_pool_mutex);
			show_one_workqueue(wq);
			return;
		}
		raw_spin_unlock_irq(&pwq->pool->lock);
	}
	mutex_unlock(&wq->mutex);

	/*
	 * wq list is used to freeze wq, remove from list after
	 * flushing is complete in case freeze races us.
	 */
	list_del_rcu(&wq->list);
	mutex_unlock(&wq_pool_mutex);

	/*
	 * We're the sole accessor of @wq. Directly access cpu_pwq and dfl_pwq
	 * to put the base refs. @wq will be auto-destroyed from the last
	 * pwq_put. RCU read lock prevents @wq from going away from under us.
	 */
	rcu_read_lock();

	for_each_possible_cpu(cpu) {
		put_pwq_unlocked(unbound_pwq(wq, cpu));
		RCU_INIT_POINTER(*unbound_pwq_slot(wq, cpu), NULL);
	}

	put_pwq_unlocked(unbound_pwq(wq, -1));
	RCU_INIT_POINTER(*unbound_pwq_slot(wq, -1), NULL);

	rcu_read_unlock();
}
EXPORT_SYMBOL_GPL(destroy_workqueue);

/**
 * workqueue_set_max_active - adjust max_active of a workqueue
 * @wq: target workqueue
 * @max_active: new max_active value.
 *
 * Set max_active of @wq to @max_active. See the alloc_workqueue() function
 * comment.
 *
 * CONTEXT:
 * Don't call from IRQ context.
 */
void workqueue_set_max_active(struct workqueue_struct *wq, int max_active)
{
	/* max_active doesn't mean anything for BH workqueues */
	if (WARN_ON(wq->flags & WQ_BH))
		return;
	/* disallow meddling with max_active for ordered workqueues */
	if (WARN_ON(wq->flags & __WQ_ORDERED))
		return;

	max_active = wq_clamp_max_active(max_active, wq->flags, wq->name);

	mutex_lock(&wq->mutex);

	wq->saved_max_active = max_active;
	if (wq->flags & WQ_UNBOUND)
		wq->saved_min_active = min(wq->saved_min_active, max_active);

	wq_adjust_max_active(wq);

	mutex_unlock(&wq->mutex);
}
EXPORT_SYMBOL_GPL(workqueue_set_max_active);

/**
 * workqueue_set_min_active - adjust min_active of an unbound workqueue
 * @wq: target unbound workqueue
 * @min_active: new min_active value
 *
 * Set min_active of an unbound workqueue. Unlike other types of workqueues, an
 * unbound workqueue is not guaranteed to be able to process max_active
 * interdependent work items. Instead, an unbound workqueue is guaranteed to be
 * able to process min_active number of interdependent work items which is
 * %WQ_DFL_MIN_ACTIVE by default.
 *
 * Use this function to adjust the min_active value between 0 and the current
 * max_active.
 */
void workqueue_set_min_active(struct workqueue_struct *wq, int min_active)
{
	/* min_active is only meaningful for non-ordered unbound workqueues */
	if (WARN_ON((wq->flags & (WQ_BH | WQ_UNBOUND | __WQ_ORDERED)) !=
		    WQ_UNBOUND))
		return;

	mutex_lock(&wq->mutex);
	wq->saved_min_active = clamp(min_active, 0, wq->saved_max_active);
	wq_adjust_max_active(wq);
	mutex_unlock(&wq->mutex);
}

/**
 * current_work - retrieve %current task's work struct
 *
 * Determine if %current task is a workqueue worker and what it's working on.
 * Useful to find out the context that the %current task is running in.
 *
 * Return: work struct if %current task is a workqueue worker, %NULL otherwise.
 */
struct work_struct *current_work(void)
{
	struct worker *worker = current_wq_worker();

	return worker ? worker->current_work : NULL;
}
EXPORT_SYMBOL(current_work);

/**
 * current_is_workqueue_rescuer - is %current workqueue rescuer?
 *
 * Determine whether %current is a workqueue rescuer.  Can be used from
 * work functions to determine whether it's being run off the rescuer task.
 *
 * Return: %true if %current is a workqueue rescuer. %false otherwise.
 */
bool current_is_workqueue_rescuer(void)
{
	struct worker *worker = current_wq_worker();

	return worker && worker->rescue_wq;
}

/**
 * workqueue_congested - test whether a workqueue is congested
 * @cpu: CPU in question
 * @wq: target workqueue
 *
 * Test whether @wq's cpu workqueue for @cpu is congested.  There is
 * no synchronization around this function and the test result is
 * unreliable and only useful as advisory hints or for debugging.
 *
 * If @cpu is WORK_CPU_UNBOUND, the test is performed on the local CPU.
 *
 * With the exception of ordered workqueues, all workqueues have per-cpu
 * pool_workqueues, each with its own congested state. A workqueue being
 * congested on one CPU doesn't mean that the workqueue is contested on any
 * other CPUs.
 *
 * Return:
 * %true if congested, %false otherwise.
 */
bool workqueue_congested(int cpu, struct workqueue_struct *wq)
{
	struct pool_workqueue *pwq;
	bool ret;

	preempt_disable();

	if (cpu == WORK_CPU_UNBOUND)
		cpu = smp_processor_id();

	pwq = *per_cpu_ptr(wq->cpu_pwq, cpu);
	ret = !list_empty(&pwq->inactive_works);

	preempt_enable();

	return ret;
}
EXPORT_SYMBOL_GPL(workqueue_congested);

/**
 * work_busy - test whether a work is currently pending or running
 * @work: the work to be tested
 *
 * Test whether @work is currently pending or running.  There is no
 * synchronization around this function and the test result is
 * unreliable and only useful as advisory hints or for debugging.
 *
 * Return:
 * OR'd bitmask of WORK_BUSY_* bits.
 */
unsigned int work_busy(struct work_struct *work)
{
	struct worker_pool *pool;
	unsigned long irq_flags;
	unsigned int ret = 0;

	if (work_pending(work))
		ret |= WORK_BUSY_PENDING;

	rcu_read_lock();
	pool = get_work_pool(work);
	if (pool) {
		raw_spin_lock_irqsave(&pool->lock, irq_flags);
		if (find_worker_executing_work(pool, work))
			ret |= WORK_BUSY_RUNNING;
		raw_spin_unlock_irqrestore(&pool->lock, irq_flags);
	}
	rcu_read_unlock();

	return ret;
}
EXPORT_SYMBOL_GPL(work_busy);

/**
 * set_worker_desc - set description for the current work item
 * @fmt: printf-style format string
 * @...: arguments for the format string
 *
 * This function can be called by a running work function to describe what
 * the work item is about.  If the worker task gets dumped, this
 * information will be printed out together to help debugging.  The
 * description can be at most WORKER_DESC_LEN including the trailing '\0'.
 */
void set_worker_desc(const char *fmt, ...)
{
	struct worker *worker = current_wq_worker();
	va_list args;

	if (worker) {
		va_start(args, fmt);
		vsnprintf(worker->desc, sizeof(worker->desc), fmt, args);
		va_end(args);
	}
}
EXPORT_SYMBOL_GPL(set_worker_desc);

/**
 * print_worker_info - print out worker information and description
 * @log_lvl: the log level to use when printing
 * @task: target task
 *
 * If @task is a worker and currently executing a work item, print out the
 * name of the workqueue being serviced and worker description set with
 * set_worker_desc() by the currently executing work item.
 *
 * This function can be safely called on any task as long as the
 * task_struct itself is accessible.  While safe, this function isn't
 * synchronized and may print out mixups or garbages of limited length.
 */
void print_worker_info(const char *log_lvl, struct task_struct *task)
{
	work_func_t *fn = NULL;
	char name[WQ_NAME_LEN] = { };
	char desc[WORKER_DESC_LEN] = { };
	struct pool_workqueue *pwq = NULL;
	struct workqueue_struct *wq = NULL;
	struct worker *worker;

	if (!(task->flags & PF_WQ_WORKER))
		return;

	/*
	 * This function is called without any synchronization and @task
	 * could be in any state.  Be careful with dereferences.
	 */
	worker = kthread_probe_data(task);

	/*
	 * Carefully copy the associated workqueue's workfn, name and desc.
	 * Keep the original last '\0' in case the original is garbage.
	 */
	copy_from_kernel_nofault(&fn, &worker->current_func, sizeof(fn));
	copy_from_kernel_nofault(&pwq, &worker->current_pwq, sizeof(pwq));
	copy_from_kernel_nofault(&wq, &pwq->wq, sizeof(wq));
	copy_from_kernel_nofault(name, wq->name, sizeof(name) - 1);
	copy_from_kernel_nofault(desc, worker->desc, sizeof(desc) - 1);

	if (fn || name[0] || desc[0]) {
		printk("%sWorkqueue: %s %ps", log_lvl, name, fn);
		if (strcmp(name, desc))
			pr_cont(" (%s)", desc);
		pr_cont("\n");
	}
}

static void pr_cont_pool_info(struct worker_pool *pool)
{
	pr_cont(" cpus=%*pbl", nr_cpumask_bits, pool->attrs->cpumask);
	if (pool->node != NUMA_NO_NODE)
		pr_cont(" node=%d", pool->node);
	pr_cont(" flags=0x%x", pool->flags);
	if (pool->flags & POOL_BH)
		pr_cont(" bh%s",
			pool->attrs->nice == HIGHPRI_NICE_LEVEL ? "-hi" : "");
	else
		pr_cont(" nice=%d", pool->attrs->nice);
}

static void pr_cont_worker_id(struct worker *worker)
{
	struct worker_pool *pool = worker->pool;

	if (pool->flags & WQ_BH)
		pr_cont("bh%s",
			pool->attrs->nice == HIGHPRI_NICE_LEVEL ? "-hi" : "");
	else
		pr_cont("%d%s", task_pid_nr(worker->task),
			worker->rescue_wq ? "(RESCUER)" : "");
}

struct pr_cont_work_struct {
	bool comma;
	work_func_t func;
	long ctr;
};

static void pr_cont_work_flush(bool comma, work_func_t func, struct pr_cont_work_struct *pcwsp)
{
	if (!pcwsp->ctr)
		goto out_record;
	if (func == pcwsp->func) {
		pcwsp->ctr++;
		return;
	}
	if (pcwsp->ctr == 1)
		pr_cont("%s %ps", pcwsp->comma ? "," : "", pcwsp->func);
	else
		pr_cont("%s %ld*%ps", pcwsp->comma ? "," : "", pcwsp->ctr, pcwsp->func);
	pcwsp->ctr = 0;
out_record:
	if ((long)func == -1L)
		return;
	pcwsp->comma = comma;
	pcwsp->func = func;
	pcwsp->ctr = 1;
}

static void pr_cont_work(bool comma, struct work_struct *work, struct pr_cont_work_struct *pcwsp)
{
	if (work->func == wq_barrier_func) {
		struct wq_barrier *barr;

		barr = container_of(work, struct wq_barrier, work);

		pr_cont_work_flush(comma, (work_func_t)-1, pcwsp);
		pr_cont("%s BAR(%d)", comma ? "," : "",
			task_pid_nr(barr->task));
	} else {
		if (!comma)
			pr_cont_work_flush(comma, (work_func_t)-1, pcwsp);
		pr_cont_work_flush(comma, work->func, pcwsp);
	}
}

static void show_pwq(struct pool_workqueue *pwq)
{
	struct pr_cont_work_struct pcws = { .ctr = 0, };
	struct worker_pool *pool = pwq->pool;
	struct work_struct *work;
	struct worker *worker;
	bool has_in_flight = false, has_pending = false;
	int bkt;

	pr_info("  pwq %d:", pool->id);
	pr_cont_pool_info(pool);

	pr_cont(" active=%d refcnt=%d%s\n",
		pwq->nr_active, pwq->refcnt,
		!list_empty(&pwq->mayday_node) ? " MAYDAY" : "");

	hash_for_each(pool->busy_hash, bkt, worker, hentry) {
		if (worker->current_pwq == pwq) {
			has_in_flight = true;
			break;
		}
	}
	if (has_in_flight) {
		bool comma = false;

		pr_info("    in-flight:");
		hash_for_each(pool->busy_hash, bkt, worker, hentry) {
			if (worker->current_pwq != pwq)
				continue;

			pr_cont(" %s", comma ? "," : "");
			pr_cont_worker_id(worker);
			pr_cont(":%ps", worker->current_func);
			list_for_each_entry(work, &worker->scheduled, entry)
				pr_cont_work(false, work, &pcws);
			pr_cont_work_flush(comma, (work_func_t)-1L, &pcws);
			comma = true;
		}
		pr_cont("\n");
	}

	list_for_each_entry(work, &pool->worklist, entry) {
		if (get_work_pwq(work) == pwq) {
			has_pending = true;
			break;
		}
	}
	if (has_pending) {
		bool comma = false;

		pr_info("    pending:");
		list_for_each_entry(work, &pool->worklist, entry) {
			if (get_work_pwq(work) != pwq)
				continue;

			pr_cont_work(comma, work, &pcws);
			comma = !(*work_data_bits(work) & WORK_STRUCT_LINKED);
		}
		pr_cont_work_flush(comma, (work_func_t)-1L, &pcws);
		pr_cont("\n");
	}

	if (!list_empty(&pwq->inactive_works)) {
		bool comma = false;

		pr_info("    inactive:");
		list_for_each_entry(work, &pwq->inactive_works, entry) {
			pr_cont_work(comma, work, &pcws);
			comma = !(*work_data_bits(work) & WORK_STRUCT_LINKED);
		}
		pr_cont_work_flush(comma, (work_func_t)-1L, &pcws);
		pr_cont("\n");
	}
}

/**
 * show_one_workqueue - dump state of specified workqueue
 * @wq: workqueue whose state will be printed
 */
void show_one_workqueue(struct workqueue_struct *wq)
{
	struct pool_workqueue *pwq;
	bool idle = true;
	unsigned long irq_flags;

	for_each_pwq(pwq, wq) {
		if (!pwq_is_empty(pwq)) {
			idle = false;
			break;
		}
	}
	if (idle) /* Nothing to print for idle workqueue */
		return;

	pr_info("workqueue %s: flags=0x%x\n", wq->name, wq->flags);

	for_each_pwq(pwq, wq) {
		raw_spin_lock_irqsave(&pwq->pool->lock, irq_flags);
		if (!pwq_is_empty(pwq)) {
			/*
			 * Defer printing to avoid deadlocks in console
			 * drivers that queue work while holding locks
			 * also taken in their write paths.
			 */
			printk_deferred_enter();
			show_pwq(pwq);
			printk_deferred_exit();
		}
		raw_spin_unlock_irqrestore(&pwq->pool->lock, irq_flags);
		/*
		 * We could be printing a lot from atomic context, e.g.
		 * sysrq-t -> show_all_workqueues(). Avoid triggering
		 * hard lockup.
		 */
		touch_nmi_watchdog();
	}

}

/**
 * show_one_worker_pool - dump state of specified worker pool
 * @pool: worker pool whose state will be printed
 */
static void show_one_worker_pool(struct worker_pool *pool)
{
	struct worker *worker;
	bool first = true;
	unsigned long irq_flags;
	unsigned long hung = 0;

	raw_spin_lock_irqsave(&pool->lock, irq_flags);
	if (pool->nr_workers == pool->nr_idle)
		goto next_pool;

	/* How long the first pending work is waiting for a worker. */
	if (!list_empty(&pool->worklist))
		hung = jiffies_to_msecs(jiffies - pool->watchdog_ts) / 1000;

	/*
	 * Defer printing to avoid deadlocks in console drivers that
	 * queue work while holding locks also taken in their write
	 * paths.
	 */
	printk_deferred_enter();
	pr_info("pool %d:", pool->id);
	pr_cont_pool_info(pool);
	pr_cont(" hung=%lus workers=%d", hung, pool->nr_workers);
	if (pool->manager)
		pr_cont(" manager: %d",
			task_pid_nr(pool->manager->task));
	list_for_each_entry(worker, &pool->idle_list, entry) {
		pr_cont(" %s", first ? "idle: " : "");
		pr_cont_worker_id(worker);
		first = false;
	}
	pr_cont("\n");
	printk_deferred_exit();
next_pool:
	raw_spin_unlock_irqrestore(&pool->lock, irq_flags);
	/*
	 * We could be printing a lot from atomic context, e.g.
	 * sysrq-t -> show_all_workqueues(). Avoid triggering
	 * hard lockup.
	 */
	touch_nmi_watchdog();

}

/**
 * show_all_workqueues - dump workqueue state
 *
 * Called from a sysrq handler and prints out all busy workqueues and pools.
 */
void show_all_workqueues(void)
{
	struct workqueue_struct *wq;
	struct worker_pool *pool;
	int pi;

	rcu_read_lock();

	pr_info("Showing busy workqueues and worker pools:\n");

	list_for_each_entry_rcu(wq, &workqueues, list)
		show_one_workqueue(wq);

	for_each_pool(pool, pi)
		show_one_worker_pool(pool);

	rcu_read_unlock();
}

/**
 * show_freezable_workqueues - dump freezable workqueue state
 *
 * Called from try_to_freeze_tasks() and prints out all freezable workqueues
 * still busy.
 */
void show_freezable_workqueues(void)
{
	struct workqueue_struct *wq;

	rcu_read_lock();

	pr_info("Showing freezable workqueues that are still busy:\n");

	list_for_each_entry_rcu(wq, &workqueues, list) {
		if (!(wq->flags & WQ_FREEZABLE))
			continue;
		show_one_workqueue(wq);
	}

	rcu_read_unlock();
}

/* used to show worker information through /proc/PID/{comm,stat,status} */
void wq_worker_comm(char *buf, size_t size, struct task_struct *task)
{
	/* stabilize PF_WQ_WORKER and worker pool association */
	mutex_lock(&wq_pool_attach_mutex);

	if (task->flags & PF_WQ_WORKER) {
		struct worker *worker = kthread_data(task);
		struct worker_pool *pool = worker->pool;
		int off;

		off = format_worker_id(buf, size, worker, pool);

		if (pool) {
			raw_spin_lock_irq(&pool->lock);
			/*
			 * ->desc tracks information (wq name or
			 * set_worker_desc()) for the latest execution.  If
			 * current, prepend '+', otherwise '-'.
			 */
			if (worker->desc[0] != '\0') {
				if (worker->current_work)
					scnprintf(buf + off, size - off, "+%s",
						  worker->desc);
				else
					scnprintf(buf + off, size - off, "-%s",
						  worker->desc);
			}
			raw_spin_unlock_irq(&pool->lock);
		}
	} else {
		strscpy(buf, task->comm, size);
	}

	mutex_unlock(&wq_pool_attach_mutex);
}

#ifdef CONFIG_SMP

/*
 * CPU hotplug.
 *
 * There are two challenges in supporting CPU hotplug.  Firstly, there
 * are a lot of assumptions on strong associations among work, pwq and
 * pool which make migrating pending and scheduled works very
 * difficult to implement without impacting hot paths.  Secondly,
 * worker pools serve mix of short, long and very long running works making
 * blocked draining impractical.
 *
 * This is solved by allowing the pools to be disassociated from the CPU
 * running as an unbound one and allowing it to be reattached later if the
 * cpu comes back online.
 */

static void unbind_workers(int cpu)
{
	struct worker_pool *pool;
	struct worker *worker;

	for_each_cpu_worker_pool(pool, cpu) {
		mutex_lock(&wq_pool_attach_mutex);
		raw_spin_lock_irq(&pool->lock);

		/*
		 * We've blocked all attach/detach operations. Make all workers
		 * unbound and set DISASSOCIATED.  Before this, all workers
		 * must be on the cpu.  After this, they may become diasporas.
		 * And the preemption disabled section in their sched callbacks
		 * are guaranteed to see WORKER_UNBOUND since the code here
		 * is on the same cpu.
		 */
		for_each_pool_worker(worker, pool)
			worker->flags |= WORKER_UNBOUND;

		pool->flags |= POOL_DISASSOCIATED;

		/*
		 * The handling of nr_running in sched callbacks are disabled
		 * now.  Zap nr_running.  After this, nr_running stays zero and
		 * need_more_worker() and keep_working() are always true as
		 * long as the worklist is not empty.  This pool now behaves as
		 * an unbound (in terms of concurrency management) pool which
		 * are served by workers tied to the pool.
		 */
		pool->nr_running = 0;

		/*
		 * With concurrency management just turned off, a busy
		 * worker blocking could lead to lengthy stalls.  Kick off
		 * unbound chain execution of currently pending work items.
		 */
		kick_pool(pool);

		raw_spin_unlock_irq(&pool->lock);

		for_each_pool_worker(worker, pool)
			unbind_worker(worker);

		mutex_unlock(&wq_pool_attach_mutex);
	}
}

/**
 * rebind_workers - rebind all workers of a pool to the associated CPU
 * @pool: pool of interest
 *
 * @pool->cpu is coming online.  Rebind all workers to the CPU.
 */
static void rebind_workers(struct worker_pool *pool)
{
	struct worker *worker;

	lockdep_assert_held(&wq_pool_attach_mutex);

	/*
	 * Restore CPU affinity of all workers.  As all idle workers should
	 * be on the run-queue of the associated CPU before any local
	 * wake-ups for concurrency management happen, restore CPU affinity
	 * of all workers first and then clear UNBOUND.  As we're called
	 * from CPU_ONLINE, the following shouldn't fail.
	 */
	for_each_pool_worker(worker, pool) {
		kthread_set_per_cpu(worker->task, pool->cpu);
		WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task,
						  pool_allowed_cpus(pool)) < 0);
	}

	raw_spin_lock_irq(&pool->lock);

	pool->flags &= ~POOL_DISASSOCIATED;

	for_each_pool_worker(worker, pool) {
		unsigned int worker_flags = worker->flags;

		/*
		 * We want to clear UNBOUND but can't directly call
		 * worker_clr_flags() or adjust nr_running.  Atomically
		 * replace UNBOUND with another NOT_RUNNING flag REBOUND.
		 * @worker will clear REBOUND using worker_clr_flags() when
		 * it initiates the next execution cycle thus restoring
		 * concurrency management.  Note that when or whether
		 * @worker clears REBOUND doesn't affect correctness.
		 *
		 * WRITE_ONCE() is necessary because @worker->flags may be
		 * tested without holding any lock in
		 * wq_worker_running().  Without it, NOT_RUNNING test may
		 * fail incorrectly leading to premature concurrency
		 * management operations.
		 */
		WARN_ON_ONCE(!(worker_flags & WORKER_UNBOUND));
		worker_flags |= WORKER_REBOUND;
		worker_flags &= ~WORKER_UNBOUND;
		WRITE_ONCE(worker->flags, worker_flags);
	}

	raw_spin_unlock_irq(&pool->lock);
}

/**
 * restore_unbound_workers_cpumask - restore cpumask of unbound workers
 * @pool: unbound pool of interest
 * @cpu: the CPU which is coming up
 *
 * An unbound pool may end up with a cpumask which doesn't have any online
 * CPUs.  When a worker of such pool get scheduled, the scheduler resets
 * its cpus_allowed.  If @cpu is in @pool's cpumask which didn't have any
 * online CPU before, cpus_allowed of all its workers should be restored.
 */
static void restore_unbound_workers_cpumask(struct worker_pool *pool, int cpu)
{
	static cpumask_t cpumask;
	struct worker *worker;

	lockdep_assert_held(&wq_pool_attach_mutex);

	/* is @cpu allowed for @pool? */
	if (!cpumask_test_cpu(cpu, pool->attrs->cpumask))
		return;

	cpumask_and(&cpumask, pool->attrs->cpumask, cpu_online_mask);

	/* as we're called from CPU_ONLINE, the following shouldn't fail */
	for_each_pool_worker(worker, pool)
		WARN_ON_ONCE(set_cpus_allowed_ptr(worker->task, &cpumask) < 0);
}

int workqueue_prepare_cpu(unsigned int cpu)
{
	struct worker_pool *pool;

	for_each_cpu_worker_pool(pool, cpu) {
		if (pool->nr_workers)
			continue;
		if (!create_worker(pool))
			return -ENOMEM;
	}
	return 0;
}

int workqueue_online_cpu(unsigned int cpu)
{
	struct worker_pool *pool;
	struct workqueue_struct *wq;
	int pi;

	mutex_lock(&wq_pool_mutex);

	cpumask_set_cpu(cpu, wq_online_cpumask);

	for_each_pool(pool, pi) {
		/* BH pools aren't affected by hotplug */
		if (pool->flags & POOL_BH)
			continue;

		mutex_lock(&wq_pool_attach_mutex);
		if (pool->cpu == cpu)
			rebind_workers(pool);
		else if (pool->cpu < 0)
			restore_unbound_workers_cpumask(pool, cpu);
		mutex_unlock(&wq_pool_attach_mutex);
	}

	/* update pod affinity of unbound workqueues */
	list_for_each_entry(wq, &workqueues, list) {
		struct workqueue_attrs *attrs = wq->unbound_attrs;

		if (attrs) {
			const struct wq_pod_type *pt = wqattrs_pod_type(attrs);
			int tcpu;

			for_each_cpu(tcpu, pt->pod_cpus[pt->cpu_pod[cpu]])
				unbound_wq_update_pwq(wq, tcpu);

			mutex_lock(&wq->mutex);
			wq_update_node_max_active(wq, -1);
			mutex_unlock(&wq->mutex);
		}
	}

	mutex_unlock(&wq_pool_mutex);
	return 0;
}

int workqueue_offline_cpu(unsigned int cpu)
{
	struct workqueue_struct *wq;

	/* unbinding per-cpu workers should happen on the local CPU */
	if (WARN_ON(cpu != smp_processor_id()))
		return -1;

	unbind_workers(cpu);

	/* update pod affinity of unbound workqueues */
	mutex_lock(&wq_pool_mutex);

	cpumask_clear_cpu(cpu, wq_online_cpumask);

	list_for_each_entry(wq, &workqueues, list) {
		struct workqueue_attrs *attrs = wq->unbound_attrs;

		if (attrs) {
			const struct wq_pod_type *pt = wqattrs_pod_type(attrs);
			int tcpu;

			for_each_cpu(tcpu, pt->pod_cpus[pt->cpu_pod[cpu]])
				unbound_wq_update_pwq(wq, tcpu);

			mutex_lock(&wq->mutex);
			wq_update_node_max_active(wq, cpu);
			mutex_unlock(&wq->mutex);
		}
	}
	mutex_unlock(&wq_pool_mutex);

	return 0;
}

struct work_for_cpu {
	struct work_struct work;
	long (*fn)(void *);
	void *arg;
	long ret;
};

static void work_for_cpu_fn(struct work_struct *work)
{
	struct work_for_cpu *wfc = container_of(work, struct work_for_cpu, work);

	wfc->ret = wfc->fn(wfc->arg);
}

/**
 * work_on_cpu_key - run a function in thread context on a particular cpu
 * @cpu: the cpu to run on
 * @fn: the function to run
 * @arg: the function arg
 * @key: The lock class key for lock debugging purposes
 *
 * It is up to the caller to ensure that the cpu doesn't go offline.
 * The caller must not hold any locks which would prevent @fn from completing.
 *
 * Return: The value @fn returns.
 */
long work_on_cpu_key(int cpu, long (*fn)(void *),
		     void *arg, struct lock_class_key *key)
{
	struct work_for_cpu wfc = { .fn = fn, .arg = arg };

	INIT_WORK_ONSTACK_KEY(&wfc.work, work_for_cpu_fn, key);
	schedule_work_on(cpu, &wfc.work);
	flush_work(&wfc.work);
	destroy_work_on_stack(&wfc.work);
	return wfc.ret;
}
EXPORT_SYMBOL_GPL(work_on_cpu_key);
#endif /* CONFIG_SMP */

#ifdef CONFIG_FREEZER

/**
 * freeze_workqueues_begin - begin freezing workqueues
 *
 * Start freezing workqueues.  After this function returns, all freezable
 * workqueues will queue new works to their inactive_works list instead of
 * pool->worklist.
 *
 * CONTEXT:
 * Grabs and releases wq_pool_mutex, wq->mutex and pool->lock's.
 */
void freeze_workqueues_begin(void)
{
	struct workqueue_struct *wq;

	mutex_lock(&wq_pool_mutex);

	WARN_ON_ONCE(workqueue_freezing);
	workqueue_freezing = true;

	list_for_each_entry(wq, &workqueues, list) {
		mutex_lock(&wq->mutex);
		wq_adjust_max_active(wq);
		mutex_unlock(&wq->mutex);
	}

	mutex_unlock(&wq_pool_mutex);
}

/**
 * freeze_workqueues_busy - are freezable workqueues still busy?
 *
 * Check whether freezing is complete.  This function must be called
 * between freeze_workqueues_begin() and thaw_workqueues().
 *
 * CONTEXT:
 * Grabs and releases wq_pool_mutex.
 *
 * Return:
 * %true if some freezable workqueues are still busy.  %false if freezing
 * is complete.
 */
bool freeze_workqueues_busy(void)
{
	bool busy = false;
	struct workqueue_struct *wq;
	struct pool_workqueue *pwq;

	mutex_lock(&wq_pool_mutex);

	WARN_ON_ONCE(!workqueue_freezing);

	list_for_each_entry(wq, &workqueues, list) {
		if (!(wq->flags & WQ_FREEZABLE))
			continue;
		/*
		 * nr_active is monotonically decreasing.  It's safe
		 * to peek without lock.
		 */
		rcu_read_lock();
		for_each_pwq(pwq, wq) {
			WARN_ON_ONCE(pwq->nr_active < 0);
			if (pwq->nr_active) {
				busy = true;
				rcu_read_unlock();
				goto out_unlock;
			}
		}
		rcu_read_unlock();
	}
out_unlock:
	mutex_unlock(&wq_pool_mutex);
	return busy;
}

/**
 * thaw_workqueues - thaw workqueues
 *
 * Thaw workqueues.  Normal queueing is restored and all collected
 * frozen works are transferred to their respective pool worklists.
 *
 * CONTEXT:
 * Grabs and releases wq_pool_mutex, wq->mutex and pool->lock's.
 */
void thaw_workqueues(void)
{
	struct workqueue_struct *wq;

	mutex_lock(&wq_pool_mutex);

	if (!workqueue_freezing)
		goto out_unlock;

	workqueue_freezing = false;

	/* restore max_active and repopulate worklist */
	list_for_each_entry(wq, &workqueues, list) {
		mutex_lock(&wq->mutex);
		wq_adjust_max_active(wq);
		mutex_unlock(&wq->mutex);
	}

out_unlock:
	mutex_unlock(&wq_pool_mutex);
}
#endif /* CONFIG_FREEZER */

static int workqueue_apply_unbound_cpumask(const cpumask_var_t unbound_cpumask)
{
	LIST_HEAD(ctxs);
	int ret = 0;
	struct workqueue_struct *wq;
	struct apply_wqattrs_ctx *ctx, *n;

	lockdep_assert_held(&wq_pool_mutex);

	list_for_each_entry(wq, &workqueues, list) {
		if (!(wq->flags & WQ_UNBOUND) || (wq->flags & __WQ_DESTROYING))
			continue;

		ctx = apply_wqattrs_prepare(wq, wq->unbound_attrs, unbound_cpumask);
		if (IS_ERR(ctx)) {
			ret = PTR_ERR(ctx);
			break;
		}

		list_add_tail(&ctx->list, &ctxs);
	}

	list_for_each_entry_safe(ctx, n, &ctxs, list) {
		if (!ret)
			apply_wqattrs_commit(ctx);
		apply_wqattrs_cleanup(ctx);
	}

	if (!ret) {
		int cpu;
		struct worker_pool *pool;
		struct worker *worker;

		mutex_lock(&wq_pool_attach_mutex);
		cpumask_copy(wq_unbound_cpumask, unbound_cpumask);
		/* rescuer needs to respect cpumask changes when it is not attached */
		list_for_each_entry(wq, &workqueues, list) {
			if (wq->rescuer && !wq->rescuer->pool)
				unbind_worker(wq->rescuer);
		}
		/* DISASSOCIATED worker needs to respect wq_unbound_cpumask */
		for_each_possible_cpu(cpu) {
			for_each_cpu_worker_pool(pool, cpu) {
				if (!(pool->flags & POOL_DISASSOCIATED))
					continue;
				for_each_pool_worker(worker, pool)
					unbind_worker(worker);
			}
		}
		mutex_unlock(&wq_pool_attach_mutex);
	}
	return ret;
}

/**
 * workqueue_unbound_housekeeping_update - Propagate housekeeping cpumask update
 * @hk: the new housekeeping cpumask
 *
 * Update the unbound workqueue cpumask on top of the new housekeeping cpumask such
 * that the effective unbound affinity is the intersection of the new housekeeping
 * with the requested affinity set via nohz_full=/isolcpus= or sysfs.
 *
 * Return: 0 on success and -errno on failure.
 */
int workqueue_unbound_housekeeping_update(const struct cpumask *hk)
{
	cpumask_var_t cpumask;
	int ret = 0;

	if (!zalloc_cpumask_var(&cpumask, GFP_KERNEL))
		return -ENOMEM;

	mutex_lock(&wq_pool_mutex);

	/*
	 * If the operation fails, it will fall back to
	 * wq_requested_unbound_cpumask which is initially set to
	 * (HK_TYPE_WQ ∩ HK_TYPE_DOMAIN) house keeping mask and rewritten
	 * by any subsequent write to workqueue/cpumask sysfs file.
	 */
	if (!cpumask_and(cpumask, wq_requested_unbound_cpumask, hk))
		cpumask_copy(cpumask, wq_requested_unbound_cpumask);
	if (!cpumask_equal(cpumask, wq_unbound_cpumask))
		ret = workqueue_apply_unbound_cpumask(cpumask);

	/* Save the current isolated cpumask & export it via sysfs */
	if (!ret)
		cpumask_andnot(wq_isolated_cpumask, cpu_possible_mask, hk);

	mutex_unlock(&wq_pool_mutex);
	free_cpumask_var(cpumask);
	return ret;
}

static int parse_affn_scope(const char *val)
{
	int i;

	for (i = 0; i < ARRAY_SIZE(wq_affn_names); i++) {
		if (!strncasecmp(val, wq_affn_names[i], strlen(wq_affn_names[i])))
			return i;
	}
	return -EINVAL;
}

static int wq_affn_dfl_set(const char *val, const struct kernel_param *kp)
{
	struct workqueue_struct *wq;
	int affn, cpu;

	affn = parse_affn_scope(val);
	if (affn < 0)
		return affn;
	if (affn == WQ_AFFN_DFL)
		return -EINVAL;

	cpus_read_lock();
	mutex_lock(&wq_pool_mutex);

	wq_affn_dfl = affn;

	list_for_each_entry(wq, &workqueues, list) {
		for_each_online_cpu(cpu)
			unbound_wq_update_pwq(wq, cpu);
	}

	mutex_unlock(&wq_pool_mutex);
	cpus_read_unlock();

	return 0;
}

static int wq_affn_dfl_get(char *buffer, const struct kernel_param *kp)
{
	return scnprintf(buffer, PAGE_SIZE, "%s\n", wq_affn_names[wq_affn_dfl]);
}

static const struct kernel_param_ops wq_affn_dfl_ops = {
	.set	= wq_affn_dfl_set,
	.get	= wq_affn_dfl_get,
};

module_param_cb(default_affinity_scope, &wq_affn_dfl_ops, NULL, 0644);

#ifdef CONFIG_SYSFS
/*
 * Workqueues with WQ_SYSFS flag set is visible to userland via
 * /sys/bus/workqueue/devices/WQ_NAME.  All visible workqueues have the
 * following attributes.
 *
 *  per_cpu		RO bool	: whether the workqueue is per-cpu or unbound
 *  max_active		RW int	: maximum number of in-flight work items
 *
 * Unbound workqueues have the following extra attributes.
 *
 *  nice		RW int	: nice value of the workers
 *  cpumask		RW mask	: bitmask of allowed CPUs for the workers
 *  affinity_scope	RW str  : worker CPU affinity scope (cache, numa, none)
 *  affinity_strict	RW bool : worker CPU affinity is strict
 */
struct wq_device {
	struct workqueue_struct		*wq;
	struct device			dev;
};

static struct workqueue_struct *dev_to_wq(struct device *dev)
{
	struct wq_device *wq_dev = container_of(dev, struct wq_device, dev);

	return wq_dev->wq;
}

static ssize_t per_cpu_show(struct device *dev, struct device_attribute *attr,
			    char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);

	return scnprintf(buf, PAGE_SIZE, "%d\n", (bool)!(wq->flags & WQ_UNBOUND));
}
static DEVICE_ATTR_RO(per_cpu);

static ssize_t max_active_show(struct device *dev,
			       struct device_attribute *attr, char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);

	return scnprintf(buf, PAGE_SIZE, "%d\n", wq->saved_max_active);
}

static ssize_t max_active_store(struct device *dev,
				struct device_attribute *attr, const char *buf,
				size_t count)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	int val;

	if (sscanf(buf, "%d", &val) != 1 || val <= 0)
		return -EINVAL;

	workqueue_set_max_active(wq, val);
	return count;
}
static DEVICE_ATTR_RW(max_active);

static struct attribute *wq_sysfs_attrs[] = {
	&dev_attr_per_cpu.attr,
	&dev_attr_max_active.attr,
	NULL,
};
ATTRIBUTE_GROUPS(wq_sysfs);

static ssize_t wq_nice_show(struct device *dev, struct device_attribute *attr,
			    char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	int written;

	mutex_lock(&wq->mutex);
	written = scnprintf(buf, PAGE_SIZE, "%d\n", wq->unbound_attrs->nice);
	mutex_unlock(&wq->mutex);

	return written;
}

/* prepare workqueue_attrs for sysfs store operations */
static struct workqueue_attrs *wq_sysfs_prep_attrs(struct workqueue_struct *wq)
{
	struct workqueue_attrs *attrs;

	lockdep_assert_held(&wq_pool_mutex);

	attrs = alloc_workqueue_attrs();
	if (!attrs)
		return NULL;

	copy_workqueue_attrs(attrs, wq->unbound_attrs);
	return attrs;
}

static ssize_t wq_nice_store(struct device *dev, struct device_attribute *attr,
			     const char *buf, size_t count)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	struct workqueue_attrs *attrs;
	int ret = -ENOMEM;

	apply_wqattrs_lock();

	attrs = wq_sysfs_prep_attrs(wq);
	if (!attrs)
		goto out_unlock;

	if (sscanf(buf, "%d", &attrs->nice) == 1 &&
	    attrs->nice >= MIN_NICE && attrs->nice <= MAX_NICE)
		ret = apply_workqueue_attrs_locked(wq, attrs);
	else
		ret = -EINVAL;

out_unlock:
	apply_wqattrs_unlock();
	free_workqueue_attrs(attrs);
	return ret ?: count;
}

static ssize_t wq_cpumask_show(struct device *dev,
			       struct device_attribute *attr, char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	int written;

	mutex_lock(&wq->mutex);
	written = scnprintf(buf, PAGE_SIZE, "%*pb\n",
			    cpumask_pr_args(wq->unbound_attrs->cpumask));
	mutex_unlock(&wq->mutex);
	return written;
}

static ssize_t wq_cpumask_store(struct device *dev,
				struct device_attribute *attr,
				const char *buf, size_t count)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	struct workqueue_attrs *attrs;
	int ret = -ENOMEM;

	apply_wqattrs_lock();

	attrs = wq_sysfs_prep_attrs(wq);
	if (!attrs)
		goto out_unlock;

	ret = cpumask_parse(buf, attrs->cpumask);
	if (!ret)
		ret = apply_workqueue_attrs_locked(wq, attrs);

out_unlock:
	apply_wqattrs_unlock();
	free_workqueue_attrs(attrs);
	return ret ?: count;
}

static ssize_t wq_affn_scope_show(struct device *dev,
				  struct device_attribute *attr, char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	int written;

	mutex_lock(&wq->mutex);
	if (wq->unbound_attrs->affn_scope == WQ_AFFN_DFL)
		written = scnprintf(buf, PAGE_SIZE, "%s (%s)\n",
				    wq_affn_names[WQ_AFFN_DFL],
				    wq_affn_names[wq_affn_dfl]);
	else
		written = scnprintf(buf, PAGE_SIZE, "%s\n",
				    wq_affn_names[wq->unbound_attrs->affn_scope]);
	mutex_unlock(&wq->mutex);

	return written;
}

static ssize_t wq_affn_scope_store(struct device *dev,
				   struct device_attribute *attr,
				   const char *buf, size_t count)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	struct workqueue_attrs *attrs;
	int affn, ret = -ENOMEM;

	affn = parse_affn_scope(buf);
	if (affn < 0)
		return affn;

	apply_wqattrs_lock();
	attrs = wq_sysfs_prep_attrs(wq);
	if (attrs) {
		attrs->affn_scope = affn;
		ret = apply_workqueue_attrs_locked(wq, attrs);
	}
	apply_wqattrs_unlock();
	free_workqueue_attrs(attrs);
	return ret ?: count;
}

static ssize_t wq_affinity_strict_show(struct device *dev,
				       struct device_attribute *attr, char *buf)
{
	struct workqueue_struct *wq = dev_to_wq(dev);

	return scnprintf(buf, PAGE_SIZE, "%d\n",
			 wq->unbound_attrs->affn_strict);
}

static ssize_t wq_affinity_strict_store(struct device *dev,
					struct device_attribute *attr,
					const char *buf, size_t count)
{
	struct workqueue_struct *wq = dev_to_wq(dev);
	struct workqueue_attrs *attrs;
	int v, ret = -ENOMEM;

	if (sscanf(buf, "%d", &v) != 1)
		return -EINVAL;

	apply_wqattrs_lock();
	attrs = wq_sysfs_prep_attrs(wq);
	if (attrs) {
		attrs->affn_strict = (bool)v;
		ret = apply_workqueue_attrs_locked(wq, attrs);
	}
	apply_wqattrs_unlock();
	free_workqueue_attrs(attrs);
	return ret ?: count;
}

static struct device_attribute wq_sysfs_unbound_attrs[] = {
	__ATTR(nice, 0644, wq_nice_show, wq_nice_store),
	__ATTR(cpumask, 0644, wq_cpumask_show, wq_cpumask_store),
	__ATTR(affinity_scope, 0644, wq_affn_scope_show, wq_affn_scope_store),
	__ATTR(affinity_strict, 0644, wq_affinity_strict_show, wq_affinity_strict_store),
	__ATTR_NULL,
};

static const struct bus_type wq_subsys = {
	.name				= "workqueue",
	.dev_groups			= wq_sysfs_groups,
};

/**
 *  workqueue_set_unbound_cpumask - Set the low-level unbound cpumask
 *  @cpumask: the cpumask to set
 *
 *  The low-level workqueues cpumask is a global cpumask that limits
 *  the affinity of all unbound workqueues.  This function check the @cpumask
 *  and apply it to all unbound workqueues and updates all pwqs of them.
 *
 *  Return:	0	- Success
 *		-EINVAL	- Invalid @cpumask
 *		-ENOMEM	- Failed to allocate memory for attrs or pwqs.
 */
static int workqueue_set_unbound_cpumask(cpumask_var_t cpumask)
{
	int ret = -EINVAL;

	/*
	 * Not excluding isolated cpus on purpose.
	 * If the user wishes to include them, we allow that.
	 */
	cpumask_and(cpumask, cpumask, cpu_possible_mask);
	if (!cpumask_empty(cpumask)) {
		ret = 0;
		apply_wqattrs_lock();
		if (!cpumask_equal(cpumask, wq_unbound_cpumask))
			ret = workqueue_apply_unbound_cpumask(cpumask);
		if (!ret)
			cpumask_copy(wq_requested_unbound_cpumask, cpumask);
		apply_wqattrs_unlock();
	}

	return ret;
}

static ssize_t __wq_cpumask_show(struct device *dev,
		struct device_attribute *attr, char *buf, cpumask_var_t mask)
{
	int written;

	mutex_lock(&wq_pool_mutex);
	written = scnprintf(buf, PAGE_SIZE, "%*pb\n", cpumask_pr_args(mask));
	mutex_unlock(&wq_pool_mutex);

	return written;
}

static ssize_t cpumask_requested_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	return __wq_cpumask_show(dev, attr, buf, wq_requested_unbound_cpumask);
}
static DEVICE_ATTR_RO(cpumask_requested);

static ssize_t cpumask_isolated_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	return __wq_cpumask_show(dev, attr, buf, wq_isolated_cpumask);
}
static DEVICE_ATTR_RO(cpumask_isolated);

static ssize_t cpumask_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	return __wq_cpumask_show(dev, attr, buf, wq_unbound_cpumask);
}

static ssize_t cpumask_store(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
{
	cpumask_var_t cpumask;
	int ret;

	if (!zalloc_cpumask_var(&cpumask, GFP_KERNEL))
		return -ENOMEM;

	ret = cpumask_parse(buf, cpumask);
	if (!ret)
		ret = workqueue_set_unbound_cpumask(cpumask);

	free_cpumask_var(cpumask);
	return ret ? ret : count;
}
static DEVICE_ATTR_RW(cpumask);

static struct attribute *wq_sysfs_cpumask_attrs[] = {
	&dev_attr_cpumask.attr,
	&dev_attr_cpumask_requested.attr,
	&dev_attr_cpumask_isolated.attr,
	NULL,
};
ATTRIBUTE_GROUPS(wq_sysfs_cpumask);

static int __init wq_sysfs_init(void)
{
	return subsys_virtual_register(&wq_subsys, wq_sysfs_cpumask_groups);
}
core_initcall(wq_sysfs_init);

static void wq_device_release(struct device *dev)
{
	struct wq_device *wq_dev = container_of(dev, struct wq_device, dev);

	kfree(wq_dev);
}

/**
 * workqueue_sysfs_register - make a workqueue visible in sysfs
 * @wq: the workqueue to register
 *
 * Expose @wq in sysfs under /sys/bus/workqueue/devices.
 * alloc_workqueue*() automatically calls this function if WQ_SYSFS is set
 * which is the preferred method.
 *
 * Workqueue user should use this function directly iff it wants to apply
 * workqueue_attrs before making the workqueue visible in sysfs; otherwise,
 * apply_workqueue_attrs() may race against userland updating the
 * attributes.
 *
 * Return: 0 on success, -errno on failure.
 */
int workqueue_sysfs_register(struct workqueue_struct *wq)
{
	struct wq_device *wq_dev;
	int ret;

	/*
	 * Adjusting max_active breaks ordering guarantee.  Disallow exposing
	 * ordered workqueues.
	 */
	if (WARN_ON(wq->flags & __WQ_ORDERED))
		return -EINVAL;

	wq->wq_dev = wq_dev = kzalloc_obj(*wq_dev);
	if (!wq_dev)
		return -ENOMEM;

	wq_dev->wq = wq;
	wq_dev->dev.bus = &wq_subsys;
	wq_dev->dev.release = wq_device_release;
	dev_set_name(&wq_dev->dev, "%s", wq->name);

	/*
	 * unbound_attrs are created separately.  Suppress uevent until
	 * everything is ready.
	 */
	dev_set_uevent_suppress(&wq_dev->dev, true);

	ret = device_register(&wq_dev->dev);
	if (ret) {
		put_device(&wq_dev->dev);
		wq->wq_dev = NULL;
		return ret;
	}

	if (wq->flags & WQ_UNBOUND) {
		struct device_attribute *attr;

		for (attr = wq_sysfs_unbound_attrs; attr->attr.name; attr++) {
			ret = device_create_file(&wq_dev->dev, attr);
			if (ret) {
				device_unregister(&wq_dev->dev);
				wq->wq_dev = NULL;
				return ret;
			}
		}
	}

	dev_set_uevent_suppress(&wq_dev->dev, false);
	kobject_uevent(&wq_dev->dev.kobj, KOBJ_ADD);
	return 0;
}

/**
 * workqueue_sysfs_unregister - undo workqueue_sysfs_register()
 * @wq: the workqueue to unregister
 *
 * If @wq is registered to sysfs by workqueue_sysfs_register(), unregister.
 */
static void workqueue_sysfs_unregister(struct workqueue_struct *wq)
{
	struct wq_device *wq_dev = wq->wq_dev;

	if (!wq->wq_dev)
		return;

	wq->wq_dev = NULL;
	device_unregister(&wq_dev->dev);
}
#else	/* CONFIG_SYSFS */
static void workqueue_sysfs_unregister(struct workqueue_struct *wq)	{ }
#endif	/* CONFIG_SYSFS */

/*
 * Workqueue watchdog.
 *
 * Stall may be caused by various bugs - missing WQ_MEM_RECLAIM, illegal
 * flush dependency, a concurrency managed work item which stays RUNNING
 * indefinitely.  Workqueue stalls can be very difficult to debug as the
 * usual warning mechanisms don't trigger and internal workqueue state is
 * largely opaque.
 *
 * Workqueue watchdog monitors all worker pools periodically and dumps
 * state if some pools failed to make forward progress for a while where
 * forward progress is defined as the first item on ->worklist changing.
 *
 * This mechanism is controlled through the kernel parameter
 * "workqueue.watchdog_thresh" which can be updated at runtime through the
 * corresponding sysfs parameter file.
 */
#ifdef CONFIG_WQ_WATCHDOG

static unsigned long wq_watchdog_thresh = 30;
static struct timer_list wq_watchdog_timer;

static unsigned long wq_watchdog_touched = INITIAL_JIFFIES;
static DEFINE_PER_CPU(unsigned long, wq_watchdog_touched_cpu) = INITIAL_JIFFIES;

static unsigned int wq_panic_on_stall = CONFIG_BOOTPARAM_WQ_STALL_PANIC;
module_param_named(panic_on_stall, wq_panic_on_stall, uint, 0644);

static unsigned int wq_panic_on_stall_time;
module_param_named(panic_on_stall_time, wq_panic_on_stall_time, uint, 0644);
MODULE_PARM_DESC(panic_on_stall_time, "Panic if stall exceeds this many seconds (0=disabled)");

/*
 * Show workers that might prevent the processing of pending work items.
 * The only candidates are CPU-bound workers in the running state.
 * Pending work items should be handled by another idle worker
 * in all other situations.
 */
static void show_cpu_pool_hog(struct worker_pool *pool)
{
	struct worker *worker;
	unsigned long irq_flags;
	int bkt;

	raw_spin_lock_irqsave(&pool->lock, irq_flags);

	hash_for_each(pool->busy_hash, bkt, worker, hentry) {
		if (task_is_running(worker->task)) {
			/*
			 * Defer printing to avoid deadlocks in console
			 * drivers that queue work while holding locks
			 * also taken in their write paths.
			 */
			printk_deferred_enter();

			pr_info("pool %d:\n", pool->id);
			sched_show_task(worker->task);

			printk_deferred_exit();
		}
	}

	raw_spin_unlock_irqrestore(&pool->lock, irq_flags);
}

static void show_cpu_pools_hogs(void)
{
	struct worker_pool *pool;
	int pi;

	pr_info("Showing backtraces of running workers in stalled CPU-bound worker pools:\n");

	rcu_read_lock();

	for_each_pool(pool, pi) {
		if (pool->cpu_stall)
			show_cpu_pool_hog(pool);

	}

	rcu_read_unlock();
}

/*
 * It triggers a panic in two scenarios: when the total number of stalls
 * exceeds a threshold, and when a stall lasts longer than
 * wq_panic_on_stall_time
 */
static void panic_on_wq_watchdog(unsigned int stall_time_sec)
{
	static unsigned int wq_stall;

	if (wq_panic_on_stall) {
		wq_stall++;
		if (wq_stall >= wq_panic_on_stall)
			panic("workqueue: %u stall(s) exceeded threshold %u\n",
			      wq_stall, wq_panic_on_stall);
	}

	if (wq_panic_on_stall_time && stall_time_sec >= wq_panic_on_stall_time)
		panic("workqueue: stall lasted %us, exceeding threshold %us\n",
		      stall_time_sec, wq_panic_on_stall_time);
}

static void wq_watchdog_reset_touched(void)
{
	int cpu;

	wq_watchdog_touched = jiffies;
	for_each_possible_cpu(cpu)
		per_cpu(wq_watchdog_touched_cpu, cpu) = jiffies;
}

static void wq_watchdog_timer_fn(struct timer_list *unused)
{
	unsigned long thresh = READ_ONCE(wq_watchdog_thresh) * HZ;
	unsigned int max_stall_time = 0;
	bool lockup_detected = false;
	bool cpu_pool_stall = false;
	unsigned long now = jiffies;
	struct worker_pool *pool;
	unsigned int stall_time;
	int pi;

	if (!thresh)
		return;

	for_each_pool(pool, pi) {
		unsigned long pool_ts, touched, ts;

		pool->cpu_stall = false;
		if (list_empty(&pool->worklist))
			continue;

		/*
		 * If a virtual machine is stopped by the host it can look to
		 * the watchdog like a stall.
		 */
		kvm_check_and_clear_guest_paused();

		/* get the latest of pool and touched timestamps */
		if (pool->cpu >= 0)
			touched = READ_ONCE(per_cpu(wq_watchdog_touched_cpu, pool->cpu));
		else
			touched = READ_ONCE(wq_watchdog_touched);
		pool_ts = READ_ONCE(pool->watchdog_ts);

		if (time_after(pool_ts, touched))
			ts = pool_ts;
		else
			ts = touched;

		/* did we stall? */
		if (time_after(now, ts + thresh)) {
			lockup_detected = true;
			stall_time = jiffies_to_msecs(now - pool_ts) / 1000;
			max_stall_time = max(max_stall_time, stall_time);
			if (pool->cpu >= 0 && !(pool->flags & POOL_BH)) {
				pool->cpu_stall = true;
				cpu_pool_stall = true;
			}
			pr_emerg("BUG: workqueue lockup - pool");
			pr_cont_pool_info(pool);
			pr_cont(" stuck for %us!\n", stall_time);
		}


	}

	if (lockup_detected)
		show_all_workqueues();

	if (cpu_pool_stall)
		show_cpu_pools_hogs();

	if (lockup_detected)
		panic_on_wq_watchdog(max_stall_time);

	wq_watchdog_reset_touched();
	mod_timer(&wq_watchdog_timer, jiffies + thresh);
}

notrace void wq_watchdog_touch(int cpu)
{
	unsigned long thresh = READ_ONCE(wq_watchdog_thresh) * HZ;
	unsigned long touch_ts = READ_ONCE(wq_watchdog_touched);
	unsigned long now = jiffies;

	if (cpu >= 0)
		per_cpu(wq_watchdog_touched_cpu, cpu) = now;
	else
		WARN_ONCE(1, "%s should be called with valid CPU", __func__);

	/* Don't unnecessarily store to global cacheline */
	if (time_after(now, touch_ts + thresh / 4))
		WRITE_ONCE(wq_watchdog_touched, jiffies);
}

static void wq_watchdog_set_thresh(unsigned long thresh)
{
	wq_watchdog_thresh = 0;
	timer_delete_sync(&wq_watchdog_timer);

	if (thresh) {
		wq_watchdog_thresh = thresh;
		wq_watchdog_reset_touched();
		mod_timer(&wq_watchdog_timer, jiffies + thresh * HZ);
	}
}

static int wq_watchdog_param_set_thresh(const char *val,
					const struct kernel_param *kp)
{
	unsigned long thresh;
	int ret;

	ret = kstrtoul(val, 0, &thresh);
	if (ret)
		return ret;

	if (system_percpu_wq)
		wq_watchdog_set_thresh(thresh);
	else
		wq_watchdog_thresh = thresh;

	return 0;
}

static const struct kernel_param_ops wq_watchdog_thresh_ops = {
	.set	= wq_watchdog_param_set_thresh,
	.get	= param_get_ulong,
};

module_param_cb(watchdog_thresh, &wq_watchdog_thresh_ops, &wq_watchdog_thresh,
		0644);

static void wq_watchdog_init(void)
{
	timer_setup(&wq_watchdog_timer, wq_watchdog_timer_fn, TIMER_DEFERRABLE);
	wq_watchdog_set_thresh(wq_watchdog_thresh);
}

#else	/* CONFIG_WQ_WATCHDOG */

static inline void wq_watchdog_init(void) { }

#endif	/* CONFIG_WQ_WATCHDOG */

static void bh_pool_kick_normal(struct irq_work *irq_work)
{
	raise_softirq_irqoff(TASKLET_SOFTIRQ);
}

static void bh_pool_kick_highpri(struct irq_work *irq_work)
{
	raise_softirq_irqoff(HI_SOFTIRQ);
}

static void __init restrict_unbound_cpumask(const char *name, const struct cpumask *mask)
{
	if (!cpumask_intersects(wq_unbound_cpumask, mask)) {
		pr_warn("workqueue: Restricting unbound_cpumask (%*pb) with %s (%*pb) leaves no CPU, ignoring\n",
			cpumask_pr_args(wq_unbound_cpumask), name, cpumask_pr_args(mask));
		return;
	}

	cpumask_and(wq_unbound_cpumask, wq_unbound_cpumask, mask);
}

static void __init init_cpu_worker_pool(struct worker_pool *pool, int cpu, int nice)
{
	BUG_ON(init_worker_pool(pool));
	pool->cpu = cpu;
	cpumask_copy(pool->attrs->cpumask, cpumask_of(cpu));
	cpumask_copy(pool->attrs->__pod_cpumask, cpumask_of(cpu));
	pool->attrs->nice = nice;
	pool->attrs->affn_strict = true;
	pool->node = cpu_to_node(cpu);

	/* alloc pool ID */
	mutex_lock(&wq_pool_mutex);
	BUG_ON(worker_pool_assign_id(pool));
	mutex_unlock(&wq_pool_mutex);
}

/**
 * workqueue_init_early - early init for workqueue subsystem
 *
 * This is the first step of three-staged workqueue subsystem initialization and
 * invoked as soon as the bare basics - memory allocation, cpumasks and idr are
 * up. It sets up all the data structures and system workqueues and allows early
 * boot code to create workqueues and queue/cancel work items. Actual work item
 * execution starts only after kthreads can be created and scheduled right
 * before early initcalls.
 */
void __init workqueue_init_early(void)
{
	struct wq_pod_type *pt = &wq_pod_types[WQ_AFFN_SYSTEM];
	int std_nice[NR_STD_WORKER_POOLS] = { 0, HIGHPRI_NICE_LEVEL };
	void (*irq_work_fns[2])(struct irq_work *) = { bh_pool_kick_normal,
						       bh_pool_kick_highpri };
	int i, cpu;

	BUILD_BUG_ON(__alignof__(struct pool_workqueue) < __alignof__(long long));

	BUG_ON(!alloc_cpumask_var(&wq_online_cpumask, GFP_KERNEL));
	BUG_ON(!alloc_cpumask_var(&wq_unbound_cpumask, GFP_KERNEL));
	BUG_ON(!alloc_cpumask_var(&wq_requested_unbound_cpumask, GFP_KERNEL));
	BUG_ON(!zalloc_cpumask_var(&wq_isolated_cpumask, GFP_KERNEL));

	cpumask_copy(wq_online_cpumask, cpu_online_mask);
	cpumask_copy(wq_unbound_cpumask, cpu_possible_mask);
	restrict_unbound_cpumask("HK_TYPE_WQ", housekeeping_cpumask(HK_TYPE_WQ));
	restrict_unbound_cpumask("HK_TYPE_DOMAIN", housekeeping_cpumask(HK_TYPE_DOMAIN));
	if (!cpumask_empty(&wq_cmdline_cpumask))
		restrict_unbound_cpumask("workqueue.unbound_cpus", &wq_cmdline_cpumask);

	cpumask_copy(wq_requested_unbound_cpumask, wq_unbound_cpumask);
	cpumask_andnot(wq_isolated_cpumask, cpu_possible_mask,
						housekeeping_cpumask(HK_TYPE_DOMAIN));
	pwq_cache = KMEM_CACHE(pool_workqueue, SLAB_PANIC);

	unbound_wq_update_pwq_attrs_buf = alloc_workqueue_attrs();
	BUG_ON(!unbound_wq_update_pwq_attrs_buf);

	/*
	 * If nohz_full is enabled, set power efficient workqueue as unbound.
	 * This allows workqueue items to be moved to HK CPUs.
	 */
	if (housekeeping_enabled(HK_TYPE_TICK))
		wq_power_efficient = true;

	/* initialize WQ_AFFN_SYSTEM pods */
	pt->pod_cpus = kzalloc_objs(pt->pod_cpus[0], 1);
	pt->pod_node = kzalloc_objs(pt->pod_node[0], 1);
	pt->cpu_pod = kzalloc_objs(pt->cpu_pod[0], nr_cpu_ids);
	BUG_ON(!pt->pod_cpus || !pt->pod_node || !pt->cpu_pod);

	BUG_ON(!zalloc_cpumask_var_node(&pt->pod_cpus[0], GFP_KERNEL, NUMA_NO_NODE));

	pt->nr_pods = 1;
	cpumask_copy(pt->pod_cpus[0], cpu_possible_mask);
	pt->pod_node[0] = NUMA_NO_NODE;
	pt->cpu_pod[0] = 0;

	/* initialize BH and CPU pools */
	for_each_possible_cpu(cpu) {
		struct worker_pool *pool;

		i = 0;
		for_each_bh_worker_pool(pool, cpu) {
			init_cpu_worker_pool(pool, cpu, std_nice[i]);
			pool->flags |= POOL_BH;
			init_irq_work(bh_pool_irq_work(pool), irq_work_fns[i]);
			i++;
		}

		i = 0;
		for_each_cpu_worker_pool(pool, cpu)
			init_cpu_worker_pool(pool, cpu, std_nice[i++]);
	}

	/* create default unbound and ordered wq attrs */
	for (i = 0; i < NR_STD_WORKER_POOLS; i++) {
		struct workqueue_attrs *attrs;

		BUG_ON(!(attrs = alloc_workqueue_attrs()));
		attrs->nice = std_nice[i];
		unbound_std_wq_attrs[i] = attrs;

		/*
		 * An ordered wq should have only one pwq as ordering is
		 * guaranteed by max_active which is enforced by pwqs.
		 */
		BUG_ON(!(attrs = alloc_workqueue_attrs()));
		attrs->nice = std_nice[i];
		attrs->ordered = true;
		ordered_wq_attrs[i] = attrs;
	}

	system_wq = alloc_workqueue("events", WQ_PERCPU, 0);
	system_percpu_wq = alloc_workqueue("events", WQ_PERCPU, 0);
	system_highpri_wq = alloc_workqueue("events_highpri",
					    WQ_HIGHPRI | WQ_PERCPU, 0);
	system_long_wq = alloc_workqueue("events_long", WQ_PERCPU, 0);
	system_unbound_wq = alloc_workqueue("events_unbound", WQ_UNBOUND, WQ_MAX_ACTIVE);
	system_dfl_wq = alloc_workqueue("events_unbound", WQ_UNBOUND, WQ_MAX_ACTIVE);
	system_freezable_wq = alloc_workqueue("events_freezable",
					      WQ_FREEZABLE | WQ_PERCPU, 0);
	system_power_efficient_wq = alloc_workqueue("events_power_efficient",
					      WQ_POWER_EFFICIENT | WQ_PERCPU, 0);
	system_freezable_power_efficient_wq = alloc_workqueue("events_freezable_pwr_efficient",
					      WQ_FREEZABLE | WQ_POWER_EFFICIENT | WQ_PERCPU, 0);
	system_bh_wq = alloc_workqueue("events_bh", WQ_BH | WQ_PERCPU, 0);
	system_bh_highpri_wq = alloc_workqueue("events_bh_highpri",
					       WQ_BH | WQ_HIGHPRI | WQ_PERCPU, 0);
	BUG_ON(!system_wq || !system_percpu_wq|| !system_highpri_wq || !system_long_wq ||
	       !system_unbound_wq || !system_freezable_wq || !system_dfl_wq ||
	       !system_power_efficient_wq ||
	       !system_freezable_power_efficient_wq ||
	       !system_bh_wq || !system_bh_highpri_wq);
}

static void __init wq_cpu_intensive_thresh_init(void)
{
	unsigned long thresh;
	unsigned long bogo;

	pwq_release_worker = kthread_run_worker(0, "pool_workqueue_release");
	BUG_ON(IS_ERR(pwq_release_worker));

	/* if the user set it to a specific value, keep it */
	if (wq_cpu_intensive_thresh_us != ULONG_MAX)
		return;

	/*
	 * The default of 10ms is derived from the fact that most modern (as of
	 * 2023) processors can do a lot in 10ms and that it's just below what
	 * most consider human-perceivable. However, the kernel also runs on a
	 * lot slower CPUs including microcontrollers where the threshold is way
	 * too low.
	 *
	 * Let's scale up the threshold upto 1 second if BogoMips is below 4000.
	 * This is by no means accurate but it doesn't have to be. The mechanism
	 * is still useful even when the threshold is fully scaled up. Also, as
	 * the reports would usually be applicable to everyone, some machines
	 * operating on longer thresholds won't significantly diminish their
	 * usefulness.
	 */
	thresh = 10 * USEC_PER_MSEC;

	/* see init/calibrate.c for lpj -> BogoMIPS calculation */
	bogo = max_t(unsigned long, loops_per_jiffy / 500000 * HZ, 1);
	if (bogo < 4000)
		thresh = min_t(unsigned long, thresh * 4000 / bogo, USEC_PER_SEC);

	pr_debug("wq_cpu_intensive_thresh: lpj=%lu BogoMIPS=%lu thresh_us=%lu\n",
		 loops_per_jiffy, bogo, thresh);

	wq_cpu_intensive_thresh_us = thresh;
}

/**
 * workqueue_init - bring workqueue subsystem fully online
 *
 * This is the second step of three-staged workqueue subsystem initialization
 * and invoked as soon as kthreads can be created and scheduled. Workqueues have
 * been created and work items queued on them, but there are no kworkers
 * executing the work items yet. Populate the worker pools with the initial
 * workers and enable future kworker creations.
 */
void __init workqueue_init(void)
{
	struct workqueue_struct *wq;
	struct worker_pool *pool;
	int cpu, bkt;

	wq_cpu_intensive_thresh_init();

	mutex_lock(&wq_pool_mutex);

	/*
	 * Per-cpu pools created earlier could be missing node hint. Fix them
	 * up. Also, create a rescuer for workqueues that requested it.
	 */
	for_each_possible_cpu(cpu) {
		for_each_bh_worker_pool(pool, cpu)
			pool->node = cpu_to_node(cpu);
		for_each_cpu_worker_pool(pool, cpu)
			pool->node = cpu_to_node(cpu);
	}

	list_for_each_entry(wq, &workqueues, list) {
		WARN(init_rescuer(wq),
		     "workqueue: failed to create early rescuer for %s",
		     wq->name);
	}

	mutex_unlock(&wq_pool_mutex);

	/*
	 * Create the initial workers. A BH pool has one pseudo worker that
	 * represents the shared BH execution context and thus doesn't get
	 * affected by hotplug events. Create the BH pseudo workers for all
	 * possible CPUs here.
	 */
	for_each_possible_cpu(cpu)
		for_each_bh_worker_pool(pool, cpu)
			BUG_ON(!create_worker(pool));

	for_each_online_cpu(cpu) {
		for_each_cpu_worker_pool(pool, cpu) {
			pool->flags &= ~POOL_DISASSOCIATED;
			BUG_ON(!create_worker(pool));
		}
	}

	hash_for_each(unbound_pool_hash, bkt, pool, hash_node)
		BUG_ON(!create_worker(pool));

	wq_online = true;
	wq_watchdog_init();
}

/*
 * Initialize @pt by first initializing @pt->cpu_pod[] with pod IDs according to
 * @cpu_shares_pod(). Each subset of CPUs that share a pod is assigned a unique
 * and consecutive pod ID. The rest of @pt is initialized accordingly.
 */
static void __init init_pod_type(struct wq_pod_type *pt,
				 bool (*cpus_share_pod)(int, int))
{
	int cur, pre, cpu, pod;

	pt->nr_pods = 0;

	/* init @pt->cpu_pod[] according to @cpus_share_pod() */
	pt->cpu_pod = kzalloc_objs(pt->cpu_pod[0], nr_cpu_ids);
	BUG_ON(!pt->cpu_pod);

	for_each_possible_cpu(cur) {
		for_each_possible_cpu(pre) {
			if (pre >= cur) {
				pt->cpu_pod[cur] = pt->nr_pods++;
				break;
			}
			if (cpus_share_pod(cur, pre)) {
				pt->cpu_pod[cur] = pt->cpu_pod[pre];
				break;
			}
		}
	}

	/* init the rest to match @pt->cpu_pod[] */
	pt->pod_cpus = kzalloc_objs(pt->pod_cpus[0], pt->nr_pods);
	pt->pod_node = kzalloc_objs(pt->pod_node[0], pt->nr_pods);
	BUG_ON(!pt->pod_cpus || !pt->pod_node);

	for (pod = 0; pod < pt->nr_pods; pod++)
		BUG_ON(!zalloc_cpumask_var(&pt->pod_cpus[pod], GFP_KERNEL));

	for_each_possible_cpu(cpu) {
		cpumask_set_cpu(cpu, pt->pod_cpus[pt->cpu_pod[cpu]]);
		pt->pod_node[pt->cpu_pod[cpu]] = cpu_to_node(cpu);
	}
}

static bool __init cpus_dont_share(int cpu0, int cpu1)
{
	return false;
}

static bool __init cpus_share_smt(int cpu0, int cpu1)
{
#ifdef CONFIG_SCHED_SMT
	return cpumask_test_cpu(cpu0, cpu_smt_mask(cpu1));
#else
	return false;
#endif
}

static bool __init cpus_share_numa(int cpu0, int cpu1)
{
	return cpu_to_node(cpu0) == cpu_to_node(cpu1);
}

/**
 * workqueue_init_topology - initialize CPU pods for unbound workqueues
 *
 * This is the third step of three-staged workqueue subsystem initialization and
 * invoked after SMP and topology information are fully initialized. It
 * initializes the unbound CPU pods accordingly.
 */
void __init workqueue_init_topology(void)
{
	struct workqueue_struct *wq;
	int cpu;

	init_pod_type(&wq_pod_types[WQ_AFFN_CPU], cpus_dont_share);
	init_pod_type(&wq_pod_types[WQ_AFFN_SMT], cpus_share_smt);
	init_pod_type(&wq_pod_types[WQ_AFFN_CACHE], cpus_share_cache);
	init_pod_type(&wq_pod_types[WQ_AFFN_NUMA], cpus_share_numa);

	wq_topo_initialized = true;

	mutex_lock(&wq_pool_mutex);

	/*
	 * Workqueues allocated earlier would have all CPUs sharing the default
	 * worker pool. Explicitly call unbound_wq_update_pwq() on all workqueue
	 * and CPU combinations to apply per-pod sharing.
	 */
	list_for_each_entry(wq, &workqueues, list) {
		for_each_online_cpu(cpu)
			unbound_wq_update_pwq(wq, cpu);
		if (wq->flags & WQ_UNBOUND) {
			mutex_lock(&wq->mutex);
			wq_update_node_max_active(wq, -1);
			mutex_unlock(&wq->mutex);
		}
	}

	mutex_unlock(&wq_pool_mutex);
}

void __warn_flushing_systemwide_wq(void)
{
	pr_warn("WARNING: Flushing system-wide workqueues will be prohibited in near future.\n");
	dump_stack();
}
EXPORT_SYMBOL(__warn_flushing_systemwide_wq);

static int __init workqueue_unbound_cpus_setup(char *str)
{
	if (cpulist_parse(str, &wq_cmdline_cpumask) < 0) {
		cpumask_clear(&wq_cmdline_cpumask);
		pr_warn("workqueue.unbound_cpus: incorrect CPU range, using default\n");
	}

	return 1;
}
__setup("workqueue.unbound_cpus=", workqueue_unbound_cpus_setup);
]

44/2 2026/02/24 19:13 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 129844
							output: 37
							thoughts: 3010
						

Thoughts:
**Benign Data Race in Workqueue Worker Counter**

Okay, so I've been digging into this workqueue code, specifically around the `nr_running` counter within the `worker_pool` structure. The goal is to figure out whether KCSAN is right to flag a race condition.

My initial thought was that the code seemed a bit off. The counter, `nr_running`, is incremented without a lock by `wq_worker_running`, but read with a lock by `kick_pool`. The comment in the code even says readers with the lock "are guaranteed to see if the counter reached zero." That didn't sit right since the increment isn't synchronized. If the counter went from 0 to 1, a reader with the lock *could* still see 0.

However, after looking at the specifics, it became clearer. The guarantee isn't about *all* possible states, but specifically when the counter becomes zero. The decrement to zero, performed by `wq_worker_sleeping`, *does* hold the lock. So readers *will* see zero if the counter has actually become zero. The race happens when it becomes non-zero. If the counter goes from 0 to 1, a reader can still see 0. But it only leads to a harmless extra wakeup, not corruption.

Digging deeper, I found that `wq_worker_running` has a `preempt_disable()` section. It appears that `preempt_disable()` is used to synchronize with `unbind_workers` on the same CPU. The KCSAN report confirms exactly what I'm looking at: a read/write race on `nr_running`.

I needed to be sure that the race wasn't causing other issues, for example, multiple writers. All the writers are in the local CPU, which means that the writes are serialized and so the counter cannot be corrupted.

I then went through all the readers of `nr_running`. The main reader is `kick_pool` (which is called by `__queue_work` which could be another CPU). The impact of the race is still a harmless extra worker wakeup.

I confirmed that there are no race conditions with other readers, and that the uses of `nr_running` are safe: checking whether to wake up a worker, or create a worker. The only reader across CPUs is `kick_pool`, and that only leads to an extra wakeup which is fine.

I also saw that `worker_clr_flags` can increment `nr_running` and it holds the lock.

It's clear the design allows for this specific race. The comment in the code even sort of acknowledges the race, and it does make the implication that readers might not see non-zero values if they are holding the lock.

It turns out that `wq_worker_running` uses `preempt_disable()` and not `pool->lock`. It uses it to synchronize with `unbind_workers` on the same CPU, but this doesn't protect against `kick_pool` on another CPU. I have confirmed that this design is by intention.

I checked for other potential problems, specifically the state of `worker->flags`, but the code also uses `WRITE_ONCE` for them.

The final conclusion: This data race is benign. The comment acknowledges it, and its only result is an extra worker wakeup, not data corruption or resource leaks. The developers were aware, and determined it was acceptable for performance reasons.



45/2 2026/02/24 19:14 tool codesearch-definition-comment
0m Error:
log-in to see details

Args:
map[ContextFile:kernel/workqueue.c Name:worker_pool::nr_running]

Results:
map[Comment: Kind:]

46/2 2026/02/24 19:14 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 133645
							output: 19
							thoughts: 214
						

Thoughts:
**Analyzing the Worker Pool Counter in `kernel/workqueue.c`**

Okay, let's break this down line by line, referencing the `kernel/workqueue.c` output. The structure `worker_pool` is defined, and I'm particularly interested in the `nr_running` counter, specifically at line 627. Looking at lines 621-626, this section is key to understanding the concurrency concerns.

The comment makes it clear that `nr_running` is incremented in a process context on a specific CPU, but *without* preemption enabled. This is crucial. It's decremented or reset in the same context, but now *with* the `pool->lock` held. The implications of this are interesting. The readers *must* acquire `pool->lock` to determine if the counter has reached zero.

So, this highlights the potential for a race condition, right? An unsynchronized increment happening locally on one CPU versus a synchronized read on another CPU, all due to the locking scheme. The design explicitly acknowledges this race condition and handles it. It seems we accept the possibility of a few extra wakeups as a trade-off for performance.

Yes, this confirms my initial understanding. I've now clearly identified the concurrency model and the strategy used to manage the race condition in the `nr_running` counter. I am now in a position to provide a clear and concise summary of this.



47/2 2026/02/24 19:14 tool set-results
0m Args:
map[Benign:true Confident:true]

Results:
map[Benign:true Confident:true]

48/2 2026/02/24 19:14 llm expert
0m Model:
gemini-3-flash-preview

Tokens:
							input: 134202
							output: 658
							thoughts: 523
						

Thoughts:
**Analyzing the Data Race in the Worker Pool**

Okay, so I'm looking at this potential data race on `pool->nr_running` within this worker pool, specifically between `wq_worker_running()` and `kick_pool()`, which is triggered through `need_more_worker()`. It seems we've got a read/write situation that I need to dissect.

In `wq_worker_running()`, the `nr_running` counter gets incremented when a worker wakes up. Crucially, this happens on the CPU that the pool is associated with. Preemption is disabled, but we *aren't* holding `pool->lock`. Hmm, that's the first potential issue.

On the `kick_pool()` side, and through `need_more_worker()`, the `nr_running` counter is read to determine if we need to wake up a new worker.  This read *does* happen while holding the `pool->lock`.

Now, let's break down the situation. First, all modifications to `nr_running` happen on the local CPU for that pool. Both `wq_worker_running()` and `wq_worker_sleeping()` (which, by the way, decrements it) are on that CPU.  `wq_worker_sleeping()` holds the `pool->lock`.  `wq_worker_running()` only disables preemption. Since they run on the same CPU, and come from the scheduler, they are serialized.

Other writers, like `worker_set_flags()` and `unbind_workers()`, also use the `pool->lock` and, again, run locally. So the only cross-CPU interaction is the read within `kick_pool()`.

The critical point is this: if `kick_pool()` on another CPU races with the increment from `wq_worker_running()`, we *might* read the old value (0) instead of the new value (1). That's a potential problem, but let's dig deeper.

If we see 0, we *might* wake up an extra worker. This is not optimal but it appears benign. The workqueue concurrency management will correct this later so it is not harmful.

If we read 1, we will skip waking up a worker, and that's the correct behavior since a worker is already waking up.

The important factor here is how `nr_running` transitions to 0. When a worker sleeps, this happens *under* the `pool->lock` in `wq_worker_sleeping()`. Therefore, any reader holding the `pool->lock` (like `kick_pool()`) is *guaranteed* to see a value of 0 if the pool has actually become idle.

The comment in `struct worker_pool` explicitly describes this synchronization strategy, which acknowledges the lock-less increments and the guaranteed read of 0.

So, after careful consideration, I'm confident that this data race is indeed benign. It's a trade-off for performance and the worst outcome is an unnecessary worker wakeup, which the system can handle. We aren't introducing any correctness issues.



LLM Calls Summary:
Total Calls Total Tokens Avg Tokens Total Duration (Seconds) Avg Duration (Seconds)
Tool Calls Summary:
Total Calls Total Duration (Seconds) Avg Duration (Seconds)