// https://syzkaller.appspot.com/bug?id=08ab0b3d81c97da9356e26547a679d4a63a73275 #define _GNU_SOURCE #include #include #include #include #include #include #include #include #include // Copyright 2026 syzkaller project authors. All rights reserved. // Use of this source code is governed by Apache 2 LICENSE that can be found in the LICENSE file. // IMPORTANT: Do not copy the macros or definitions below directly into your reproducer. // Instead, add the following line to your reproducer: // #include "race_toolkit.h" // --- Race Condition Toolkit --- // Macros and snippets for CPU pinning, memory barriers, and userfaultfd. #define _GNU_SOURCE #include #include #include #include #include #include #include #include #include #include #include #include #include #include // Unbuffered I/O: Ensure logs are written immediately. #define SETUP_UNBUFFERED_IO() setvbuf(stdout, NULL, _IONBF, 0) // CPU Pinning: Pin the current thread to a specific CPU core. #define PIN_TO_CPU(cpu) \ do { \ cpu_set_t mask; \ CPU_ZERO(&mask); \ CPU_SET(cpu, &mask); \ if (sched_setaffinity(0, sizeof(mask), &mask) == -1) { \ perror("sched_setaffinity"); \ } \ } while (0) // Memory Barrier: Ensure memory ordering. #define MB() __atomic_thread_fence(__ATOMIC_SEQ_CST) // Spin-wait Barrier: Wait until a memory location has a specific value. // Best for tight race windows (low latency, no context switches). #define WAIT_ON(addr, val) \ do { \ while (__atomic_load_n(addr, __ATOMIC_ACQUIRE) != (val)) \ ; \ } while (0) // Signal: Set a memory location to a specific value to release a WAIT_ON. #define SIGNAL(addr, val) __atomic_store_n(addr, val, __ATOMIC_RELEASE) // --- Timing Primitives --- // Robust timing loops in VM environments (using CLOCK_MONOTONIC to avoid time(NULL) jumps). static inline double timer_elapsed_sec(struct timespec* start) { struct timespec now; if (clock_gettime(CLOCK_MONOTONIC, &now) == -1) { perror("clock_gettime(CLOCK_MONOTONIC) elapsed"); exit(1); } return (double)(now.tv_sec - start->tv_sec) + (double)(now.tv_nsec - start->tv_nsec) / 1e9; } // Initialize a monotonic timer variable. #define TIMER_START(t) \ struct timespec t; \ if (clock_gettime(CLOCK_MONOTONIC, &t) == -1) { \ perror("clock_gettime(CLOCK_MONOTONIC) start"); \ exit(1); \ } // Check if the elapsed time since 't' is less than 'sec' seconds. #define TIMER_NOT_EXPIRED(t, sec) (timer_elapsed_sec(&(t)) < (double)(sec)) // Futex-based Event: Shared with syzkaller executor. // Best for general synchronization or longer waits to save CPU. typedef struct { int state; } event_t; static void event_init(event_t* ev) { ev->state = 0; } static void event_reset(event_t* ev) { ev->state = 0; } static void event_set(event_t* ev) { if (__atomic_load_n(&ev->state, __ATOMIC_ACQUIRE)) { fprintf(stderr, "event already set\n"); exit(1); } __atomic_store_n(&ev->state, 1, __ATOMIC_RELEASE); syscall(SYS_futex, &ev->state, FUTEX_WAKE | FUTEX_PRIVATE_FLAG, 1000000); } static void event_wait(event_t* ev) { while (!__atomic_load_n(&ev->state, __ATOMIC_ACQUIRE)) syscall(SYS_futex, &ev->state, FUTEX_WAIT | FUTEX_PRIVATE_FLAG, 0, 0); } // userfaultfd setup: Register a memory range for page fault handling. static int setup_uffd(void* addr, size_t len) { int uffd = syscall(__NR_userfaultfd, O_CLOEXEC | O_NONBLOCK); if (uffd == -1) return -1; struct uffdio_api api = {.api = UFFD_API, .features = 0}; if (ioctl(uffd, UFFDIO_API, &api) == -1) { close(uffd); return -1; } struct uffdio_register reg = { .range = {.start = (uintptr_t)addr, .len = len}, .mode = UFFDIO_REGISTER_MODE_MISSING}; if (ioctl(uffd, UFFDIO_REGISTER, ®) == -1) { close(uffd); return -1; } return uffd; } // --- Guidance on Usage --- // 1. Use WAIT_ON/SIGNAL for tight race conditions to avoid scheduling overhead. // 2. Use event_t (futexes) for general coordination or when waiting for longer periods. // 3. Always use PIN_TO_CPU to increase race probability on multi-core systems. // 4. Use setup_uffd to register a memory range for page fault handling. This allows you to // pause a thread accessing that memory until you handle the fault, creating a reliable // and controllable race window. // 5. Call SETUP_UNBUFFERED_IO() at the start of main() to ensure that logs are printed // immediately. This is essential for understanding the exact interleaving of events // when debugging race conditions. // 6. For timing-based loops (e.g., running a race for 10 seconds), do NOT use time(NULL) // or loops relying on real-time clocks, as VM clocks are highly unreliable and can fail or drift. // Instead, use the robust monotonic timing primitives TIMER_START and TIMER_NOT_EXPIRED: // TIMER_START(start); // while (TIMER_NOT_EXPIRED(start, 10.0)) { // // Your race logic here // } int fd_power; int fd_zoned; int start_flag = 0; int delay_iters = 0; void *thread_power(void *arg) { PIN_TO_CPU(0); WAIT_ON(&start_flag, 1); // Write '1' to power to initiate null_add_dev() int res = write(fd_power, "1\n", 2); (void)res; return NULL; } void *thread_zoned(void *arg) { PIN_TO_CPU(1); WAIT_ON(&start_flag, 1); // Small busy-wait delay to let the power thread pass the first `dev->zoned` check. // The race window is during `blk_mq_alloc_disk`, which takes some time. for (volatile int i = 0; i < delay_iters; i++); // Write '1' to zoned to flip the value before the second check int res = write(fd_zoned, "1\n", 2); (void)res; return NULL; } int main(void) { SETUP_UNBUFFERED_IO(); int res; struct stat st; printf("[*] Starting reproducer...\n"); res = stat("/sys/kernel/config", &st); if (res < 0) { printf("[-] Failed to stat /sys/kernel/config: %s\n", strerror(errno)); } else { printf("[+] stat /sys/kernel/config successful.\n"); } res = mount("none", "/sys/kernel/config", "configfs", 0, NULL); if (res < 0 && errno != EBUSY) { printf("[-] Failed to mount configfs: %s\n", strerror(errno)); } else { printf("[+] mount configfs successful.\n"); } res = stat("/sys/kernel/config/nullb", &st); if (res < 0) { printf("[-] Failed to stat /sys/kernel/config/nullb: %s\n", strerror(errno)); exit(1); } printf("[+] stat /sys/kernel/config/nullb successful.\n"); TIMER_START(start); int dev_idx = 0; // Run for up to 10 seconds to hit the race window while (TIMER_NOT_EXPIRED(start, 10.0)) { char path[256]; char power_path[256]; char zoned_path[256]; snprintf(path, sizeof(path), "/sys/kernel/config/nullb/nullb%d", dev_idx++); res = mkdir(path, 0755); if (res < 0) { if (errno == EEXIST) { rmdir(path); res = mkdir(path, 0755); } if (res < 0) { continue; } } snprintf(power_path, sizeof(power_path), "%s/power", path); snprintf(zoned_path, sizeof(zoned_path), "%s/zoned", path); fd_power = open(power_path, O_WRONLY); fd_zoned = open(zoned_path, O_WRONLY); if (fd_power < 0 || fd_zoned < 0) { if (fd_power >= 0) close(fd_power); if (fd_zoned >= 0) close(fd_zoned); rmdir(path); continue; } start_flag = 0; delay_iters = rand() % 2000; pthread_t t1, t2; pthread_create(&t1, NULL, thread_power, NULL); pthread_create(&t2, NULL, thread_zoned, NULL); // Release both threads simultaneously SIGNAL(&start_flag, 1); pthread_join(t1, NULL); pthread_join(t2, NULL); close(fd_power); close(fd_zoned); // Cleanup: rmdir on configfs automatically powers off and drops the device rmdir(path); } printf("[+] Reproducer finished.\n"); // Sleep a bit to allow asynchronous warnings to print sleep(2); return 0; }