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694 lines
14 KiB
694 lines
14 KiB
/* |
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* Clock functions |
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*/ |
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|
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#include <unistd.h> |
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#include <math.h> |
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#include <sys/time.h> |
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#include <time.h> |
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|
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#include "fio.h" |
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#include "smalloc.h" |
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|
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#include "hash.h" |
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#include "os/os.h" |
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#if defined(ARCH_HAVE_CPU_CLOCK) |
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#ifndef ARCH_CPU_CLOCK_CYCLES_PER_USEC |
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static unsigned long cycles_per_usec; |
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static unsigned long inv_cycles_per_usec; |
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static uint64_t max_cycles_for_mult; |
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#endif |
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#ifdef ARCH_CPU_CLOCK_WRAPS |
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static unsigned long long cycles_start, cycles_wrap; |
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#endif |
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#endif |
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int tsc_reliable = 0; |
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struct tv_valid { |
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uint64_t last_cycles; |
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int last_tv_valid; |
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int warned; |
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}; |
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#ifdef ARCH_HAVE_CPU_CLOCK |
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#ifdef CONFIG_TLS_THREAD |
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static __thread struct tv_valid static_tv_valid; |
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#else |
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static pthread_key_t tv_tls_key; |
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#endif |
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#endif |
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enum fio_cs fio_clock_source = FIO_PREFERRED_CLOCK_SOURCE; |
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int fio_clock_source_set = 0; |
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static enum fio_cs fio_clock_source_inited = CS_INVAL; |
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#ifdef FIO_DEBUG_TIME |
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#define HASH_BITS 8 |
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#define HASH_SIZE (1 << HASH_BITS) |
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static struct flist_head hash[HASH_SIZE]; |
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static int gtod_inited; |
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struct gtod_log { |
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struct flist_head list; |
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void *caller; |
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unsigned long calls; |
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}; |
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static struct gtod_log *find_hash(void *caller) |
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{ |
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unsigned long h = hash_ptr(caller, HASH_BITS); |
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struct flist_head *entry; |
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flist_for_each(entry, &hash[h]) { |
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struct gtod_log *log = flist_entry(entry, struct gtod_log, |
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list); |
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if (log->caller == caller) |
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return log; |
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} |
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return NULL; |
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} |
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static void inc_caller(void *caller) |
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{ |
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struct gtod_log *log = find_hash(caller); |
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if (!log) { |
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unsigned long h; |
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log = malloc(sizeof(*log)); |
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INIT_FLIST_HEAD(&log->list); |
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log->caller = caller; |
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log->calls = 0; |
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h = hash_ptr(caller, HASH_BITS); |
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flist_add_tail(&log->list, &hash[h]); |
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} |
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log->calls++; |
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} |
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static void gtod_log_caller(void *caller) |
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{ |
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if (gtod_inited) |
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inc_caller(caller); |
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} |
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static void fio_exit fio_dump_gtod(void) |
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{ |
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unsigned long total_calls = 0; |
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int i; |
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for (i = 0; i < HASH_SIZE; i++) { |
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struct flist_head *entry; |
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struct gtod_log *log; |
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flist_for_each(entry, &hash[i]) { |
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log = flist_entry(entry, struct gtod_log, list); |
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printf("function %p, calls %lu\n", log->caller, |
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log->calls); |
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total_calls += log->calls; |
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} |
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} |
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printf("Total %lu gettimeofday\n", total_calls); |
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} |
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static void fio_init gtod_init(void) |
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{ |
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int i; |
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for (i = 0; i < HASH_SIZE; i++) |
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INIT_FLIST_HEAD(&hash[i]); |
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gtod_inited = 1; |
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} |
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#endif /* FIO_DEBUG_TIME */ |
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#ifdef CONFIG_CLOCK_GETTIME |
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static int fill_clock_gettime(struct timespec *ts) |
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{ |
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#if defined(CONFIG_CLOCK_MONOTONIC_RAW) |
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return clock_gettime(CLOCK_MONOTONIC_RAW, ts); |
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#elif defined(CONFIG_CLOCK_MONOTONIC) |
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return clock_gettime(CLOCK_MONOTONIC, ts); |
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#else |
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return clock_gettime(CLOCK_REALTIME, ts); |
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#endif |
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} |
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#endif |
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static void __fio_gettime(struct timeval *tp) |
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{ |
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switch (fio_clock_source) { |
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#ifdef CONFIG_GETTIMEOFDAY |
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case CS_GTOD: |
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gettimeofday(tp, NULL); |
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break; |
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#endif |
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#ifdef CONFIG_CLOCK_GETTIME |
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case CS_CGETTIME: { |
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struct timespec ts; |
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if (fill_clock_gettime(&ts) < 0) { |
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log_err("fio: clock_gettime fails\n"); |
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assert(0); |
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} |
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tp->tv_sec = ts.tv_sec; |
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tp->tv_usec = ts.tv_nsec / 1000; |
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break; |
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} |
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#endif |
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#ifdef ARCH_HAVE_CPU_CLOCK |
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case CS_CPUCLOCK: { |
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uint64_t usecs, t; |
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struct tv_valid *tv; |
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#ifdef CONFIG_TLS_THREAD |
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tv = &static_tv_valid; |
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#else |
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tv = pthread_getspecific(tv_tls_key); |
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#endif |
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t = get_cpu_clock(); |
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#ifdef ARCH_CPU_CLOCK_WRAPS |
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if (t < cycles_start && !cycles_wrap) |
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cycles_wrap = 1; |
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else if (cycles_wrap && t >= cycles_start && !tv->warned) { |
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log_err("fio: double CPU clock wrap\n"); |
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tv->warned = 1; |
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} |
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t -= cycles_start; |
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#endif |
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tv->last_cycles = t; |
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tv->last_tv_valid = 1; |
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#ifdef ARCH_CPU_CLOCK_CYCLES_PER_USEC |
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usecs = t / ARCH_CPU_CLOCK_CYCLES_PER_USEC; |
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#else |
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if (t < max_cycles_for_mult) |
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usecs = (t * inv_cycles_per_usec) / 16777216UL; |
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else |
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usecs = t / cycles_per_usec; |
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#endif |
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tp->tv_sec = usecs / 1000000; |
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tp->tv_usec = usecs % 1000000; |
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break; |
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} |
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#endif |
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default: |
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log_err("fio: invalid clock source %d\n", fio_clock_source); |
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break; |
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} |
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} |
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#ifdef FIO_DEBUG_TIME |
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void fio_gettime(struct timeval *tp, void *caller) |
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#else |
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void fio_gettime(struct timeval *tp, void fio_unused *caller) |
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#endif |
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{ |
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#ifdef FIO_DEBUG_TIME |
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if (!caller) |
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caller = __builtin_return_address(0); |
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gtod_log_caller(caller); |
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#endif |
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if (fio_unlikely(fio_gettime_offload(tp))) |
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return; |
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__fio_gettime(tp); |
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} |
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#if defined(ARCH_HAVE_CPU_CLOCK) && !defined(ARCH_CPU_CLOCK_CYCLES_PER_USEC) |
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static unsigned long get_cycles_per_usec(void) |
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{ |
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struct timeval s, e; |
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uint64_t c_s, c_e; |
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enum fio_cs old_cs = fio_clock_source; |
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uint64_t elapsed; |
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#ifdef CONFIG_CLOCK_GETTIME |
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fio_clock_source = CS_CGETTIME; |
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#else |
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fio_clock_source = CS_GTOD; |
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#endif |
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__fio_gettime(&s); |
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c_s = get_cpu_clock(); |
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do { |
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__fio_gettime(&e); |
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elapsed = utime_since(&s, &e); |
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if (elapsed >= 1280) { |
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c_e = get_cpu_clock(); |
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break; |
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} |
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} while (1); |
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fio_clock_source = old_cs; |
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return (c_e - c_s) / elapsed; |
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} |
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#define NR_TIME_ITERS 50 |
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static int calibrate_cpu_clock(void) |
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{ |
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double delta, mean, S; |
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uint64_t minc, maxc, avg, cycles[NR_TIME_ITERS]; |
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int i, samples; |
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cycles[0] = get_cycles_per_usec(); |
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S = delta = mean = 0.0; |
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for (i = 0; i < NR_TIME_ITERS; i++) { |
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cycles[i] = get_cycles_per_usec(); |
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delta = cycles[i] - mean; |
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if (delta) { |
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mean += delta / (i + 1.0); |
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S += delta * (cycles[i] - mean); |
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} |
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} |
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/* |
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* The most common platform clock breakage is returning zero |
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* indefinitely. Check for that and return failure. |
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*/ |
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if (!cycles[0] && !cycles[NR_TIME_ITERS - 1]) |
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return 1; |
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S = sqrt(S / (NR_TIME_ITERS - 1.0)); |
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minc = -1ULL; |
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maxc = samples = avg = 0; |
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for (i = 0; i < NR_TIME_ITERS; i++) { |
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double this = cycles[i]; |
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minc = min(cycles[i], minc); |
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maxc = max(cycles[i], maxc); |
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if ((fmax(this, mean) - fmin(this, mean)) > S) |
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continue; |
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samples++; |
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avg += this; |
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} |
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S /= (double) NR_TIME_ITERS; |
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for (i = 0; i < NR_TIME_ITERS; i++) |
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dprint(FD_TIME, "cycles[%d]=%llu\n", i, (unsigned long long) cycles[i]); |
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avg /= samples; |
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dprint(FD_TIME, "avg: %llu\n", (unsigned long long) avg); |
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dprint(FD_TIME, "min=%llu, max=%llu, mean=%f, S=%f\n", |
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(unsigned long long) minc, |
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(unsigned long long) maxc, mean, S); |
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cycles_per_usec = avg; |
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inv_cycles_per_usec = 16777216UL / cycles_per_usec; |
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max_cycles_for_mult = ~0ULL / inv_cycles_per_usec; |
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dprint(FD_TIME, "inv_cycles_per_usec=%lu\n", inv_cycles_per_usec); |
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#ifdef ARCH_CPU_CLOCK_WRAPS |
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cycles_start = get_cpu_clock(); |
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dprint(FD_TIME, "cycles_start=%llu\n", cycles_start); |
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#endif |
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return 0; |
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} |
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#else |
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static int calibrate_cpu_clock(void) |
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{ |
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#ifdef ARCH_CPU_CLOCK_CYCLES_PER_USEC |
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return 0; |
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#else |
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return 1; |
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#endif |
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} |
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#endif // ARCH_HAVE_CPU_CLOCK |
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#ifndef CONFIG_TLS_THREAD |
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void fio_local_clock_init(int is_thread) |
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{ |
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struct tv_valid *t; |
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t = calloc(1, sizeof(*t)); |
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if (pthread_setspecific(tv_tls_key, t)) { |
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log_err("fio: can't set TLS key\n"); |
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assert(0); |
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} |
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} |
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static void kill_tv_tls_key(void *data) |
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{ |
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free(data); |
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} |
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#else |
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void fio_local_clock_init(int is_thread) |
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{ |
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} |
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#endif |
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void fio_clock_init(void) |
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{ |
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if (fio_clock_source == fio_clock_source_inited) |
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return; |
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#ifndef CONFIG_TLS_THREAD |
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if (pthread_key_create(&tv_tls_key, kill_tv_tls_key)) |
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log_err("fio: can't create TLS key\n"); |
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#endif |
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fio_clock_source_inited = fio_clock_source; |
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if (calibrate_cpu_clock()) |
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tsc_reliable = 0; |
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/* |
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* If the arch sets tsc_reliable != 0, then it must be good enough |
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* to use as THE clock source. For x86 CPUs, this means the TSC |
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* runs at a constant rate and is synced across CPU cores. |
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*/ |
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if (tsc_reliable) { |
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if (!fio_clock_source_set && !fio_monotonic_clocktest(0)) |
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fio_clock_source = CS_CPUCLOCK; |
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} else if (fio_clock_source == CS_CPUCLOCK) |
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log_info("fio: clocksource=cpu may not be reliable\n"); |
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} |
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uint64_t utime_since(const struct timeval *s, const struct timeval *e) |
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{ |
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int64_t sec, usec; |
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sec = e->tv_sec - s->tv_sec; |
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usec = e->tv_usec - s->tv_usec; |
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if (sec > 0 && usec < 0) { |
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sec--; |
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usec += 1000000; |
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} |
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/* |
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* time warp bug on some kernels? |
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*/ |
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if (sec < 0 || (sec == 0 && usec < 0)) |
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return 0; |
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return usec + (sec * 1000000); |
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} |
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uint64_t utime_since_now(const struct timeval *s) |
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{ |
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struct timeval t; |
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#ifdef FIO_DEBUG_TIME |
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void *p = __builtin_return_address(0); |
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fio_gettime(&t, p); |
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#else |
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fio_gettime(&t, NULL); |
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#endif |
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return utime_since(s, &t); |
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} |
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uint64_t mtime_since(const struct timeval *s, const struct timeval *e) |
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{ |
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long sec, usec; |
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sec = e->tv_sec - s->tv_sec; |
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usec = e->tv_usec - s->tv_usec; |
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if (sec > 0 && usec < 0) { |
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sec--; |
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usec += 1000000; |
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} |
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if (sec < 0 || (sec == 0 && usec < 0)) |
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return 0; |
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sec *= 1000; |
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usec /= 1000; |
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return sec + usec; |
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} |
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uint64_t mtime_since_now(const struct timeval *s) |
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{ |
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struct timeval t; |
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#ifdef FIO_DEBUG_TIME |
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void *p = __builtin_return_address(0); |
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fio_gettime(&t, p); |
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#else |
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fio_gettime(&t, NULL); |
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#endif |
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return mtime_since(s, &t); |
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} |
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uint64_t time_since_now(const struct timeval *s) |
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{ |
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return mtime_since_now(s) / 1000; |
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} |
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#if defined(FIO_HAVE_CPU_AFFINITY) && defined(ARCH_HAVE_CPU_CLOCK) && \ |
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defined(CONFIG_SFAA) |
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#define CLOCK_ENTRIES_DEBUG 100000 |
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#define CLOCK_ENTRIES_TEST 10000 |
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struct clock_entry { |
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uint32_t seq; |
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uint32_t cpu; |
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uint64_t tsc; |
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}; |
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struct clock_thread { |
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pthread_t thread; |
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int cpu; |
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int debug; |
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pthread_mutex_t lock; |
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pthread_mutex_t started; |
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unsigned long nr_entries; |
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uint32_t *seq; |
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struct clock_entry *entries; |
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}; |
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static inline uint32_t atomic32_inc_return(uint32_t *seq) |
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{ |
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return 1 + __sync_fetch_and_add(seq, 1); |
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} |
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static void *clock_thread_fn(void *data) |
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{ |
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struct clock_thread *t = data; |
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struct clock_entry *c; |
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os_cpu_mask_t cpu_mask; |
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uint32_t last_seq; |
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unsigned long long first; |
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int i; |
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if (fio_cpuset_init(&cpu_mask)) { |
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int __err = errno; |
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log_err("clock cpuset init failed: %s\n", strerror(__err)); |
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goto err_out; |
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} |
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fio_cpu_set(&cpu_mask, t->cpu); |
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if (fio_setaffinity(gettid(), cpu_mask) == -1) { |
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int __err = errno; |
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log_err("clock setaffinity failed: %s\n", strerror(__err)); |
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goto err; |
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} |
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pthread_mutex_lock(&t->lock); |
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pthread_mutex_unlock(&t->started); |
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first = get_cpu_clock(); |
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last_seq = 0; |
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c = &t->entries[0]; |
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for (i = 0; i < t->nr_entries; i++, c++) { |
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uint32_t seq; |
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uint64_t tsc; |
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c->cpu = t->cpu; |
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do { |
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seq = atomic32_inc_return(t->seq); |
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if (seq < last_seq) |
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break; |
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tsc = get_cpu_clock(); |
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} while (seq != *t->seq); |
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c->seq = seq; |
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c->tsc = tsc; |
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} |
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if (t->debug) { |
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unsigned long long clocks; |
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clocks = t->entries[i - 1].tsc - t->entries[0].tsc; |
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log_info("cs: cpu%3d: %llu clocks seen, first %llu\n", t->cpu, |
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clocks, first); |
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} |
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/* |
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* The most common platform clock breakage is returning zero |
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* indefinitely. Check for that and return failure. |
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*/ |
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if (!t->entries[i - 1].tsc && !t->entries[0].tsc) |
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goto err; |
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fio_cpuset_exit(&cpu_mask); |
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return NULL; |
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err: |
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fio_cpuset_exit(&cpu_mask); |
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err_out: |
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return (void *) 1; |
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} |
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static int clock_cmp(const void *p1, const void *p2) |
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{ |
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const struct clock_entry *c1 = p1; |
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const struct clock_entry *c2 = p2; |
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if (c1->seq == c2->seq) |
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log_err("cs: bug in atomic sequence!\n"); |
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return c1->seq - c2->seq; |
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} |
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int fio_monotonic_clocktest(int debug) |
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{ |
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struct clock_thread *cthreads; |
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unsigned int nr_cpus = cpus_online(); |
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struct clock_entry *entries; |
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unsigned long nr_entries, tentries, failed = 0; |
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struct clock_entry *prev, *this; |
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uint32_t seq = 0; |
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unsigned int i; |
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if (debug) { |
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log_info("cs: reliable_tsc: %s\n", tsc_reliable ? "yes" : "no"); |
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#ifdef FIO_INC_DEBUG |
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fio_debug |= 1U << FD_TIME; |
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#endif |
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nr_entries = CLOCK_ENTRIES_DEBUG; |
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} else |
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nr_entries = CLOCK_ENTRIES_TEST; |
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calibrate_cpu_clock(); |
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if (debug) { |
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#ifdef FIO_INC_DEBUG |
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fio_debug &= ~(1U << FD_TIME); |
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#endif |
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} |
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cthreads = malloc(nr_cpus * sizeof(struct clock_thread)); |
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tentries = nr_entries * nr_cpus; |
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entries = malloc(tentries * sizeof(struct clock_entry)); |
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|
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if (debug) |
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log_info("cs: Testing %u CPUs\n", nr_cpus); |
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for (i = 0; i < nr_cpus; i++) { |
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struct clock_thread *t = &cthreads[i]; |
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t->cpu = i; |
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t->debug = debug; |
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t->seq = &seq; |
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t->nr_entries = nr_entries; |
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t->entries = &entries[i * nr_entries]; |
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pthread_mutex_init(&t->lock, NULL); |
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pthread_mutex_init(&t->started, NULL); |
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pthread_mutex_lock(&t->lock); |
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if (pthread_create(&t->thread, NULL, clock_thread_fn, t)) { |
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failed++; |
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nr_cpus = i; |
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break; |
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} |
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} |
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for (i = 0; i < nr_cpus; i++) { |
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struct clock_thread *t = &cthreads[i]; |
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|
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pthread_mutex_lock(&t->started); |
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} |
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for (i = 0; i < nr_cpus; i++) { |
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struct clock_thread *t = &cthreads[i]; |
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|
|
pthread_mutex_unlock(&t->lock); |
|
} |
|
|
|
for (i = 0; i < nr_cpus; i++) { |
|
struct clock_thread *t = &cthreads[i]; |
|
void *ret; |
|
|
|
pthread_join(t->thread, &ret); |
|
if (ret) |
|
failed++; |
|
} |
|
free(cthreads); |
|
|
|
if (failed) { |
|
if (debug) |
|
log_err("Clocksource test: %lu threads failed\n", failed); |
|
goto err; |
|
} |
|
|
|
qsort(entries, tentries, sizeof(struct clock_entry), clock_cmp); |
|
|
|
/* silence silly gcc */ |
|
prev = NULL; |
|
for (failed = i = 0; i < tentries; i++) { |
|
this = &entries[i]; |
|
|
|
if (!i) { |
|
prev = this; |
|
continue; |
|
} |
|
|
|
if (prev->tsc > this->tsc) { |
|
uint64_t diff = prev->tsc - this->tsc; |
|
|
|
if (!debug) { |
|
failed++; |
|
break; |
|
} |
|
|
|
log_info("cs: CPU clock mismatch (diff=%llu):\n", |
|
(unsigned long long) diff); |
|
log_info("\t CPU%3u: TSC=%llu, SEQ=%u\n", prev->cpu, (unsigned long long) prev->tsc, prev->seq); |
|
log_info("\t CPU%3u: TSC=%llu, SEQ=%u\n", this->cpu, (unsigned long long) this->tsc, this->seq); |
|
failed++; |
|
} |
|
|
|
prev = this; |
|
} |
|
|
|
if (debug) { |
|
if (failed) |
|
log_info("cs: Failed: %lu\n", failed); |
|
else |
|
log_info("cs: Pass!\n"); |
|
} |
|
err: |
|
free(entries); |
|
return !!failed; |
|
} |
|
|
|
#else /* defined(FIO_HAVE_CPU_AFFINITY) && defined(ARCH_HAVE_CPU_CLOCK) */ |
|
|
|
int fio_monotonic_clocktest(int debug) |
|
{ |
|
if (debug) |
|
log_info("cs: current platform does not support CPU clocks\n"); |
|
return 1; |
|
} |
|
|
|
#endif
|
|
|