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277 lines
7.0 KiB
277 lines
7.0 KiB
// Copyright 2019 Google LLC
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//
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// This source code is licensed under the BSD-style license found in the
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// LICENSE file in the root directory of this source tree.
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#include <cstdio>
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#include <cstdlib>
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#include <cstring>
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#include <mutex>
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#ifdef __linux__
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#include <sched.h>
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#endif
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#if defined(__ANDROID__) || defined(_WIN32) || defined(__CYGWIN__)
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#include <malloc.h>
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#endif
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#if defined(__SSE__) || defined(__x86_64__)
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#include <xmmintrin.h>
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#endif
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#include <cpuinfo.h>
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#include "bench/utils.h"
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static void* wipe_buffer = nullptr;
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static size_t wipe_buffer_size = 0;
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static std::once_flag wipe_buffer_guard;
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static void InitWipeBuffer() {
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// Default: the largest know cache size (128 MB Intel Crystalwell L4 cache).
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wipe_buffer_size = 128 * 1024 * 1024;
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if (cpuinfo_initialize()) {
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wipe_buffer_size = benchmark::utils::GetMaxCacheSize();
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}
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#if defined(_WIN32)
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wipe_buffer = _aligned_malloc(wipe_buffer_size, 128);
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#elif defined(__ANDROID__) || defined(__CYGWIN__)
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// memalign is obsolete, but it is the only option on Android until API level 17.
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wipe_buffer = memalign(128, wipe_buffer_size);
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#else
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(void) posix_memalign((void**) &wipe_buffer, 128, wipe_buffer_size);
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#endif
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if (wipe_buffer != nullptr) {
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memset(wipe_buffer, 0xA5, wipe_buffer_size);
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}
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}
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namespace benchmark {
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namespace utils {
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uint32_t PrefetchToL1(const void* ptr, size_t size) {
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uint32_t step = 16;
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if (cpuinfo_initialize()) {
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step = cpuinfo_get_l1d_cache(0)->line_size;
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}
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const uint8_t* u8_ptr = static_cast<const uint8_t*>(ptr);
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// Compute and return sum of data to prevent compiler from removing data reads.
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uint32_t sum = 0;
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while (size >= step) {
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sum += uint32_t(*u8_ptr);
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u8_ptr += step;
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size -= step;
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}
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return sum;
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}
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uint32_t WipeCache() {
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std::call_once(wipe_buffer_guard, InitWipeBuffer);
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return PrefetchToL1(wipe_buffer, wipe_buffer_size);
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}
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void DisableDenormals() {
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#if defined(__SSE__) || defined(__x86_64__)
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_mm_setcsr(_mm_getcsr() | 0x8040);
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#elif defined(__arm__) && defined(__ARM_FP) && (__ARM_FP != 0)
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uint32_t fpscr;
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#if defined(__thumb__) && !defined(__thumb2__)
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__asm__ __volatile__(
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"VMRS %[fpscr], fpscr\n"
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"ORRS %[fpscr], %[bitmask]\n"
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"VMSR fpscr, %[fpscr]\n"
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: [fpscr] "=l" (fpscr)
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: [bitmask] "l" (0x1000000)
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: "cc");
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#else
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__asm__ __volatile__(
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"VMRS %[fpscr], fpscr\n"
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"ORR %[fpscr], #0x1000000\n"
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"VMSR fpscr, %[fpscr]\n"
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: [fpscr] "=r" (fpscr));
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#endif
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#elif defined(__aarch64__)
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uint64_t fpcr;
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__asm__ __volatile__(
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"MRS %[fpcr], fpcr\n"
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"ORR %w[fpcr], %w[fpcr], 0x1000000\n"
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"ORR %w[fpcr], %w[fpcr], 0x80000\n"
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"MSR fpcr, %[fpcr]\n"
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: [fpcr] "=r" (fpcr));
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#endif
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}
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// Return clockrate in Hz
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uint64_t GetCurrentCpuFrequency() {
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#ifdef __linux__
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int freq = 0;
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char cpuinfo_name[512];
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int cpu = sched_getcpu();
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snprintf(cpuinfo_name, sizeof(cpuinfo_name),
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"/sys/devices/system/cpu/cpu%d/cpufreq/scaling_cur_freq", cpu);
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FILE* f = fopen(cpuinfo_name, "r");
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if (f) {
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if (fscanf(f, "%d", &freq)) {
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fclose(f);
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return uint64_t(freq) * 1000;
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}
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fclose(f);
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}
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#endif // __linux__
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return 0;
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}
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size_t GetMaxCacheSize() {
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if (!cpuinfo_initialize()) {
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#if CPUINFO_ARCH_ARM || CPUINFO_ARCH_ARM64
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// DynamIQ max: 4 MB
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return 4 * 1024 * 1024;
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#else
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// Intel eDRAM max: 128 MB
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return 128 * 1024 * 1024;
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#endif
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}
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return cpuinfo_get_max_cache_size();
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}
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void MultiThreadingParameters(benchmark::internal::Benchmark* benchmark) {
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benchmark->ArgName("T");
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// Disabled thread pool (execution on the caller thread only).
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benchmark->Arg(1);
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if (cpuinfo_initialize()) {
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// All cores except the little ones.
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uint32_t max_cores = cpuinfo_get_cores_count();
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if (cpuinfo_get_clusters_count() > 1) {
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max_cores -= cpuinfo_get_cluster(cpuinfo_get_clusters_count() - 1)->core_count;
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}
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for (uint32_t t = 2; t <= max_cores; t++) {
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benchmark->Arg(t);
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}
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// All cores (if more than one cluster).
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if (cpuinfo_get_cores_count() > max_cores) {
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benchmark->Arg(cpuinfo_get_cores_count());
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}
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// All cores + hyperthreads (only if hyperthreading supported).
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if (cpuinfo_get_processors_count() > cpuinfo_get_cores_count()) {
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benchmark->Arg(cpuinfo_get_processors_count());
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}
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}
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}
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bool CheckVFP(benchmark::State& state) {
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if (!cpuinfo_initialize() || !(cpuinfo_has_arm_vfpv2() || cpuinfo_has_arm_vfpv3())) {
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state.SkipWithError("no VFP extension");
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return false;
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}
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return true;
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}
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bool CheckNEONFP16ARITH(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_arm_neon_fp16_arith()) {
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state.SkipWithError("no NEON-FP16-ARITH extension");
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return false;
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}
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return true;
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}
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bool CheckNEON(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_arm_neon()) {
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state.SkipWithError("no NEON extension");
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return false;
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}
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return true;
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}
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bool CheckNEONFMA(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_arm_neon_fma()) {
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state.SkipWithError("no NEON-FMA extension");
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return false;
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}
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return true;
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}
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bool CheckNEONDOT(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_arm_neon_dot()) {
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state.SkipWithError("no NEON-DOT extension");
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return false;
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}
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return true;
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}
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bool CheckSSSE3(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_ssse3()) {
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state.SkipWithError("no SSSE3 extension");
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return false;
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}
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return true;
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}
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bool CheckSSE41(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_sse4_1()) {
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state.SkipWithError("no SSE4.1 extension");
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return false;
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}
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return true;
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}
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bool CheckAVX(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_avx()) {
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state.SkipWithError("no AVX extension");
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return false;
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}
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return true;
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}
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bool CheckXOP(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_xop()) {
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state.SkipWithError("no XOP extension");
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return false;
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}
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return true;
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}
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bool CheckFMA3(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_fma3()) {
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state.SkipWithError("no FMA3 extension");
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return false;
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}
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return true;
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}
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bool CheckAVX2(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_avx2()) {
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state.SkipWithError("no AVX2 extension");
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return false;
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}
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return true;
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}
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bool CheckAVX512F(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_avx512f()) {
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state.SkipWithError("no AVX512F extension");
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return false;
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}
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return true;
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}
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bool CheckAVX512SKX(benchmark::State& state) {
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if (!cpuinfo_initialize() || !cpuinfo_has_x86_avx512f() ||
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!cpuinfo_has_x86_avx512cd() || !cpuinfo_has_x86_avx512bw() ||
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!cpuinfo_has_x86_avx512dq() || !cpuinfo_has_x86_avx512vl())
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{
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state.SkipWithError("no AVX512 SKX extensions");
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return false;
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}
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return true;
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}
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} // namespace utils
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} // namespace benchmark
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