| 1 | #include "rq_bench.hpp" | 
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| 2 |  | 
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| 3 | #include <pthread.h> | 
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| 4 | #include <semaphore.h> | 
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| 5 | #include <sched.h> | 
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| 6 | #include <unistd.h> | 
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| 7 |  | 
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| 8 | #include <iostream> | 
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| 9 |  | 
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| 10 | struct Result { | 
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| 11 | uint64_t count = 0; | 
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| 12 | uint64_t dmigs = 0; | 
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| 13 | uint64_t gmigs = 0; | 
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| 14 | }; | 
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| 15 |  | 
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| 16 | struct Pthread { | 
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| 17 | static int usleep(useconds_t usec) { | 
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| 18 | return ::usleep(usec); | 
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| 19 | } | 
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| 20 | }; | 
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| 21 |  | 
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| 22 | // ================================================== | 
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| 23 | struct __attribute__((aligned(128))) MyData { | 
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| 24 | uint64_t _p1[16];  // padding | 
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| 25 | uint64_t * data; | 
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| 26 | size_t len; | 
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| 27 | int ttid; | 
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| 28 | size_t id; | 
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| 29 | uint64_t _p2[16];  // padding | 
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| 30 |  | 
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| 31 | MyData(size_t id, size_t size) | 
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| 32 | : data( (uintptr_t *)aligned_alloc(128, size * sizeof(uint64_t)) ) | 
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| 33 | , len( size ) | 
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| 34 | , ttid( sched_getcpu() ) | 
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| 35 | , id( id ) | 
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| 36 | { | 
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| 37 | for(size_t i = 0; i < this->len; i++) { | 
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| 38 | this->data[i] = 0; | 
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| 39 | } | 
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| 40 | } | 
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| 41 |  | 
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| 42 | uint64_t moved(int ttid) { | 
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| 43 | if(this->ttid == ttid) { | 
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| 44 | return 0; | 
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| 45 | } | 
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| 46 | this->ttid = ttid; | 
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| 47 | return 1; | 
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| 48 | } | 
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| 49 |  | 
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| 50 | __attribute__((noinline)) void access(size_t idx) { | 
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| 51 | size_t l = this->len; | 
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| 52 | this->data[idx % l] += 1; | 
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| 53 | } | 
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| 54 | }; | 
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| 55 |  | 
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| 56 | // ================================================== | 
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| 57 | struct __attribute__((aligned(128))) MyCtx { | 
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| 58 | struct MyData * volatile data; | 
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| 59 |  | 
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| 60 | struct { | 
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| 61 | struct MySpot ** ptr; | 
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| 62 | size_t len; | 
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| 63 | } spots; | 
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| 64 |  | 
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| 65 | sem_t sem; | 
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| 66 |  | 
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| 67 | Result result; | 
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| 68 |  | 
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| 69 | bool share; | 
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| 70 | size_t cnt; | 
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| 71 | int ttid; | 
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| 72 | size_t id; | 
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| 73 |  | 
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| 74 | MyCtx(MyData * d, MySpot ** spots, size_t len, size_t cnt, bool share, size_t id) | 
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| 75 | : data( d ) | 
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| 76 | , spots{ .ptr = spots, .len = len } | 
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| 77 | , share( share ) | 
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| 78 | , cnt( cnt ) | 
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| 79 | , ttid( sched_getcpu() ) | 
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| 80 | , id( id ) | 
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| 81 | { | 
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| 82 | int ret = sem_init( &sem, false, 0 ); | 
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| 83 | if(ret != 0) std::abort(); | 
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| 84 | } | 
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| 85 |  | 
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| 86 | ~MyCtx() { | 
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| 87 | int ret = sem_destroy( &sem ); | 
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| 88 | if(ret != 0) std::abort(); | 
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| 89 | } | 
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| 90 |  | 
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| 91 | uint64_t moved(int ttid) { | 
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| 92 | if(this->ttid == ttid) { | 
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| 93 | return 0; | 
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| 94 | } | 
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| 95 | this->ttid = ttid; | 
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| 96 | return 1; | 
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| 97 | } | 
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| 98 | }; | 
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| 99 |  | 
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| 100 | // ================================================== | 
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| 101 | // Atomic object where a single thread can wait | 
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| 102 | // May exchanges data | 
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| 103 | struct __attribute__((aligned(128))) MySpot { | 
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| 104 | MyCtx * volatile ptr; | 
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| 105 | size_t id; | 
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| 106 | uint64_t _p1[16];  // padding | 
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| 107 |  | 
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| 108 | MySpot(size_t id) : ptr( nullptr ), id( id ) {} | 
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| 109 |  | 
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| 110 |  | 
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| 111 | static inline MyCtx * one() { | 
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| 112 | return reinterpret_cast<MyCtx *>(1); | 
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| 113 | } | 
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| 114 |  | 
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| 115 | // Main handshake of the code | 
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| 116 | // Single seat, first thread arriving waits | 
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| 117 | // Next threads unblocks current one and blocks in its place | 
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| 118 | // if share == true, exchange data in the process | 
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| 119 | bool put( MyCtx & ctx, MyData * data, bool share) { | 
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| 120 | // Attempt to CAS our context into the seat | 
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| 121 | for(;;) { | 
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| 122 | MyCtx * expected = this->ptr; | 
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| 123 | if (expected == one()) { // Seat is closed, return | 
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| 124 | return true; | 
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| 125 | } | 
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| 126 |  | 
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| 127 | if (__atomic_compare_exchange_n(&this->ptr, &expected, &ctx, false, __ATOMIC_SEQ_CST, __ATOMIC_SEQ_CST)) { | 
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| 128 | if(expected) { | 
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| 129 | if(share) { | 
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| 130 | expected->data = data; | 
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| 131 | } | 
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| 132 | sem_post(&expected->sem); | 
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| 133 | } | 
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| 134 | break; // We got the seat | 
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| 135 | } | 
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| 136 | } | 
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| 137 |  | 
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| 138 | // Block once on the seat | 
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| 139 | sem_wait(&ctx.sem); | 
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| 140 |  | 
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| 141 | // Someone woke us up, get the new data | 
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| 142 | return false; | 
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| 143 | } | 
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| 144 |  | 
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| 145 | // Shutdown the spot | 
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| 146 | // Wake current thread and mark seat as closed | 
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| 147 | void release() { | 
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| 148 | struct MyCtx * val = __atomic_exchange_n(&this->ptr, one(), __ATOMIC_SEQ_CST); | 
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| 149 | if (!val) { | 
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| 150 | return; | 
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| 151 | } | 
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| 152 |  | 
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| 153 | // Someone was there, release them | 
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| 154 | sem_post(&val->sem); | 
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| 155 | } | 
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| 156 | }; | 
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| 157 |  | 
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| 158 | // ================================================== | 
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| 159 | // Random number generator, Go's native one is to slow and global | 
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| 160 | uint64_t __xorshift64( uint64_t & state ) { | 
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| 161 | uint64_t x = state; | 
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| 162 | x ^= x << 13; | 
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| 163 | x ^= x >> 7; | 
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| 164 | x ^= x << 17; | 
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| 165 | return state = x; | 
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| 166 | } | 
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| 167 |  | 
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| 168 | // ================================================== | 
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| 169 | // Do some work by accessing 'cnt' cells in the array | 
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| 170 | __attribute__((noinline)) void work(MyData & data, size_t cnt, uint64_t & state) { | 
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| 171 | for (size_t i = 0; i < cnt; i++) { | 
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| 172 | data.access(__xorshift64(state)); | 
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| 173 | } | 
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| 174 | } | 
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| 175 |  | 
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| 176 | void thread_main( MyCtx & ctx ) { | 
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| 177 | uint64_t state = ctx.id; | 
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| 178 |  | 
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| 179 | // Wait for start | 
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| 180 | sem_wait(&ctx.sem); | 
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| 181 |  | 
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| 182 | // Main loop | 
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| 183 | for(;;) { | 
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| 184 | // Touch our current data, write to invalidate remote cache lines | 
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| 185 | work( *ctx.data, ctx.cnt, state ); | 
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| 186 |  | 
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| 187 | // Wait on a random spot | 
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| 188 | uint64_t idx = __xorshift64(state) % ctx.spots.len; | 
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| 189 | bool closed = ctx.spots.ptr[idx]->put(ctx, ctx.data, ctx.share); | 
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| 190 |  | 
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| 191 | // Check if the experiment is over | 
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| 192 | if (closed) break; | 
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| 193 | if ( clock_mode && stop) break; | 
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| 194 | if (!clock_mode && ctx.result.count >= stop_count) break; | 
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| 195 |  | 
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| 196 | // Check everything is consistent | 
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| 197 | assert( ctx.data ); | 
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| 198 |  | 
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| 199 | // write down progress and check migrations | 
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| 200 | int ttid = sched_getcpu(); | 
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| 201 | ctx.result.count += 1; | 
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| 202 | ctx.result.gmigs += ctx.moved(ttid); | 
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| 203 | ctx.result.dmigs += ctx.data->moved(ttid); | 
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| 204 | } | 
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| 205 |  | 
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| 206 | __atomic_fetch_add(&threads_left, -1, __ATOMIC_SEQ_CST); | 
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| 207 | } | 
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| 208 |  | 
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| 209 | // ================================================== | 
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| 210 | int main(int argc, char * argv[]) { | 
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| 211 | unsigned wsize = 2; | 
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| 212 | unsigned wcnt  = 2; | 
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| 213 | unsigned nspots = 0; | 
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| 214 | bool share = false; | 
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| 215 | option_t opt[] = { | 
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| 216 | BENCH_OPT, | 
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| 217 | { 'n', "nspots", "Number of spots where threads sleep (nthreads - nspots are active at the same time)", nspots}, | 
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| 218 | { 'w', "worksize", "Size of the array for each threads, in words (64bit)", wsize}, | 
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| 219 | { 'c', "workcnt" , "Number of words to touch when working (random pick, cells can be picked more than once)", wcnt }, | 
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| 220 | { 's', "share"   , "Pass the work data to the next thread when blocking", share, parse_truefalse } | 
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| 221 | }; | 
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| 222 | BENCH_OPT_PARSE("libfibre cycle benchmark"); | 
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| 223 |  | 
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| 224 | std::cout.imbue(std::locale("")); | 
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| 225 | setlocale(LC_ALL, ""); | 
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| 226 |  | 
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| 227 | unsigned long long global_count = 0; | 
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| 228 | unsigned long long global_gmigs = 0; | 
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| 229 | unsigned long long global_dmigs = 0; | 
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| 230 |  | 
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| 231 | if( nspots == 0 ) { nspots = nthreads - nprocs; } | 
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| 232 |  | 
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| 233 | uint64_t start, end; | 
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| 234 | { | 
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| 235 | cpu_set_t cpuset; | 
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| 236 | int ret = pthread_getaffinity_np( pthread_self(), sizeof(cpuset), &cpuset ); | 
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| 237 | if(ret != 0) std::abort(); | 
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| 238 |  | 
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| 239 | unsigned cnt = CPU_COUNT_S(sizeof(cpuset), &cpuset); | 
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| 240 | if(cnt > nprocs) { | 
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| 241 | unsigned extras = cnt - nprocs; | 
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| 242 | for(int i = 0; i < CPU_SETSIZE && extras > 0; i++) { | 
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| 243 | if(CPU_ISSET_S(i, sizeof(cpuset), &cpuset)) { | 
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| 244 | CPU_CLR_S(i, sizeof(cpuset), &cpuset); | 
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| 245 | extras--; | 
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| 246 | } | 
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| 247 | } | 
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| 248 |  | 
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| 249 | ret = pthread_setaffinity_np( pthread_self(), sizeof(cpuset), &cpuset ); | 
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| 250 | if(ret != 0) std::abort(); | 
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| 251 | } | 
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| 252 | } | 
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| 253 |  | 
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| 254 | { | 
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| 255 | MyData * data_arrays[nthreads]; | 
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| 256 | for(size_t i = 0; i < nthreads; i++) { | 
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| 257 | data_arrays[i] = new MyData( i, wsize ); | 
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| 258 | } | 
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| 259 |  | 
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| 260 | MySpot * spots[nspots]; | 
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| 261 | for(unsigned i = 0; i < nspots; i++) { | 
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| 262 | spots[i] = new MySpot{ i }; | 
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| 263 | } | 
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| 264 |  | 
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| 265 | threads_left = nthreads - nspots; | 
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| 266 | pthread_t threads[nthreads]; | 
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| 267 | MyCtx * thddata[nthreads]; | 
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| 268 | { | 
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| 269 | for(size_t i = 0; i < nthreads; i++) { | 
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| 270 | thddata[i] = new MyCtx( | 
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| 271 | data_arrays[i], | 
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| 272 | spots, | 
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| 273 | nspots, | 
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| 274 | wcnt, | 
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| 275 | share, | 
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| 276 | i | 
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| 277 | ); | 
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| 278 | int ret = pthread_create( &threads[i], nullptr, reinterpret_cast<void * (*)(void *)>(thread_main), thddata[i] ); | 
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| 279 | if(ret != 0) std::abort(); | 
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| 280 | } | 
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| 281 |  | 
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| 282 | bool is_tty = isatty(STDOUT_FILENO); | 
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| 283 | start = timeHiRes(); | 
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| 284 |  | 
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| 285 | for(size_t i = 0; i < nthreads; i++) { | 
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| 286 | sem_post(&thddata[i]->sem); | 
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| 287 | } | 
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| 288 | wait<Pthread>(start, is_tty); | 
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| 289 |  | 
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| 290 | stop = true; | 
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| 291 | end = timeHiRes(); | 
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| 292 | printf("\nDone\n"); | 
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| 293 |  | 
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| 294 | for(size_t i = 0; i < nthreads; i++) { | 
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| 295 | sem_post(&thddata[i]->sem); | 
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| 296 | int ret = pthread_join( threads[i], nullptr ); | 
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| 297 | if(ret != 0) std::abort(); | 
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| 298 | global_count += thddata[i]->result.count; | 
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| 299 | global_gmigs += thddata[i]->result.gmigs; | 
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| 300 | global_dmigs += thddata[i]->result.dmigs; | 
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| 301 | } | 
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| 302 | } | 
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| 303 |  | 
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| 304 | for(size_t i = 0; i < nthreads; i++) { | 
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| 305 | delete( data_arrays[i] ); | 
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| 306 | } | 
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| 307 |  | 
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| 308 | for(size_t i = 0; i < nspots; i++) { | 
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| 309 | delete( spots[i] ); | 
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| 310 | } | 
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| 311 | } | 
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| 312 |  | 
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| 313 | printf("Duration (ms)          : %'ld\n", to_miliseconds(end - start)); | 
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| 314 | printf("Number of processors   : %'d\n", nprocs); | 
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| 315 | printf("Number of threads      : %'d\n", nthreads); | 
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| 316 | printf("Number of spots        : %'d\n", nspots); | 
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| 317 | printf("Work size (64bit words): %'15u\n", wsize); | 
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| 318 | printf("Total Operations(ops)  : %'15llu\n", global_count); | 
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| 319 | printf("Total G Migrations     : %'15llu\n", global_gmigs); | 
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| 320 | printf("Total D Migrations     : %'15llu\n", global_dmigs); | 
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| 321 | printf("Ops per second         : %'18.2lf\n", ((double)global_count) / to_fseconds(end - start)); | 
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| 322 | printf("ns per ops             : %'18.2lf\n", ((double)(end - start)) / global_count); | 
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| 323 | printf("Ops per threads        : %'15llu\n", global_count / nthreads); | 
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| 324 | printf("Ops per procs          : %'15llu\n", global_count / nprocs); | 
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| 325 | printf("Ops/sec/procs          : %'18.2lf\n", (((double)global_count) / nprocs) / to_fseconds(end - start)); | 
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| 326 | printf("ns per ops/procs       : %'18.2lf\n", ((double)(end - start)) / (global_count / nprocs)); | 
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| 327 | fflush(stdout); | 
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| 328 | } | 
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