1 | #include "rq_bench.hpp" |
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2 | #include <libfibre/fibre.h> |
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3 | |
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4 | unsigned spot_cnt = 2; |
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5 | FredSemaphore * spots; |
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6 | |
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7 | struct Churner { |
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8 | unsigned long long count = 0; |
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9 | unsigned long long blocks = 0; |
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10 | bool skip = false; |
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11 | __lehmer64_state_t seed; |
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12 | bench_sem self; |
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13 | }; |
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14 | |
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15 | void churner_main( Churner * self ) { |
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16 | fibre_park(); |
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17 | for(;;) { |
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18 | unsigned r = __lehmer64( self->seed ); |
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19 | FredSemaphore & sem = spots[r % spot_cnt]; |
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20 | if(!self->skip) sem.V(); |
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21 | self->blocks += sem.P() == SemaphoreWasOpen ? 1 : 0; |
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22 | self->skip = false; |
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23 | |
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24 | self->count ++; |
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25 | if( clock_mode && stop) break; |
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26 | if(!clock_mode && self->count >= stop_count) break; |
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27 | } |
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28 | |
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29 | __atomic_fetch_add(&threads_left, -1, __ATOMIC_SEQ_CST); |
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30 | } |
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31 | |
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32 | int main(int argc, char * argv[]) { |
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33 | option_t opt[] = { |
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34 | BENCH_OPT, |
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35 | { 's', "spots", "Number of spots in the system", spot_cnt } |
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36 | }; |
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37 | BENCH_OPT_PARSE("libfibre churn benchmark"); |
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38 | |
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39 | { |
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40 | unsigned long long global_counter = 0; |
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41 | unsigned long long global_blocks = 0; |
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42 | uint64_t start, end; |
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43 | FibreInit(1, nprocs ); |
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44 | { |
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45 | spots = new FredSemaphore[spot_cnt](); |
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46 | |
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47 | threads_left = nthreads; |
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48 | Churner * thddata = new Churner[nthreads](); |
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49 | for(unsigned i = 0; i < nthreads; i++ ) { |
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50 | Churner & t = thddata[i]; |
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51 | t.skip = i < spot_cnt; |
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52 | t.seed = rand(); |
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53 | } |
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54 | Fibre * threads[nthreads]; |
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55 | for(unsigned i = 0; i < nthreads; i++) { |
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56 | threads[i] = new Fibre(); |
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57 | threads[i]->run(churner_main, &thddata[i]); |
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58 | } |
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59 | printf("Starting\n"); |
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60 | |
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61 | bool is_tty = isatty(STDOUT_FILENO); |
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62 | start = timeHiRes(); |
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63 | |
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64 | for(unsigned i = 0; i < nthreads; i++ ) { |
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65 | fibre_unpark( threads[i] ); |
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66 | } |
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67 | wait<Fibre>(start, is_tty); |
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68 | |
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69 | stop = true; |
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70 | end = timeHiRes(); |
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71 | printf("\nDone\n"); |
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72 | |
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73 | for(unsigned i = 0; i < spot_cnt; i++) { |
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74 | for(int j = 0; j < 10000; j++) spots[i].V(); |
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75 | } |
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76 | |
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77 | for(unsigned i = 0; i < nthreads; i++ ) { |
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78 | fibre_join( threads[i], nullptr ); |
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79 | global_counter += thddata[i].count; |
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80 | global_blocks += thddata[i].blocks; |
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81 | } |
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82 | |
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83 | delete[](spots); |
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84 | delete[](thddata); |
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85 | } |
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86 | |
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87 | printf("\nDone2\n"); |
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88 | |
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89 | printf("Duration (ms) : %'ld\n", to_miliseconds(end - start)); |
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90 | printf("Number of processors : %'d\n", nprocs); |
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91 | printf("Number of threads : %'d\n", nthreads); |
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92 | printf("Number of spots : %'d\n", spot_cnt); |
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93 | printf("Total Operations(ops): %'15llu\n", global_counter); |
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94 | printf("Total blocks : %'15llu\n", global_blocks); |
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95 | printf("Ops per second : %'18.2lf\n", ((double)global_counter) / to_fseconds(end - start)); |
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96 | printf("ns per ops : %'18.2lf\n", ((double)(end - start)) / global_counter); |
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97 | printf("Ops per threads : %'15llu\n", global_counter / nthreads); |
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98 | printf("Ops per procs : %'15llu\n", global_counter / nprocs); |
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99 | printf("Ops/sec/procs : %'18.2lf\n", (((double)global_counter) / nprocs) / to_fseconds(end - start)); |
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100 | printf("ns per ops/procs : %'18.2lf\n", ((double)(end - start)) / (global_counter / nprocs)); |
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101 | fflush(stdout); |
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102 | } |
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103 | |
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104 | return 0; |
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105 | |
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106 | } |
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