[3721] | 1 | #include <stdlib.h>
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| 2 | #include <stdio.h>
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[3730] | 3 | #include <string.h>
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[3721] | 4 | #include <time.h>
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| 5 | #include <unistd.h>
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| 6 |
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| 7 | #include <iostream>
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| 8 | #include <vector>
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| 9 |
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| 10 | #include "sopnamsp.h"
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| 11 | #include "tmatrix.h"
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| 12 | #include "tvector.h"
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| 13 | #include "matharr.h"
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| 14 | #include "tarrinit.h"
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| 15 | #include "randr48.h"
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| 16 |
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| 17 | #include "parlex.h"
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| 18 | #include "resusage.h"
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| 19 | #include "timing.h"
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| 20 | #include "ctimer.h"
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| 21 |
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| 22 |
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| 23 | /* -------------------------------------------------------------
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| 24 | Programme de test des classes d'execution parallele de SOPHYA
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| 25 | SOPHYA::ParallelExecutor ...
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| 26 | Exemples d'execution:
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| 27 | Usage: tparlex SEL [Size=500] [NThreads=2] [NbExecuteCall=1]
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| 28 | csh> time tparlex A 2000 2
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| 29 | csh> time tparlex B 500 2
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| 30 | csh> time tparlex A 2000 2 4
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| 31 | csh> time tparlex B 500 2 3
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| 32 | */
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| 33 |
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| 34 | // Declaration des fonctions de test
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| 35 | int parex_testA();
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| 36 | int parex_testB();
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| 37 |
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| 38 |
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| 39 | static sa_size_t SIZE = 500;
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| 40 | static unsigned int NTHR = 2;
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| 41 | static unsigned int NBPEXC = 1;
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| 42 |
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| 43 | //--------------------------------------------------------------
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| 44 | //---------------------- MAIN PROGRAM ------------------------
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| 45 | int main(int narg, char *arg[])
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| 46 | {
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| 47 |
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| 48 | if ((narg<2)||((narg > 1)&&(strcmp(arg[1],"-h")==0))) {
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| 49 | cout << " tparlex Test of SOPHYA parallel execution classes \n"
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| 50 | << " Usage: tparlex SEL [Size=500] [NThreads=2] [NbExecuteCall=1] \n"
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| 51 | << " - SEL : A or B \n "
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| 52 | << " - Size : Matrix size (see below) \n "
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| 53 | << " - NThreads : number of threads \n "
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| 54 | << " - NbExecuteCall : number of call to parallel execution function \n "
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| 55 | << " A -> Sin(mx)+Sqrt(mx)+Cos(mx) , mx(NThr,1000*Size) \n"
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| 56 | << " B -> mxa(NThr*Size, Size) * mxb(Size,Size) " << endl;
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| 57 | return(1);
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| 58 | }
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| 59 | InitTim();
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| 60 | ResourceUsage res(ResourceUsage::RU_All);
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| 61 |
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| 62 | char sel = *arg[1];
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| 63 | if (narg > 2) SIZE = atol(arg[2]);
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| 64 | if (narg > 3) NTHR = atoi(arg[3]);
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| 65 | if (narg > 4) NBPEXC = atoi(arg[4]);
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| 66 | if (SIZE<100) SIZE=100;
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| 67 | if (NTHR<1) NTHR=1;
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| 68 | if (NBPEXC<1) NBPEXC=1;
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| 69 |
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| 70 | cout << " tparlex/starting, SEL=" << sel << " Size=" << SIZE << " NTHR=NRows=" << NTHR
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| 71 | << " NbParExCall=" << NBPEXC << endl;
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| 72 | BaseArray::SetDefaultMemoryMapping(BaseArray::CMemoryMapping);
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| 73 |
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| 74 | int rc = 0;
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| 75 | try {
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| 76 | ResourceUsage res(ResourceUsage::RU_All);
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| 77 | if (sel=='A') rc = parex_testA();
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| 78 | else rc = parex_testB();
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| 79 | cout << res;
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| 80 | }
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| 81 | catch (std::exception exc) {
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| 82 | cerr << "tparlex: catched std::exception " << exc.what() << endl;
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| 83 | rc = 77;
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| 84 | }
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| 85 | catch (...) {
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| 86 | cerr << "tparlex: catched unknown (...) exception " << endl;
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| 87 | rc = 78;
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| 88 | }
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| 89 |
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| 90 | PrtTim(">>> tparlex: END <<< ");
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| 91 | cout << " ------------ End execution tparlex -------------- " << endl;
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| 92 | return(rc);
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| 93 | }
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| 94 |
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| 95 |
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| 96 | //--------------------------------------------------------------------
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| 97 | // Classe implementant la fonction d'execution parallele
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| 98 | // ParallelTaskInterface::execute() mxb=sin(mxa)+sqrt(mxa)+cos(mxa)
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| 99 | class TParTaskA : public ParallelTaskInterface {
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| 100 | public:
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| 101 | TParTaskA(Matrix& a, Matrix& b)
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| 102 | : mxa(a), mxb(b), nbex(0)
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| 103 | {
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| 104 | }
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| 105 | virtual int execute(int tid)
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| 106 | {
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| 107 | nbex++;
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[3852] | 108 | cout << " ---- TParTaskA::execute(tid=" << tid << ") NbParallelThr=" << getNbParallelThreads()
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| 109 | << " Start computing - NbExec= " << nbex << endl;
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| 110 |
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[3721] | 111 | Vector vx = mxa.Row(tid);
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| 112 | r_8* x = vx.Data();
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| 113 | r_8* y = mxb.Row(tid).Data();
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| 114 | for(sa_size_t j=0; j<vx.Size(); j++)
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| 115 | y[j] = sin(x[j])+sqrt(x[j])+cos(x[j]);
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| 116 | // mxb.Row(tid) = Sin(x)+Sqrt(x)+Cos(x);
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| 117 | cout << " ---- TParTaskA::execute( " << tid << "," << nbex << ") DONE " << endl;
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| 118 | return 0;
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| 119 | }
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| 120 |
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| 121 | Matrix& mxa;
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| 122 | Matrix& mxb;
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| 123 | int nbex;
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| 124 | };
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| 125 |
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| 126 | /* --Fonction-- */
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| 127 | int parex_testA()
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| 128 | {
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| 129 | sa_size_t NCOLS = SIZE*1000;
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| 130 | Matrix a(NTHR, NCOLS);
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| 131 | Matrix b(NTHR, NCOLS);
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| 132 | Matrix c(NTHR, NCOLS);
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| 133 |
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| 134 | cout << " parex_testA/Info: " << a.InfoString() << endl;
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| 135 | a = RegularSequence(0.25,0.003);
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| 136 | PrtTim("tparlexA[1] Done init ");
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| 137 | cout << "tparlexA[1] Start b=Sin(a)+Sqrt(a)+Cos[a]" << endl;
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| 138 | r_8* x = a.Data();
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| 139 | r_8* y = b.Data();
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| 140 | for(sa_size_t j=0; j<a.Size(); j++)
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| 141 | y[j] = sin(x[j])+sqrt(x[j])+cos(x[j]);
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| 142 | // b = Sin(a)+Sqrt(a)+Cos(a);
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| 143 | PrtTim(">>tparlexA[1.b] Done ");
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| 144 | // char ans[64];
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| 145 | // cout << " A/ CR to continue ... " << endl; gets(ans);
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| 146 |
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| 147 | TParTaskA ptask(a,c);
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| 148 | ParallelExecutor pex(ptask, NTHR);
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| 149 | pex.start();
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| 150 | int rce=0;
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| 151 | for(int i=0; i<NBPEXC; i++) {
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| 152 | cout << " tparlexA[II=" << i+1 << " Start ParallelExecution c=Sin(a)+Sqrt(a)+Cos[a]" << endl;
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| 153 | rce = pex.execute();
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| 154 | PrtTim(">>>>tparlexA: End ParallelExecution ");
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| 155 | }
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| 156 | cout << " Rc=pex.execute() = " << rce << endl;
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| 157 | Matrix d = b-c;
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| 158 | double dmin, dmax;
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| 159 | d.MinMax(dmin, dmax);
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| 160 | cout << ">>tparlexA[3] Diff d=b-c, dmin=" << dmin << " dmax=" << dmax << endl;
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| 161 | // cout << " B/ CR to continue ... " << endl; gets(ans);
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| 162 |
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| 163 | // cout << " C/ CR to continue ... " << endl; gets(ans);
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| 164 | return 0;
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| 165 | }
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| 166 |
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| 167 |
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| 168 | //--------------------------------------------------------------------
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| 169 | // Classe implementant la fonction d'execution parallele
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| 170 | // ParallelTaskInterface::execute() mxc= mxa * mxb
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| 171 | class TParTaskB : public ParallelTaskInterface {
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| 172 | public:
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| 173 | TParTaskB(Matrix& a, Matrix& b, Matrix& c, int nth)
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[3730] | 174 | : mxa(a), mxb(b), mxc(c), nthread(nth), nbex(0)
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[3721] | 175 | {
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| 176 | }
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| 177 | virtual int execute(int tid)
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| 178 | {
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| 179 | nbex++;
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[3852] | 180 | cout << " ---- TParTaskB::execute(tid=" << tid << ") NbParallelThr=" << getNbParallelThreads()
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| 181 | << " Start computing - NbExec= " << nbex << endl;
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[3721] | 182 | sa_size_t sz = mxb.NRows();
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| 183 | // On s'arrange pour que chaque thread calcule une partie de la matrice resultat
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| 184 | // Il faut etre un peu malin et eviter que differents threads accedent les memes zones memoire
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| 185 | mxc.SubMatrix(Range(sz*tid, sz*(tid+1)-1), Range::all() ) =
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| 186 | mxa.SubMatrix(Range(sz*tid, sz*(tid+1)-1), Range::all()) * mxb;
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| 187 | /* Une maniere plus compliquee pour MxA(NTH*SZ , SZ) * MxB(SZ, NTH*SZ)
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| 188 | mais cela n'apporte rien ...
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| 189 | for(sa_size_t j=0; j<nthread; j++) {
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| 190 | sa_size_t jj = (j+tid)%nthread;
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| 191 | mxc.SubMatrix(Range(sz*tid, sz*(tid+1)-1), Range(sz*jj, sz*(jj+1)-1)) =
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| 192 | mxa.SubMatrix(Range(sz*tid, sz*(tid+1)-1), Range::all()) *
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| 193 | mxb.SubMatrix(Range::all(), Range(sz*jj, sz*(jj+1)-1));
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| 194 | }
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| 195 | */
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| 196 | cout << " ---- TParTaskB::execute( " << tid << "," << nbex << ") DONE " << endl;
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| 197 | return 0;
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| 198 | }
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| 199 |
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| 200 | Matrix& mxa;
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| 201 | Matrix& mxb;
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| 202 | Matrix& mxc;
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| 203 | int nthread;
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| 204 | int nbex;
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| 205 | };
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| 206 |
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| 207 | /* --Fonction-- */
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| 208 | int parex_testB()
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| 209 | {
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| 210 | // On se met dans les conditions optimales pour la multiplication matricielle
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| 211 | Matrix a(NTHR*SIZE, SIZE, BaseArray::CMemoryMapping);
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| 212 | Matrix b(SIZE, SIZE, BaseArray::FortranMemoryMapping);
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| 213 | Matrix c(NTHR*SIZE, SIZE);
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| 214 |
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| 215 | cout << " parex_testB/Info: a.InfoString(): " << a.InfoString() << endl;
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| 216 | cout << " parex_testB/Info: b.InfoString(): " << b.InfoString() << endl;
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| 217 |
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| 218 | a = RegularSequence(0.25,0.003);
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| 219 | b = RegularSequence(1.2,0.0423);
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| 220 |
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| 221 | PrtTim("tparlexA[1] Done init ");
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| 222 |
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| 223 | cout << "tparlexB[1] Start cc=a*b" << endl;
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| 224 | // Matrix cc(NTHR*SIZE, SIZE);
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| 225 | // cc = a*b;
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| 226 | Matrix cc = a*b;
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| 227 | PrtTim(">>tparlexB[1.b] Done ");
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| 228 |
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| 229 | TParTaskB ptask(a,b,c,NTHR);
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| 230 | ParallelExecutor pex(ptask, NTHR);
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| 231 | pex.start();
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| 232 | int rce=0;
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| 233 | for(int i=0; i<NBPEXC; i++) {
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| 234 | cout << " tparlexB[II=" << i+1 << " Start ParallelExecution c=a*b" << endl;
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| 235 | rce = pex.execute();
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| 236 | PrtTim(">>tparlexB: End ParallelExecution ");
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| 237 | }
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| 238 | cout << " Rc=pex.execute() = " << rce << endl;
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| 239 | Matrix d = cc-c;
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| 240 | double dmin, dmax;
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| 241 | d.MinMax(dmin, dmax);
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| 242 | cout << ">>tparlexB[3] Diff d=b-c, dmin=" << dmin << " dmax=" << dmax << endl;
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| 243 | return 0;
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| 244 | }
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