[2537] | 1 | /* Class CPUPower .. Test performances CPU en Java */
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| 2 | /* Compilation: javac cpupower.java */
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| 3 | /* Execution: java CPUPower Ope Size */
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| 4 | /* R. Ansari - LAL/UPS - Mai 2004 */
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| 5 |
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| 6 | import java.lang.*;
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| 7 |
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| 8 | class CPUPower {
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| 9 |
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| 10 | public static void main(String[] args) throws java.io.IOException {
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| 11 | if (args.length < 1) {
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| 12 | System.out.println("Java CPUPower.main() Usage: java CPUPower Ope=1/2/3/4/5 [Size=20000]");
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| 13 | return;
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| 14 | }
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| 15 | Integer aOp = new Integer(args[0]);
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| 16 | Integer N;
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| 17 | if (args.length > 1) N = new Integer(args[1]);
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| 18 | else N = new Integer("20000");
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| 19 | int sz = N.intValue();
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| 20 | if (sz < 10) sz = 20000;
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| 21 | int ope = aOp.intValue();
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| 22 | System.out.println("Java CPUPower: OPE= " + ope + " SZ= " + sz);
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| 23 | CPUPower cpup = new CPUPower(sz);
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| 24 | cpup.Compute(ope);
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| 25 | }
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| 26 |
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| 27 | double x[];
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| 28 | double y[];
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| 29 | double z[];
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| 30 | int SZ;
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| 31 | int OPE;
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| 32 | long N_OP;
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| 33 | long tml,tm,dtm;
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| 34 |
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| 35 | CPUPower(int sz) {
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| 36 | tml = System.currentTimeMillis();
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| 37 | SZ = sz;
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| 38 | x = new double[SZ];
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| 39 | y = new double[SZ];
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| 40 | z = new double[SZ];
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| 41 | int k;
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| 42 | for(k=0; k<SZ; k++) {
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| 43 | double xx = (k%340);
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| 44 | x[k] = Math.PI*Math.exp(-xx/160.);
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| 45 | y[k] = Math.sin(x[k]);
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| 46 | z[k] = 0.;
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| 47 | }
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| 48 | N_OP = 0;
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| 49 | tm = System.currentTimeMillis();
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| 50 | dtm = tm-tml;
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| 51 | tml = tm;
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| 52 | System.out.println("CPUPower.CPUPower Time= " + dtm + " ms ...");
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| 53 |
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| 54 | }
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| 55 |
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| 56 | public void Compute(int ope) {
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| 57 | OPE = ope;
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| 58 | System.out.println("CPUPower.Compute() OPE= " + OPE );
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| 59 | tml = System.currentTimeMillis();
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| 60 | if (OPE == 5) fop5();
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| 61 | else if (OPE == 4) fop4();
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| 62 | else if (OPE == 3) fop3();
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| 63 | else if (OPE == 2) fop2();
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| 64 | else fop1();
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| 65 | tm = System.currentTimeMillis();
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| 66 | dtm = tm-tml;
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| 67 | tml = tm;
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| 68 | double mflops = N_OP;
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| 69 | mflops = mflops/dtm*1.e-3;
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| 70 | System.out.println("CPUPower.Compute() N_OP= " + N_OP + " Time= " + dtm + " ms ");
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| 71 | System.out.println("CPUPower.Compute() Time= " + dtm + " ms -> MFLOPS= " + mflops);
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| 72 | }
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| 73 |
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| 74 | public void fop1() {
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| 75 | System.out.println("CPUPower.fop1(): Double Loop: z[k] = Somme_i(x[k]*y[i]) --");
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| 76 | int i,j,k;
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| 77 | double s = 0.;
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| 78 | for(k=0; k<SZ; k++) {
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| 79 | for(i=0; i<SZ; i++) s += x[k]*y[i];
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| 80 | z[k] = s;
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| 81 | N_OP += 2*SZ;
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| 82 | }
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| 83 | return;
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| 84 | }
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| 85 |
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| 86 | public void fop2() {
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| 87 | System.out.println("CPUPower.fop2() Double Loop: z[k] = Somme_i(x[k]*y[i]+x[i]*y[k] --");
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| 88 | double s = 0.;
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| 89 | int i,j,k;
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| 90 | for(k=0; k<SZ; k++) {
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| 91 | for(i=0; i<SZ; i++) s += x[k]*y[i]+x[i]*y[k];
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| 92 | z[k] = s;
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| 93 | N_OP += 4*SZ;
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| 94 | }
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| 95 |
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| 96 | return;
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| 97 | }
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| 98 |
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| 99 | public void fop3() {
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| 100 | System.out.println("CPUPower.fop3() Double Loop: z[k] = Somme_i(x[k]*y[i]+x[i]*y[k]-0.85*(y[k]+x[k])) --");
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| 101 | double s = 0.;
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| 102 | int i,j,k;
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| 103 | for(k=0; k<SZ; k++) {
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| 104 | for(i=0; i<SZ; i++) s += x[k]*y[i]+x[i]*y[k]-0.85*(y[k]+x[k]);
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| 105 | z[k] = s;
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| 106 | N_OP += 7*SZ;
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| 107 | }
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| 108 | return;
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| 109 | }
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| 110 | public void fop4() {
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| 111 | System.out.println("CPUPower.fop4() Double Loop: z[k] = Somme_i(x[k]*sin(y[i])+y[k]*cos(x[i])) --");
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| 112 | double s = 0.;
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| 113 | int i,j,k;
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| 114 | for(k=0; k<SZ; k++) {
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| 115 | for(i=0; i<SZ; i++) s += x[k]*Math.sin(y[i])+y[k]*Math.cos(x[i]);
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| 116 | z[k] = s;
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| 117 | N_OP += 70*SZ; // le facteur 70 est approximatif
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| 118 | }
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| 119 | }
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| 120 | public void fop5() {
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| 121 | System.out.println("CPUPower.fop5() Double Loop: z[k] = Somme_i(x[k]*sin(y[i])+log(abs(x[i])+0.1)+y[k]) --");
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| 122 | double s = 0.;
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| 123 | int i,j,k;
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| 124 | for(k=0; k<SZ; k++) {
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| 125 | for(i=0; i<SZ; i++) s += x[k]*Math.sin(y[i])+Math.log(Math.abs(x[i])+0.1)+y[k];
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| 126 | z[k] = s;
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| 127 | N_OP += 100*SZ; // le facteur 100 est approximatif
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| 128 | }
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| 129 | }
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| 130 |
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| 131 | }
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| 132 |
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| 133 |
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| 134 |
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| 135 |
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| 136 |
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| 137 |
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