| 1 | /* matmat.cvl: two matrix-matrix multiplication algorithms.
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| 2 | * The first is the standard one, the second uses a complex
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| 3 | * tiling optimization. This model is used to determine
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| 4 | * whether the two are equivalent. Example:
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| 5 | * civl verify matmat.cvl -inputBOUND=4
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| 6 | * will verify equivalent for all matrix dimensions and tile
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| 7 | * sizes in the range 1..4.
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| 8 | */
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| 9 | $input int BOUND;
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| 10 | $input int L;
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| 11 | $assume 1<=L && L<=BOUND;
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| 12 | $input int M;
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| 13 | $assume 1<=M && M<=BOUND;
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| 14 | $input int N;
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| 15 | $assume 1<=N && N<=BOUND;
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| 16 | $input int TILE_SIZE;
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| 17 | $assume 1<=TILE_SIZE && TILE_SIZE<=BOUND;
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| 18 | $input double A[L][M];
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| 19 | $input double B[M][N];
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| 20 | double C[L][N]; // A*B computed by standard algorithm
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| 21 | double D[L][N]; // A*B computed by tiled algorithm
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| 22 |
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| 23 | void spec() {
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| 24 | for (int i = 0; i < L; i++)
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| 25 | for (int j = 0; j < N; j++) {
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| 26 | C[i][j] = 0.0;
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| 27 | for (int k = 0; k < M; k++)
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| 28 | C[i][j] += A[i][k] * B[k][j];
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| 29 | }
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| 30 | }
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| 31 |
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| 32 | void rowdist() {
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| 33 | int hi1, hi2, hi3;
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| 34 |
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| 35 | for (int i = 0; i < L; i++) {
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| 36 | for (int j = 0; j < N; j++) {
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| 37 | D[i][j] = 0.0;
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| 38 | }
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| 39 | }
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| 40 |
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| 41 | for (int ii = 0; ii < L; ii+=TILE_SIZE) {
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| 42 | for (int jj = 0; jj < N; jj+=TILE_SIZE) {
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| 43 | for (int kk = 0; kk < M; kk+=TILE_SIZE) {
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| 44 | hi1 = (ii + TILE_SIZE < L ? ii+TILE_SIZE : L);
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| 45 | for (int i = ii; i < hi1; i++) {
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| 46 | hi2 = (jj + TILE_SIZE < N ? jj + TILE_SIZE : N);
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| 47 | for (int j = jj; j < hi2; j++) {
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| 48 | hi3 = (kk + TILE_SIZE < M ? kk + TILE_SIZE : M);
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| 49 | for (int k = kk; k < hi1; k++) // oops, hi1->hi3
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| 50 | D[i][j] = D[i][j] + A[i][k] * B[k][j];
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| 51 | }
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| 52 | }
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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 |
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| 58 | void main() {
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| 59 | spec();
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| 60 | rowdist();
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| 61 | for (int i = 0; i < L; i++) {
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| 62 | for (int j = 0; j < N; j++) {
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| 63 | $assert C[i][j] == D[i][j];
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| 64 | }
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| 65 | }
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| 66 | }
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