314 lines
8.4 KiB
C
314 lines
8.4 KiB
C
/*
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igraph library.
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Copyright (C) 2009-2012 Gabor Csardi <csardi.gabor@gmail.com>
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334 Harvard st, Cambridge MA, 02139 USA
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program; if not, write to the Free Software
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Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
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02110-1301 USA
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*/
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#include <igraph.h>
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igraph_bool_t check_solution(const igraph_sparsemat_t *A,
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const igraph_vector_t *x,
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const igraph_vector_t *b) {
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igraph_vector_t res;
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igraph_real_t min, max;
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igraph_bool_t success;
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igraph_sparsemat_iterator_t it;
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igraph_vector_init_copy(&res, b);
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igraph_sparsemat_iterator_init(&it, (igraph_sparsemat_t*) A);
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while (!igraph_sparsemat_iterator_end(&it)) {
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igraph_int_t row = igraph_sparsemat_iterator_row(&it);
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igraph_int_t col = igraph_sparsemat_iterator_col(&it);
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igraph_real_t value = igraph_sparsemat_iterator_get(&it);
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VECTOR(res)[row] -= VECTOR(*x)[col] * value;
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igraph_sparsemat_iterator_next(&it);
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}
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igraph_vector_minmax(&res, &min, &max);
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success = fabs(min) < 1e-12 && fabs(max) < 1e-12;
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if (!success) {
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printf("Incorrect solution.\n\n");
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printf("A =\n"); igraph_sparsemat_print(A, stdout); printf("\n");
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printf("x =\n"); igraph_vector_print(x); printf("\n");
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printf("b =\n"); igraph_vector_print(b); printf("\n");
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printf("difference between A*x and b =\n");
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igraph_vector_print(&res); printf("\n\n");
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}
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igraph_vector_destroy(&res);
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return success;
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}
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int main(void) {
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igraph_sparsemat_t A, B, C;
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igraph_vector_t b, x;
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igraph_int_t i;
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/* Initialize the library. */
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igraph_setup();
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/* Seed the RNG for reproducible results */
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igraph_rng_seed(igraph_rng_default(), 123);
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/* lsolve */
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#define DIM 10
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#define EDGES (DIM*DIM/6)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t r = RNG_INTEGER(0, DIM - 1);
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igraph_int_t c = RNG_INTEGER(0, r);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, r, c, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_lsolve(&B, &b, &x);
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if (! check_solution(&B, &x, &b)) {
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return 1;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&B);
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#undef DIM
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#undef EDGES
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/* ltsolve */
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#define DIM 10
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#define EDGES (DIM*DIM/6)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t r = RNG_INTEGER(0, DIM - 1);
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igraph_int_t c = RNG_INTEGER(0, r);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, r, c, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_ltsolve(&B, &b, &x);
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igraph_sparsemat_transpose(&B, &A);
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if (! check_solution(&A, &x, &b)) {
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return 2;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&B);
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igraph_sparsemat_destroy(&A);
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#undef DIM
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#undef EDGES
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/* usolve */
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#define DIM 10
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#define EDGES (DIM*DIM/6)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t r = RNG_INTEGER(0, DIM - 1);
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igraph_int_t c = RNG_INTEGER(0, r);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, r, c, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_sparsemat_transpose(&B, &A);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_usolve(&A, &b, &x);
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if (! check_solution(&A, &x, &b)) {
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return 3;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&B);
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igraph_sparsemat_destroy(&A);
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#undef DIM
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#undef EDGES
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/* utsolve */
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#define DIM 10
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#define EDGES (DIM*DIM/6)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t r = RNG_INTEGER(0, DIM - 1);
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igraph_int_t c = RNG_INTEGER(0, r);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, r, c, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_sparsemat_transpose(&B, &A);
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igraph_sparsemat_destroy(&B);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_utsolve(&A, &b, &x);
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igraph_sparsemat_transpose(&A, &B);
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if (! check_solution(&B, &x, &b)) {
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return 4;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&B);
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igraph_sparsemat_destroy(&A);
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#undef DIM
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#undef EDGES
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/* cholsol */
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/* We need a positive definite matrix, so we create a full-rank
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matrix first and then calculate A'A, which will be positive
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definite. */
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#define DIM 10
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#define EDGES (DIM*DIM/6)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t from = RNG_INTEGER(0, DIM - 1);
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igraph_int_t to = RNG_INTEGER(0, DIM - 1);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, from, to, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_sparsemat_transpose(&B, &A);
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igraph_sparsemat_multiply(&A, &B, &C);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_destroy(&B);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_cholsol(&C, &b, &x, /*order=*/ 0);
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if (! check_solution(&C, &x, &b)) {
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return 5;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&C);
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#undef DIM
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#undef EDGES
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/* lusol */
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#define DIM 10
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#define EDGES (DIM*DIM/4)
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igraph_sparsemat_init(&A, DIM, DIM, EDGES + DIM);
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for (i = 0; i < DIM; i++) {
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igraph_sparsemat_entry(&A, i, i, RNG_INTEGER(1, 3));
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}
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for (i = 0; i < EDGES; i++) {
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igraph_int_t from = RNG_INTEGER(0, DIM - 1);
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igraph_int_t to = RNG_INTEGER(0, DIM - 1);
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igraph_real_t value = RNG_INTEGER(1, 5);
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igraph_sparsemat_entry(&A, from, to, value);
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}
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igraph_sparsemat_compress(&A, &B);
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igraph_sparsemat_destroy(&A);
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igraph_sparsemat_dupl(&B);
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igraph_vector_init(&b, DIM);
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for (i = 0; i < DIM; i++) {
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VECTOR(b)[i] = RNG_INTEGER(1, 10);
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}
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igraph_vector_init(&x, DIM);
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igraph_sparsemat_lusol(&B, &b, &x, /*order=*/ 0, /*tol=*/ 1e-10);
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if (! check_solution(&B, &x, &b)) {
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return 6;
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}
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igraph_vector_destroy(&b);
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igraph_vector_destroy(&x);
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igraph_sparsemat_destroy(&B);
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#undef DIM
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#undef EDGES
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return 0;
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}
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