/* Copyright (C) 2017 Fredrik Johansson This file is part of Arb. Arb is free software: you can redistribute it and/or modify it under the terms of the GNU Lesser General Public License (LGPL) as published by the Free Software Foundation; either version 2.1 of the License, or (at your option) any later version. See . */ #include "acb_modular.h" #include "acb_elliptic.h" #define NUM_TESTS 6 #define EPS 1e-13 /* z, tau, sigma(z, tau) checked with Mathematica: N[{z, tau, WeierstrassSigma[z, WeierstrassInvariants[{1, tau}/2]]}, 20] */ const double testdata[NUM_TESTS][6] = { { 1.4142135623730950488, 1.7320508075688772935, 2.2360679774997896964, 2.6457513110645905905, 3.2497809387982239642, -6.2896427497987532326 }, { -1.0, -2.0, -1.0, 3.0, -0.17877885105742438172, 0.58508579024326876042 }, { 0.1, 0.0, 0.6, 0.2, 0.100055263033144515447, -0.000188998253739903104 }, { 0.0, 0.2, 0.2, 0.1, -0.05083547794781899013, 0.19409530512485630787 }, { 0.5, 0.0, 0.333333333333333333, 20.0, 0.48022700051193809297, 0.0 }, { 0.6666666666666667, 1.0, -3.1415926535897932385, 1.0, 1.3092907491438550394, 0.9063920053572463817 } }; static void acb_set_dddd(acb_t z, double a, double ar, double b, double br) { arf_set_d(arb_midref(acb_realref(z)), a); mag_set_d(arb_radref(acb_realref(z)), ar); arf_set_d(arb_midref(acb_imagref(z)), b); mag_set_d(arb_radref(acb_imagref(z)), br); } int main() { slong iter; flint_rand_t state; flint_printf("sigma...."); fflush(stdout); flint_randinit(state); /* check test values */ for (iter = 0; iter < 20 * arb_test_multiplier(); iter++) { slong i; acb_t z, tau, p1, p2; acb_init(z); acb_init(tau); acb_init(p1); acb_init(p2); for (i = 0; i < NUM_TESTS; i++) { acb_set_dddd(z, testdata[i][0], 0.0, testdata[i][1], 0.0); acb_set_dddd(tau, testdata[i][2], 0.0, testdata[i][3], 0.0); acb_set_dddd(p2, testdata[i][4], EPS, testdata[i][5], EPS); acb_elliptic_sigma(p1, z, tau, 2 + n_randint(state, 400)); if (!acb_overlaps(p1, p2)) { flint_printf("FAIL (test value)\n"); flint_printf("tau = "); acb_printd(tau, 15); flint_printf("\n\n"); flint_printf("z = "); acb_printd(z, 15); flint_printf("\n\n"); flint_printf("p1 = "); acb_printd(p1, 15); flint_printf("\n\n"); flint_printf("p2 = "); acb_printd(p2, 15); flint_printf("\n\n"); flint_abort(); } } acb_clear(z); acb_clear(tau); acb_clear(p1); acb_clear(p2); } /* Test periods */ for (iter = 0; iter < 1000 * arb_test_multiplier(); iter++) { acb_t tau, z1, z2, e1, e2, p1, p2, t, u; slong m, n, e0, prec0, prec1, prec2; acb_init(tau); acb_init(z1); acb_init(z2); acb_init(e1); acb_init(e2); acb_init(p1); acb_init(p2); acb_init(t); acb_init(u); e0 = 1 + n_randint(state, 10); prec0 = 2 + n_randint(state, 400); prec1 = 2 + n_randint(state, 400); prec2 = 2 + n_randint(state, 400); acb_randtest(tau, state, prec0, e0); if (arf_sgn(arb_midref(acb_imagref(tau))) < 0) acb_neg(tau, tau); acb_one(e1); acb_mul_2exp_si(e1, e1, -1); acb_elliptic_zeta(e1, e1, tau, prec0); acb_mul_2exp_si(e2, tau, -1); acb_elliptic_zeta(e2, e2, tau, prec0); acb_randtest(z1, state, prec0, e0); acb_randtest(p1, state, prec0, e0); acb_randtest(p2, state, prec0, e0); /* z2 = z1 + m + n*tau */ m = n_randint(state, 10); n = n_randint(state, 10); acb_add_ui(z2, z1, m, prec0); acb_addmul_ui(z2, tau, n, prec0); /* sigma(z + m + n*tau) = (-1)^(m+n+mn) exp((m e1 + n e2)(m + n tau + 2z) sigma(z) */ acb_elliptic_sigma(p1, z1, tau, prec1); acb_elliptic_sigma(p2, z2, tau, prec2); acb_mul_ui(t, e1, m, prec2); acb_addmul_ui(t, e2, n, prec2); acb_mul_2exp_si(u, z1, 1); acb_addmul_ui(u, tau, n, prec2); acb_add_ui(u, u, m, prec2); acb_mul(t, t, u, prec2); acb_neg(t, t); acb_exp(t, t, prec2); if ((m + n + m*n) % 2 == 1) acb_neg(t, t); acb_mul(p2, p2, t, prec2); if (!acb_overlaps(p1, p2)) { flint_printf("FAIL (overlap)\n"); flint_printf("tau = "); acb_printd(tau, 15); flint_printf("\n\n"); flint_printf("z1 = "); acb_printd(z1, 15); flint_printf("\n\n"); flint_printf("z2 = "); acb_printd(z2, 15); flint_printf("\n\n"); flint_printf("p1 = "); acb_printd(p1, 15); flint_printf("\n\n"); flint_printf("p2 = "); acb_printd(p2, 15); flint_printf("\n\n"); flint_abort(); } acb_clear(tau); acb_clear(z1); acb_clear(z2); acb_clear(e1); acb_clear(e2); acb_clear(p1); acb_clear(p2); acb_clear(t); acb_clear(u); } flint_randclear(state); flint_cleanup(); flint_printf("PASS\n"); return EXIT_SUCCESS; }