mirror of
https://github.com/vale981/arb
synced 2025-03-06 01:41:39 -05:00

This will allow us to not loose the julia session on error. See also https://github.com/wbhart/flint2/pull/243
201 lines
6.7 KiB
C
201 lines
6.7 KiB
C
/*
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Copyright (C) 2016 Fredrik Johansson
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This file is part of Arb.
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Arb is free software: you can redistribute it and/or modify it under
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the terms of the GNU Lesser General Public License (LGPL) as published
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by the Free Software Foundation; either version 2.1 of the License, or
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(at your option) any later version. See <http://www.gnu.org/licenses/>.
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*/
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#include "acb_dirichlet.h"
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/* Laurent expansions at s = 1 of first 10 principal L-functions */
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/* with mpmath:
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chis = [[1],[0,1],[0,1,1],[0,1,0,1],[0,1,1,1,1],[0,1,0,0,0,1],[0,1,1,1,1,1,1],
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[0,1,0,1,0,1,0,1],[0,1,1,0,1,1,0,1,1],[0,1,0,1,0,0,0,1,0,1]]
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mp.dps = 40
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for chi in chis:
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phi = chi.count(1); q = len(chi)
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L = lambda s: dirichlet(s, chi) - phi/((s-1)*q)
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c0 = taylor(L, 1, 0, method="quad")
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c1 = taylor(L, 1, 5, singular=True)[1:]
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for c in c0 + c1:
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print nstr(c, 20) + ",",
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print
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*/
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#define TESTQ 10
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#define TESTLEN 6
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static const double laurent_data[TESTQ][TESTLEN] = {
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{0.57721566490153286061, 0.072815845483676724861, -0.0048451815964361592423,
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-0.00034230573671722431103, 0.000096890419394470835728, -6.6110318108421891813e-6},
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{0.63518142273073908501, 0.11634237461305384831, -0.018765738937942729408,
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0.00061334298434914532242, 0.00042338142025747308027, -0.00010545096447379519004},
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{0.7510145394903918042, 0.058764477744540050414, -0.019011359100973296683,
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0.0056382252365739175151, -0.0009550480622176659462, 0.000021808301216554848718},
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{0.63518142273073908501, 0.11634237461305384831, -0.018765738937942729408,
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0.00061334298434914532242, 0.00042338142025747308027, -0.00010545096447379519004},
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{0.78366011440804636341, -0.014977808062405260803, 0.0090104707969118845102,
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0.003603799084856807634, -0.0029351216034181476022, 0.00093077685173004747355},
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{0.60655632993184433857, 0.2095885418562151802, -0.060844893711330538429,
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0.0068080382961291386117, 0.0022236616427578346453, -0.0013581825996235430782},
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{0.77274344835207292411, -0.047596894381510269689, 0.035406039531261788462,
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-0.0054159870134630085898, -0.0019749752308692423114, 0.0014492998471928196325},
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{0.63518142273073908501, 0.11634237461305384831, -0.018765738937942729408,
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0.00061334298434914532242, 0.00042338142025747308027, -0.00010545096447379519004},
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{0.7510145394903918042, 0.058764477744540050414, -0.019011359100973296683,
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0.0056382252365739175151, -0.0009550480622176659462, 0.000021808301216554848718},
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{0.66908892942800130547, 0.16801639259476784034, -0.072611999814034642781,
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0.024624650443138705595, -0.004951850872731033514, -0.00020178815459414925709}
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};
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int main()
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{
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slong iter;
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flint_rand_t state;
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flint_printf("l_jet....");
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fflush(stdout);
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flint_randinit(state);
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/* test Laurent series at s = 1 */
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{
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acb_t s, t;
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dirichlet_group_t G;
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dirichlet_char_t chi;
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acb_ptr vec;
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ulong q;
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slong i;
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acb_init(s);
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acb_init(t);
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vec = _acb_vec_init(TESTLEN);
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acb_one(s);
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for (q = 1; q <= TESTQ; q++)
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{
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dirichlet_group_init(G, q);
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dirichlet_char_init(chi, G);
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acb_dirichlet_l_jet(vec, s, G, chi, 1, TESTLEN, 100);
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for (i = 0; i < TESTLEN; i++)
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{
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acb_set_d(t, laurent_data[q - 1][i]);
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mag_set_d(arb_radref(acb_realref(t)),
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fabs(laurent_data[q - 1][i]) * 1e-14);
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if (!acb_overlaps(vec + i, t))
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{
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flint_printf("FAIL: Laurent series\n\n");
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flint_printf("q = %wu i = %wd\n\n", q, i);
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flint_printf("r1 = "); acb_printn(vec + i, 50, 0); flint_printf("\n\n");
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flint_printf("r2 = "); acb_printn(t, 50, 0); flint_printf("\n\n");
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flint_abort();
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}
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}
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dirichlet_char_clear(chi);
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dirichlet_group_clear(G);
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}
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acb_clear(s);
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acb_clear(t);
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_acb_vec_clear(vec, TESTLEN);
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}
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/* test self-consistency */
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for (iter = 0; iter < 1000 * arb_test_multiplier(); iter++)
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{
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acb_t s;
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dirichlet_group_t G;
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dirichlet_char_t chi;
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acb_ptr vec1, vec2;
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slong len1, len2;
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slong prec1, prec2;
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int deflate1, deflate2;
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ulong q, k;
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slong i;
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len1 = n_randint(state, 5);
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len2 = n_randint(state, 5);
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prec1 = 2 + n_randint(state, 100);
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prec2 = 2 + n_randint(state, 100);
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deflate1 = n_randint(state, 2);
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deflate2 = n_randint(state, 2);
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q = 1 + n_randint(state, 20);
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k = n_randint(state, n_euler_phi(q));
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dirichlet_group_init(G, q);
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dirichlet_char_init(chi, G);
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dirichlet_char_index(chi, G, k);
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acb_init(s);
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vec1 = _acb_vec_init(len1);
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vec2 = _acb_vec_init(len2);
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if (n_randint(state, 4) == 0)
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acb_one(s);
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else
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acb_randtest(s, state, 2 + n_randint(state, 200), 2);
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acb_dirichlet_l_jet(vec1, s, G, chi, deflate1, len1, prec1);
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acb_dirichlet_l_jet(vec2, s, G, chi, deflate2, len2, prec2);
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if (deflate1 != deflate2 && dirichlet_char_is_principal(G, chi))
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{
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/* add or subtract phi(q)/((s+x-1)q) */
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acb_t t, u;
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acb_init(t);
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acb_init(u);
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acb_set_ui(t, n_euler_phi(q));
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acb_div_ui(t, t, q, prec1);
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acb_sub_ui(u, s, 1, prec1);
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for (i = 0; i < len1; i++)
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{
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acb_div(t, t, u, prec1);
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if (deflate1)
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acb_add(vec1 + i, vec1 + i, t, prec1);
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else
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acb_sub(vec1 + i, vec1 + i, t, prec1);
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acb_neg(t, t);
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}
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acb_clear(t);
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acb_clear(u);
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}
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for (i = 0; i < FLINT_MIN(len1, len2); i++)
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{
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if (!acb_overlaps(vec1 + i, vec2 + i))
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{
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flint_printf("FAIL: overlap\n\n");
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flint_printf("iter = %wd q = %wu k = %wu i = %wd\n\n", iter, q, k, i);
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flint_printf("s = "); acb_printn(s, 50, 0); flint_printf("\n\n");
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flint_printf("r1 = "); acb_printn(vec1 + i, 50, 0); flint_printf("\n\n");
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flint_printf("r2 = "); acb_printn(vec2 + i, 50, 0); flint_printf("\n\n");
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flint_abort();
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}
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}
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dirichlet_char_clear(chi);
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dirichlet_group_clear(G);
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acb_clear(s);
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_acb_vec_clear(vec1, len1);
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_acb_vec_clear(vec2, len2);
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}
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flint_randclear(state);
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flint_cleanup();
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flint_printf("PASS\n");
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return EXIT_SUCCESS;
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}
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