/*============================================================================= This file is part of ARB. ARB is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. ARB is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with ARB; if not, write to the Free Software Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA =============================================================================*/ /****************************************************************************** Copyright (C) 2012 Fredrik Johansson ******************************************************************************/ #include "fmpcb_poly.h" #define MUL_CUTOFF 24 static void _fmpcb_poly_exp_series_basecase_rec(fmpcb_ptr f, fmpcb_ptr a, fmpcb_srcptr h, long hlen, long n, long prec) { long j, k; fmpcb_t s; fmpcb_init(s); fmpcb_exp(f, h, prec); for (k = 1; k < hlen; k++) fmpcb_mul_ui(a + k, h + k, k, prec); for (k = 1; k < n; k++) { fmpcb_zero(s); for (j = 1; j < FLINT_MIN(k + 1, hlen); j++) fmpcb_addmul(s, a + j, f + k - j, prec); fmpcb_div_ui(f + k, s, k, prec); } fmpcb_clear(s); } void _fmpcb_poly_exp_series_basecase(fmpcb_ptr f, fmpcb_srcptr h, long hlen, long n, long prec) { hlen = FLINT_MIN(n, hlen); if (n < MUL_CUTOFF || hlen < 0.9 * n) { fmpcb_ptr t = _fmpcb_vec_init(hlen); _fmpcb_poly_exp_series_basecase_rec(f, t, h, hlen, n, prec); _fmpcb_vec_clear(t, hlen); } else { long m, v; fmpcb_ptr t, u; m = (n + 2) / 3; v = m * 2; t = _fmpcb_vec_init(n); u = _fmpcb_vec_init(n - m); _fmpcb_poly_mullow(t, h + m, hlen - m, h + m, hlen - m, n - v, prec); _fmpcb_vec_scalar_mul_2exp_si(t, t, n - v, -1); _fmpcb_vec_set(u, h + m, v - m); _fmpcb_poly_add(u + v - m, t, n - v, h + v, hlen - v, prec); _fmpcb_poly_exp_series_basecase_rec(f, t, h, m, n, prec); _fmpcb_poly_mullow(t, f, n, u, n - m, n - m, prec); _fmpcb_poly_add(f + m, f + m, n - m, t, n - m, prec); _fmpcb_vec_clear(t, n); _fmpcb_vec_clear(u, n - m); } } void fmpcb_poly_exp_series_basecase(fmpcb_poly_t f, const fmpcb_poly_t h, long n, long prec) { long hlen = h->length; if (n == 0) { fmpcb_poly_zero(f); return; } if (hlen == 0) { fmpcb_poly_one(f); return; } fmpcb_poly_fit_length(f, n); _fmpcb_poly_exp_series_basecase(f->coeffs, h->coeffs, hlen, n, prec); _fmpcb_poly_set_length(f, n); _fmpcb_poly_normalise(f); }