arb/fmprb_poly/compose_series_brent_kung.c
2012-09-26 15:51:46 +02:00

135 lines
3.9 KiB
C

/*=============================================================================
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 "fmprb_poly.h"
#include "fmprb_mat.h"
void
_fmprb_poly_compose_series_brent_kung(fmprb_struct * res,
const fmprb_struct * poly1, long len1,
const fmprb_struct * poly2, long len2, long n, long prec)
{
fmprb_mat_t A, B, C;
fmprb_struct *t, *h;
long i, m;
if (n == 1)
{
fmprb_set(res, poly1);
return;
}
m = n_sqrt(n) + 1;
fmprb_mat_init(A, m, n);
fmprb_mat_init(B, m, m);
fmprb_mat_init(C, m, n);
h = _fmprb_vec_init(n);
t = _fmprb_vec_init(n);
/* Set rows of B to the segments of poly1 */
for (i = 0; i < len1 / m; i++)
_fmprb_vec_set(B->rows[i], poly1 + i*m, m);
_fmprb_vec_set(B->rows[i], poly1 + i*m, len1 % m);
/* Set rows of A to powers of poly2 */
fmprb_set_ui(A->rows[0] + 0, 1UL);
_fmprb_vec_set(A->rows[1], poly2, len2);
for (i = 2; i < m; i++)
_fmprb_poly_mullow(A->rows[i], A->rows[i-1], n, poly2, len2, n, prec);
fmprb_mat_mul(C, B, A, prec);
/* Evaluate block composition using the Horner scheme */
_fmprb_vec_set(res, C->rows[m - 1], n);
_fmprb_poly_mullow(h, A->rows[m - 1], n, poly2, len2, n, prec);
for (i = m - 2; i >= 0; i--)
{
_fmprb_poly_mullow(t, res, n, h, n, n, prec);
_fmprb_poly_add(res, t, n, C->rows[i], n, prec);
}
_fmprb_vec_clear(h, n);
_fmprb_vec_clear(t, n);
fmprb_mat_clear(A);
fmprb_mat_clear(B);
fmprb_mat_clear(C);
}
void
fmprb_poly_compose_series_brent_kung(fmprb_poly_t res,
const fmprb_poly_t poly1,
const fmprb_poly_t poly2, long n, long prec)
{
long len1 = poly1->length;
long len2 = poly2->length;
long lenr;
if (len2 != 0 && !fmprb_is_zero(poly2->coeffs))
{
printf("exception: compose_series: inner "
"polynomial must have zero constant term\n");
abort();
}
if (len1 == 0 || n == 0)
{
fmprb_poly_zero(res);
return;
}
if (len2 == 0 || len1 == 1)
{
fmprb_poly_set_fmprb(res, poly1->coeffs);
return;
}
lenr = FLINT_MIN((len1 - 1) * (len2 - 1) + 1, n);
len1 = FLINT_MIN(len1, lenr);
len2 = FLINT_MIN(len2, lenr);
if ((res != poly1) && (res != poly2))
{
fmprb_poly_fit_length(res, lenr);
_fmprb_poly_compose_series_brent_kung(res->coeffs, poly1->coeffs, len1,
poly2->coeffs, len2, lenr, prec);
_fmprb_poly_set_length(res, lenr);
_fmprb_poly_normalise(res);
}
else
{
fmprb_poly_t t;
fmprb_poly_init2(t, lenr);
_fmprb_poly_compose_series_brent_kung(t->coeffs, poly1->coeffs, len1,
poly2->coeffs, len2, lenr, prec);
_fmprb_poly_set_length(t, lenr);
_fmprb_poly_normalise(t);
fmprb_poly_swap(res, t);
fmprb_poly_clear(t);
}
}