mirror of
https://github.com/vale981/arb
synced 2025-03-05 09:21:38 -05:00
346 lines
7.6 KiB
C
346 lines
7.6 KiB
C
/*=============================================================================
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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
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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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ARB 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 ARB; if not, write to the Free Software
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Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
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=============================================================================*/
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/******************************************************************************
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Copyright (C) 2014 Fredrik Johansson
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******************************************************************************/
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#ifndef MAG_H
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#define MAG_H
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#include <math.h>
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#include "flint.h"
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#include "arf.h"
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#ifdef __cplusplus
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extern "C" {
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#endif
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/*
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The mag_t type is an unsigned floating-point type with a fixed-precision
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mantissa (30 bits) and unlimited exponent range, suited for representing
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magnitude bounds efficiently.
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Operations always produce a strict upper/lower bound, but for performance
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reasons, no attempt is made to compute the best possible bound
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(in general, a result may a few ulps larger/smaller than the optimal value).
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The special values zero and positive infinity are supported (but not NaN).
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Applications requiring more flexibility (such as correct rounding, or
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higher precision) should use the arf_t type instead.
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*/
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/* TODO: arf.h should depend on this, not the other way around */
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#define MAG_EXPREF(x) (&(x)->exp)
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#define MAG_EXP(x) ((x)->exp)
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#define MAG_MAN(x) ((x)->man)
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/* Finite and with lagom big exponents. */
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#define MAG_IS_LAGOM(x) (MAG_EXP(x) >= ARF_MIN_LAGOM_EXP && \
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MAG_EXP(x) <= ARF_MAX_LAGOM_EXP)
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#define MAG_BITS 30
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#define MAG_ONE_HALF (1UL << (MAG_BITS - 1))
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static __inline__ mp_limb_t
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__mag_fixmul32(mp_limb_t x, mp_limb_t y)
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{
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mp_limb_t u, v;
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umul_ppmm(u, v, x, y);
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return (u << (32 - MAG_BITS)) | (v >> MAG_BITS);
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}
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#if FLINT_BITS == 64
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#define MAG_FIXMUL(x, y) (((x) * (y)) >> MAG_BITS)
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#else
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#define MAG_FIXMUL(x, y) __mag_fixmul32((x), (y))
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#endif
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#define MAG_FAST_ADJUST_ONE_TOO_LARGE(x) \
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do { \
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mp_limb_t __t = MAG_MAN(x) >> MAG_BITS; \
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MAG_MAN(x) = (MAG_MAN(x) >> __t) + __t; \
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MAG_EXP(x) += __t; \
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} while (0)
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#define MAG_FAST_ADJUST_ONE_TOO_SMALL(x) \
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do { \
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mp_limb_t __t = MAG_MAN(x) >> (MAG_BITS - 1); \
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MAG_MAN(x) = (MAG_MAN(x) << __t); \
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MAG_EXP(x) -= __t; \
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} while (0)
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#define MAG_ADJUST_ONE_TOO_LARGE(x) \
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do { \
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mp_limb_t __t = MAG_MAN(x) >> MAG_BITS; \
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MAG_MAN(x) = (MAG_MAN(x) >> __t) + __t; \
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if (__t) \
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fmpz_add_ui(MAG_EXPREF(x), MAG_EXPREF(x), __t); \
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} while (0)
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#define MAG_CHECK_BITS(rr) \
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if (MAG_MAN(rr) != 0 && FLINT_BIT_COUNT(MAG_MAN(rr)) != MAG_BITS) \
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{ \
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printf("FAIL: wrong number of bits in mantissa!\n"); \
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abort(); \
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}
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typedef struct
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{
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fmpz exp;
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mp_limb_t man;
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}
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mag_struct;
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typedef mag_struct mag_t[1];
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static __inline__ void
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mag_init(mag_t x)
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{
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fmpz_init(MAG_EXPREF(x));
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MAG_MAN(x) = 0;
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}
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static __inline__ void
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mag_clear(mag_t x)
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{
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fmpz_clear(MAG_EXPREF(x));
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}
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static __inline__ void
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mag_zero(mag_t x)
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{
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fmpz_zero(MAG_EXPREF(x));
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MAG_MAN(x) = 0;
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}
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static __inline__ void
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mag_inf(mag_t x)
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{
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fmpz_clear(MAG_EXPREF(x));
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MAG_EXP(x) = ARF_EXP_POS_INF;
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}
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static __inline__ int
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mag_is_special(const mag_t x)
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{
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return MAG_MAN(x) == 0;
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}
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static __inline__ int
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mag_is_zero(const mag_t x)
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{
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return (MAG_MAN(x) == 0) && (MAG_EXP(x) == 0);
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}
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static __inline__ int
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mag_is_inf(const mag_t x)
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{
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return (MAG_MAN(x) == 0) && (MAG_EXP(x) != 0);
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}
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/* general versions */
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static __inline__ void
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mag_init_set_arf(mag_t y, const arf_t x)
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{
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abort();
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}
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static __inline__ void
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mag_mul(mag_t z, const mag_t x, const mag_t y)
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{
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abort();
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}
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static __inline__ void
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mag_addmul(mag_t z, const mag_t x, const mag_t y)
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{
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abort();
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}
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void mag_set_fmpr(mag_t x, const fmpr_t y);
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void mag_set_arf(mag_t y, const arf_t x);
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/* Fast versions (no infs/nans, small exponents). Note that this
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applies to outputs too! */
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static __inline__ void
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mag_fast_init_set(mag_t x, const mag_t y)
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{
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MAG_EXP(x) = MAG_EXP(y);
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MAG_MAN(x) = MAG_MAN(y);
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}
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static __inline__ void
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mag_fast_zero(mag_t x)
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{
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MAG_EXP(x) = 0;
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MAG_MAN(x) = 0;
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}
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static __inline__ int
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mag_fast_is_zero(const mag_t x)
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{
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return MAG_MAN(x) == 0;
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}
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static __inline__ void
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mag_fast_init_set_arf(mag_t y, const arf_t x)
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{
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if (ARF_IS_SPECIAL(x)) /* x == 0 */
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{
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mag_fast_zero(y);
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}
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else
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{
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mp_srcptr xp;
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mp_size_t xn;
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ARF_GET_MPN_READONLY(xp, xn, x);
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MAG_MAN(y) = (xp[xn - 1] >> (FLINT_BITS - MAG_BITS)) + LIMB_ONE;
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MAG_EXP(y) = ARF_EXP(x);
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MAG_FAST_ADJUST_ONE_TOO_LARGE(y);
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}
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}
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static __inline__ void
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mag_fast_mul(mag_t z, const mag_t x, const mag_t y)
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{
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if (MAG_MAN(x) == 0 || MAG_MAN(y) == 0)
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{
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mag_fast_zero(z);
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}
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else
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{
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MAG_MAN(z) = MAG_FIXMUL(MAG_MAN(x), MAG_MAN(y)) + LIMB_ONE;
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MAG_EXP(z) = MAG_EXP(x) + MAG_EXP(y);
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MAG_FAST_ADJUST_ONE_TOO_SMALL(z);
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}
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}
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static __inline__ void
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mag_fast_addmul(mag_t z, const mag_t x, const mag_t y)
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{
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if (MAG_MAN(z) == 0)
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{
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mag_fast_mul(z, x, y);
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}
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else if (MAG_MAN(x) == 0 || MAG_MAN(y) == 0)
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{
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return;
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}
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else
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{
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long shift, e;
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/* x*y < 2^e */
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e = MAG_EXP(x) + MAG_EXP(y);
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shift = MAG_EXP(z) - e;
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if (shift >= 0)
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{
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if (shift >= MAG_BITS)
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MAG_MAN(z)++;
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else
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MAG_MAN(z) = MAG_MAN(z) + (MAG_FIXMUL(MAG_MAN(x),
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MAG_MAN(y)) >> shift) + LIMB_ONE;
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}
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else
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{
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shift = -shift;
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MAG_EXP(z) = e;
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if (shift >= MAG_BITS)
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MAG_MAN(z) = MAG_FIXMUL(MAG_MAN(x), MAG_MAN(y))
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+ (2 * LIMB_ONE);
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else
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MAG_MAN(z) = MAG_FIXMUL(MAG_MAN(x), MAG_MAN(y))
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+ (MAG_MAN(z) >> shift) + (2 * LIMB_ONE);
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}
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MAG_FAST_ADJUST_ONE_TOO_LARGE(z);
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}
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}
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static __inline__ void
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mag_fast_add_2exp_si(mag_t z, const mag_t x, long e)
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{
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/* Must be zero */
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if (mag_is_special(x))
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{
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MAG_MAN(z) = MAG_ONE_HALF;
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MAG_EXP(z) = e + 1;
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}
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else
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{
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long shift;
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shift = MAG_EXP(x) - e;
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if (shift >= 0)
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{
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MAG_EXP(z) = MAG_EXP(x);
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if (shift >= MAG_BITS)
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MAG_MAN(z) = MAG_MAN(x) + LIMB_ONE;
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else
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MAG_MAN(z) = MAG_MAN(x) + (LIMB_ONE << (MAG_BITS - shift));
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}
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else
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{
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shift = -shift;
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MAG_EXP(z) = e;
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if (shift >= MAG_BITS)
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MAG_MAN(z) = (LIMB_ONE << MAG_BITS) + LIMB_ONE;
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else
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MAG_MAN(z) = (LIMB_ONE << MAG_BITS) + (MAG_MAN(x) >> shift);
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}
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MAG_FAST_ADJUST_ONE_TOO_LARGE(z);
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}
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}
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static __inline__ void
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mag_get_fmpr(fmpr_t x, const mag_t r)
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{
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if (!MAG_IS_LAGOM(r))
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abort();
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fmpr_set_ui_2exp_si(x, MAG_MAN(r), MAG_EXP(r) - MAG_BITS);
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}
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#ifdef __cplusplus
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}
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#endif
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#endif
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