glibc/sysdeps/ieee754/ldbl-128ibm/s_nextafterl.c
Joseph Myers b4d5b8b021 Do not include math-barriers.h in math_private.h.
This patch continues the math_private.h cleanup by stopping
math_private.h from including math-barriers.h and making the users of
the barrier macros include the latter header directly.  No attempt is
made to remove any math_private.h includes that are now unused, except
in strtod_l.c where that is done to avoid line number changes in
assertions, so that installed stripped shared libraries can be
compared before and after the patch.  (I think the floating-point
environment support in math_private.h should also move out - some
architectures already have fenv_private.h as an architecture-internal
header included from their math_private.h - and after moving that out
might be a better time to identify unused math_private.h includes.)

Tested for x86_64 and x86, and tested with build-many-glibcs.py that
installed stripped shared libraries are unchanged by the patch.

	* sysdeps/generic/math_private.h: Do not include
	<math-barriers.h>.
	* stdlib/strtod_l.c: Include <math-barriers.h> instead of
	<math_private.h>.
	* math/fromfp.h: Include <math-barriers.h>.
	* math/math-narrow.h: Likewise.
	* math/s_nextafter.c: Likewise.
	* math/s_nexttowardf.c: Likewise.
	* sysdeps/aarch64/fpu/s_llrint.c: Likewise.
	* sysdeps/aarch64/fpu/s_llrintf.c: Likewise.
	* sysdeps/aarch64/fpu/s_lrint.c: Likewise.
	* sysdeps/aarch64/fpu/s_lrintf.c: Likewise.
	* sysdeps/i386/fpu/s_nextafterl.c: Likewise.
	* sysdeps/i386/fpu/s_nexttoward.c: Likewise.
	* sysdeps/i386/fpu/s_nexttowardf.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_atan2.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_atanh.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_exp.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_exp2.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_j0.c: Likewise.
	* sysdeps/ieee754/dbl-64/e_sqrt.c: Likewise.
	* sysdeps/ieee754/dbl-64/s_expm1.c: Likewise.
	* sysdeps/ieee754/dbl-64/s_fma.c: Likewise.
	* sysdeps/ieee754/dbl-64/s_fmaf.c: Likewise.
	* sysdeps/ieee754/dbl-64/s_log1p.c: Likewise.
	* sysdeps/ieee754/dbl-64/s_nearbyint.c: Likewise.
	* sysdeps/ieee754/dbl-64/wordsize-64/s_nearbyint.c: Likewise.
	* sysdeps/ieee754/flt-32/e_atanhf.c: Likewise.
	* sysdeps/ieee754/flt-32/e_j0f.c: Likewise.
	* sysdeps/ieee754/flt-32/s_expm1f.c: Likewise.
	* sysdeps/ieee754/flt-32/s_log1pf.c: Likewise.
	* sysdeps/ieee754/flt-32/s_nearbyintf.c: Likewise.
	* sysdeps/ieee754/flt-32/s_nextafterf.c: Likewise.
	* sysdeps/ieee754/k_standardl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/e_asinl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/e_expl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/e_powl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/s_fmal.c: Likewise.
	* sysdeps/ieee754/ldbl-128/s_nearbyintl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/s_nextafterl.c: Likewise.
	* sysdeps/ieee754/ldbl-128/s_nexttoward.c: Likewise.
	* sysdeps/ieee754/ldbl-128/s_nexttowardf.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/e_asinl.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/s_fmal.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/s_nextafterl.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/s_nexttoward.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/s_nexttowardf.c: Likewise.
	* sysdeps/ieee754/ldbl-128ibm/s_rintl.c: Likewise.
	* sysdeps/ieee754/ldbl-96/e_atanhl.c: Likewise.
	* sysdeps/ieee754/ldbl-96/e_j0l.c: Likewise.
	* sysdeps/ieee754/ldbl-96/s_fma.c: Likewise.
	* sysdeps/ieee754/ldbl-96/s_fmal.c: Likewise.
	* sysdeps/ieee754/ldbl-96/s_nexttoward.c: Likewise.
	* sysdeps/ieee754/ldbl-96/s_nexttowardf.c: Likewise.
	* sysdeps/ieee754/ldbl-opt/s_nexttowardfd.c: Likewise.
	* sysdeps/m68k/m680x0/fpu/s_nextafterl.c: Likewise.
2018-05-11 15:11:38 +00:00

162 lines
5.2 KiB
C

/* s_nextafterl.c -- long double version of s_nextafter.c.
* Conversion to IEEE quad long double by Jakub Jelinek, jj@ultra.linux.cz.
*/
/*
* ====================================================
* Copyright (C) 1993 by Sun Microsystems, Inc. All rights reserved.
*
* Developed at SunPro, a Sun Microsystems, Inc. business.
* Permission to use, copy, modify, and distribute this
* software is freely granted, provided that this notice
* is preserved.
* ====================================================
*/
#if defined(LIBM_SCCS) && !defined(lint)
static char rcsid[] = "$NetBSD: $";
#endif
/* IEEE functions
* nextafterl(x,y)
* return the next machine floating-point number of x in the
* direction toward y.
* Special cases:
*/
#include <errno.h>
#include <float.h>
#include <math.h>
#include <math-barriers.h>
#include <math_private.h>
#include <math_ldbl_opt.h>
long double __nextafterl(long double x, long double y)
{
int64_t hx, hy, ihx, ihy, lx;
double xhi, xlo, yhi;
ldbl_unpack (x, &xhi, &xlo);
EXTRACT_WORDS64 (hx, xhi);
EXTRACT_WORDS64 (lx, xlo);
yhi = ldbl_high (y);
EXTRACT_WORDS64 (hy, yhi);
ihx = hx&0x7fffffffffffffffLL; /* |hx| */
ihy = hy&0x7fffffffffffffffLL; /* |hy| */
if((ihx>0x7ff0000000000000LL) || /* x is nan */
(ihy>0x7ff0000000000000LL)) /* y is nan */
return x+y; /* signal the nan */
if(x==y)
return y; /* x=y, return y */
if(ihx == 0) { /* x == 0 */
long double u; /* return +-minsubnormal */
hy = (hy & 0x8000000000000000ULL) | 1;
INSERT_WORDS64 (yhi, hy);
x = yhi;
u = math_opt_barrier (x);
u = u * u;
math_force_eval (u); /* raise underflow flag */
return x;
}
long double u;
if(x > y) { /* x > y, x -= ulp */
/* This isn't the largest magnitude correctly rounded
long double as you can see from the lowest mantissa
bit being zero. It is however the largest magnitude
long double with a 106 bit mantissa, and nextafterl
is insane with variable precision. So to make
nextafterl sane we assume 106 bit precision. */
if((hx==0xffefffffffffffffLL)&&(lx==0xfc8ffffffffffffeLL)) {
u = x+x; /* overflow, return -inf */
math_force_eval (u);
__set_errno (ERANGE);
return y;
}
if (hx >= 0x7ff0000000000000LL) {
u = 0x1.fffffffffffff7ffffffffffff8p+1023L;
return u;
}
if(ihx <= 0x0360000000000000LL) { /* x <= LDBL_MIN */
u = math_opt_barrier (x);
x -= LDBL_TRUE_MIN;
if (ihx < 0x0360000000000000LL
|| (hx > 0 && lx <= 0)
|| (hx < 0 && lx > 1)) {
u = u * u;
math_force_eval (u); /* raise underflow flag */
__set_errno (ERANGE);
}
/* Avoid returning -0 in FE_DOWNWARD mode. */
if (x == 0.0L)
return 0.0L;
return x;
}
/* If the high double is an exact power of two and the low
double is the opposite sign, then 1ulp is one less than
what we might determine from the high double. Similarly
if X is an exact power of two, and positive, because
making it a little smaller will result in the exponent
decreasing by one and normalisation of the mantissa. */
if ((hx & 0x000fffffffffffffLL) == 0
&& ((lx != 0 && (hx ^ lx) < 0)
|| (lx == 0 && hx >= 0)))
ihx -= 1LL << 52;
if (ihx < (106LL << 52)) { /* ulp will denormal */
INSERT_WORDS64 (yhi, ihx & (0x7ffLL<<52));
u = yhi * 0x1p-105;
} else {
INSERT_WORDS64 (yhi, (ihx & (0x7ffLL<<52))-(105LL<<52));
u = yhi;
}
return x - u;
} else { /* x < y, x += ulp */
if((hx==0x7fefffffffffffffLL)&&(lx==0x7c8ffffffffffffeLL)) {
u = x+x; /* overflow, return +inf */
math_force_eval (u);
__set_errno (ERANGE);
return y;
}
if ((uint64_t) hx >= 0xfff0000000000000ULL) {
u = -0x1.fffffffffffff7ffffffffffff8p+1023L;
return u;
}
if(ihx <= 0x0360000000000000LL) { /* x <= LDBL_MIN */
u = math_opt_barrier (x);
x += LDBL_TRUE_MIN;
if (ihx < 0x0360000000000000LL
|| (hx > 0 && lx < 0 && lx != 0x8000000000000001LL)
|| (hx < 0 && lx >= 0)) {
u = u * u;
math_force_eval (u); /* raise underflow flag */
__set_errno (ERANGE);
}
if (x == 0.0L) /* handle negative LDBL_TRUE_MIN case */
x = -0.0L;
return x;
}
/* If the high double is an exact power of two and the low
double is the opposite sign, then 1ulp is one less than
what we might determine from the high double. Similarly
if X is an exact power of two, and negative, because
making it a little larger will result in the exponent
decreasing by one and normalisation of the mantissa. */
if ((hx & 0x000fffffffffffffLL) == 0
&& ((lx != 0 && (hx ^ lx) < 0)
|| (lx == 0 && hx < 0)))
ihx -= 1LL << 52;
if (ihx < (106LL << 52)) { /* ulp will denormal */
INSERT_WORDS64 (yhi, ihx & (0x7ffLL<<52));
u = yhi * 0x1p-105;
} else {
INSERT_WORDS64 (yhi, (ihx & (0x7ffLL<<52))-(105LL<<52));
u = yhi;
}
return x + u;
}
}
strong_alias (__nextafterl, __nexttowardl)
long_double_symbol (libm, __nextafterl, nextafterl);
long_double_symbol (libm, __nexttowardl, nexttowardl);