freebsd-dev/contrib/netbsd-tests/lib/libm/t_sin.c
Alex Richardson 1ec3feb648 Update libm tests from NetBSD
I did this without a full vendor update since that would cause too many
conflicts. Since these files now almost match the NetBSD sources the
next git subtree merge should work just fine.

Reviewed By:	lwhsu
Differential Revision: https://reviews.freebsd.org/D28797
2021-02-22 17:41:04 +00:00

295 lines
6.7 KiB
C

/* $NetBSD: t_sin.c,v 1.7 2019/05/27 00:24:37 maya Exp $ */
/*-
* Copyright (c) 2011 The NetBSD Foundation, Inc.
* All rights reserved.
*
* This code is derived from software contributed to The NetBSD Foundation
* by Jukka Ruohonen.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
* 1. Redistributions of source code must retain the above copyright
* notice, this list of conditions and the following disclaimer.
* 2. Redistributions in binary form must reproduce the above copyright
* notice, this list of conditions and the following disclaimer in the
* documentation and/or other materials provided with the distribution.
*
* THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
* ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
* TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
* PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
* BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
* CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
* SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
* INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
* CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
* ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
* POSSIBILITY OF SUCH DAMAGE.
*/
#include <assert.h>
#include <atf-c.h>
#include <float.h>
#include <math.h>
static const struct {
int angle;
double x;
double y;
float fy;
} angles[] = {
{ -360, -6.283185307179586, 2.4492935982947064e-16, -1.7484555e-07 },
{ -180, -3.141592653589793, -1.2246467991473532e-16, 8.7422777e-08 },
{ -135, -2.356194490192345, -0.7071067811865476, 999 },
{ -90, -1.570796326794897, -1.0000000000000000, 999 },
{ -45, -0.785398163397448, -0.7071067811865472, 999 },
{ 0, 0.000000000000000, 0.0000000000000000, 999 },
{ 30, 0.5235987755982989, 0.5000000000000000, 999 },
{ 45, 0.785398163397448, 0.7071067811865472, 999 },
{ 60, 1.047197551196598, 0.8660254037844388, 999 },
{ 90, 1.570796326794897, 1.0000000000000000, 999 },
{ 120, 2.094395102393195, 0.8660254037844389, 999 },
{ 135, 2.356194490192345, 0.7071067811865476, 999 },
{ 150, 2.617993877991494, 0.5000000000000003, 999 },
{ 180, 3.141592653589793, 1.2246467991473532e-16, -8.7422777e-08 },
{ 270, 4.712388980384690, -1.0000000000000000, 999 },
{ 360, 6.283185307179586, -2.4492935982947064e-16, 1.7484555e-07 },
};
/*
* sin(3)
*/
ATF_TC(sin_angles);
ATF_TC_HEAD(sin_angles, tc)
{
atf_tc_set_md_var(tc, "descr", "Test some selected angles");
}
ATF_TC_BODY(sin_angles, tc)
{
const double eps = DBL_EPSILON;
size_t i;
for (i = 0; i < __arraycount(angles); i++) {
int deg = angles[i].angle;
double theta = angles[i].x;
double sin_theta = angles[i].y;
bool ok;
if (sin_theta == 0) {
/* Should be computed exactly. */
assert(sin_theta == 0);
ok = (sin(theta) == 0);
} else {
assert(sin_theta != 0);
ok = (fabs((sin(theta) - sin_theta)/sin_theta) <= eps);
}
if (!ok) {
atf_tc_fail_nonfatal("sin(%d deg = %.17g) = %.17g"
" != %.17g",
deg, theta, sin(theta), sin_theta);
}
}
}
ATF_TC(sin_nan);
ATF_TC_HEAD(sin_nan, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sin(NaN) == NaN");
}
ATF_TC_BODY(sin_nan, tc)
{
const double x = 0.0L / 0.0L;
ATF_CHECK(isnan(x) != 0);
ATF_CHECK(isnan(sin(x)) != 0);
}
ATF_TC(sin_inf_neg);
ATF_TC_HEAD(sin_inf_neg, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sin(-Inf) == NaN");
}
ATF_TC_BODY(sin_inf_neg, tc)
{
const double x = -1.0L / 0.0L;
ATF_CHECK(isnan(sin(x)) != 0);
}
ATF_TC(sin_inf_pos);
ATF_TC_HEAD(sin_inf_pos, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sin(+Inf) == NaN");
}
ATF_TC_BODY(sin_inf_pos, tc)
{
const double x = 1.0L / 0.0L;
ATF_CHECK(isnan(sin(x)) != 0);
}
ATF_TC(sin_zero_neg);
ATF_TC_HEAD(sin_zero_neg, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sin(-0.0) == -0.0");
}
ATF_TC_BODY(sin_zero_neg, tc)
{
const double x = -0.0L;
ATF_CHECK(sin(x) == x);
}
ATF_TC(sin_zero_pos);
ATF_TC_HEAD(sin_zero_pos, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sin(+0.0) == +0.0");
}
ATF_TC_BODY(sin_zero_pos, tc)
{
const double x = 0.0L;
ATF_CHECK(sin(x) == x);
}
/*
* sinf(3)
*/
ATF_TC(sinf_angles);
ATF_TC_HEAD(sinf_angles, tc)
{
atf_tc_set_md_var(tc, "descr", "Test some selected angles");
}
ATF_TC_BODY(sinf_angles, tc)
{
const float eps = FLT_EPSILON;
size_t i;
for (i = 0; i < __arraycount(angles); i++) {
int deg = angles[i].angle;
float theta = angles[i].x;
float sin_theta = angles[i].fy;
bool ok;
if (sin_theta == 999)
sin_theta = angles[i].y;
if (sin_theta == 0) {
/* Should be computed exactly. */
ok = (sinf(theta) == 0);
} else {
ok = (fabsf((sinf(theta) - sin_theta)/sin_theta)
<= eps);
}
if (!ok) {
atf_tc_fail_nonfatal("sinf(%d deg) = %.8g != %.8g",
deg, sinf(theta), sin_theta);
}
}
}
ATF_TC(sinf_nan);
ATF_TC_HEAD(sinf_nan, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sinf(NaN) == NaN");
}
ATF_TC_BODY(sinf_nan, tc)
{
const float x = 0.0L / 0.0L;
ATF_CHECK(isnan(x) != 0);
ATF_CHECK(isnan(sinf(x)) != 0);
}
ATF_TC(sinf_inf_neg);
ATF_TC_HEAD(sinf_inf_neg, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sinf(-Inf) == NaN");
}
ATF_TC_BODY(sinf_inf_neg, tc)
{
const float x = -1.0L / 0.0L;
if (isnan(sinf(x)) == 0) {
atf_tc_expect_fail("PR lib/45362");
atf_tc_fail("sinf(-Inf) != NaN");
}
}
ATF_TC(sinf_inf_pos);
ATF_TC_HEAD(sinf_inf_pos, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sinf(+Inf) == NaN");
}
ATF_TC_BODY(sinf_inf_pos, tc)
{
const float x = 1.0L / 0.0L;
if (isnan(sinf(x)) == 0) {
atf_tc_expect_fail("PR lib/45362");
atf_tc_fail("sinf(+Inf) != NaN");
}
}
ATF_TC(sinf_zero_neg);
ATF_TC_HEAD(sinf_zero_neg, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sinf(-0.0) == -0.0");
}
ATF_TC_BODY(sinf_zero_neg, tc)
{
const float x = -0.0L;
ATF_CHECK(sinf(x) == x);
}
ATF_TC(sinf_zero_pos);
ATF_TC_HEAD(sinf_zero_pos, tc)
{
atf_tc_set_md_var(tc, "descr", "Test sinf(+0.0) == +0.0");
}
ATF_TC_BODY(sinf_zero_pos, tc)
{
const float x = 0.0L;
ATF_CHECK(sinf(x) == x);
}
ATF_TP_ADD_TCS(tp)
{
ATF_TP_ADD_TC(tp, sin_angles);
ATF_TP_ADD_TC(tp, sin_nan);
ATF_TP_ADD_TC(tp, sin_inf_neg);
ATF_TP_ADD_TC(tp, sin_inf_pos);
ATF_TP_ADD_TC(tp, sin_zero_neg);
ATF_TP_ADD_TC(tp, sin_zero_pos);
ATF_TP_ADD_TC(tp, sinf_angles);
ATF_TP_ADD_TC(tp, sinf_nan);
ATF_TP_ADD_TC(tp, sinf_inf_neg);
ATF_TP_ADD_TC(tp, sinf_inf_pos);
ATF_TP_ADD_TC(tp, sinf_zero_neg);
ATF_TP_ADD_TC(tp, sinf_zero_pos);
return atf_no_error();
}