1 /* Compute cosine of argument.
2 Copyright (C) 2017 Free Software Foundation, Inc.
3 This file is part of the GNU C Library.
5 The GNU C Library is free software; you can redistribute it and/or
6 modify it under the terms of the GNU Lesser General Public
7 License as published by the Free Software Foundation; either
8 version 2.1 of the License, or (at your option) any later version.
10 The GNU C Library is distributed in the hope that it will be useful,
11 but WITHOUT ANY WARRANTY; without even the implied warranty of
12 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
13 Lesser General Public License for more details.
15 You should have received a copy of the GNU Lesser General Public
16 License along with the GNU C Library; if not, see
17 <http://www.gnu.org/licenses/>. */
21 #include <math_private.h>
22 #include <libm-alias-float.h>
25 # define COSF_FUNC __cosf
27 # define COSF_FUNC COSF
30 /* Chebyshev constants for cos, range -PI/4 - PI/4. */
31 static const double C0
= -0x1.ffffffffe98aep
-2;
32 static const double C1
= 0x1.55555545c50c7p
-5;
33 static const double C2
= -0x1.6c16b348b6874p
-10;
34 static const double C3
= 0x1.a00eb9ac43ccp
-16;
35 static const double C4
= -0x1.23c97dd8844d7p
-22;
37 /* Chebyshev constants for sin, range -PI/4 - PI/4. */
38 static const double S0
= -0x1.5555555551cd9p
-3;
39 static const double S1
= 0x1.1111110c2688bp
-7;
40 static const double S2
= -0x1.a019f8b4bd1f9p
-13;
41 static const double S3
= 0x1.71d7264e6b5b4p
-19;
42 static const double S4
= -0x1.a947e1674b58ap
-26;
44 /* Chebyshev constants for cos, range 2^-27 - 2^-5. */
45 static const double CC0
= -0x1.fffffff5cc6fdp
-2;
46 static const double CC1
= 0x1.55514b178dac5p
-5;
48 /* PI/2 with 98 bits of accuracy. */
49 static const double PI_2_hi
= 0x1.921fb544p
+0;
50 static const double PI_2_lo
= 0x1.0b4611a626332p
-34;
52 static const double inv_PI_4
= 0x1.45f306dc9c883p
+0; /* 4/PI. */
54 #define FLOAT_EXPONENT_SHIFT 23
55 #define FLOAT_EXPONENT_BIAS 127
57 static const double pio2_table
[] = {
66 static const double invpio4_table
[] = {
77 static const double ones
[] = { 1.0, -1.0 };
79 /* Compute the cosine value using Chebyshev polynomials where
80 THETA is the range reduced absolute value of the input
81 and it is less than Pi/4,
82 N is calculated as trunc(|x|/(Pi/4)) + 1 and it is used to decide
83 whether a sine or cosine approximation is more accurate and
84 the sign of the result. */
86 reduced (double theta
, unsigned int n
)
89 const double theta2
= theta
* theta
;
91 /* Determine positive or negative primary interval. */
93 sign
= ones
[(n
>> 2) & 1];
95 /* Are we in the primary interval of sin or cos? */
98 /* Here cosf() is calculated using sin Chebyshev polynomial:
99 x+x^3*(S0+x^2*(S1+x^2*(S2+x^2*(S3+x^2*S4)))). */
100 cx
= S3
+ theta2
* S4
;
101 cx
= S2
+ theta2
* cx
;
102 cx
= S1
+ theta2
* cx
;
103 cx
= S0
+ theta2
* cx
;
104 cx
= theta
+ theta
* theta2
* cx
;
108 /* Here cosf() is calculated using cos Chebyshev polynomial:
109 1.0+x^2*(C0+x^2*(C1+x^2*(C2+x^2*(C3+x^2*C4)))). */
110 cx
= C3
+ theta2
* C4
;
111 cx
= C2
+ theta2
* cx
;
112 cx
= C1
+ theta2
* cx
;
113 cx
= C0
+ theta2
* cx
;
114 cx
= 1. + theta2
* cx
;
123 double abstheta
= fabs (theta
);
124 if (isless (abstheta
, M_PI_4
))
127 if (abstheta
>= 0x1p
-5)
129 const double theta2
= theta
* theta
;
130 /* Chebyshev polynomial of the form for cos:
131 * 1 + x^2 (C0 + x^2 (C1 + x^2 (C2 + x^2 (C3 + x^2 * C4)))). */
132 cx
= C3
+ theta2
* C4
;
133 cx
= C2
+ theta2
* cx
;
134 cx
= C1
+ theta2
* cx
;
135 cx
= C0
+ theta2
* cx
;
136 cx
= 1. + theta2
* cx
;
139 else if (abstheta
>= 0x1p
-27)
141 /* A simpler Chebyshev approximation is close enough for this range:
142 * 1 + x^2 (CC0 + x^3 * CC1). */
143 const double theta2
= theta
* theta
;
144 cx
= CC0
+ theta
* theta2
* CC1
;
145 cx
= 1.0 + theta2
* cx
;
150 /* For small enough |theta|, this is close enough. */
151 return 1.0 - abstheta
;
154 else /* |theta| >= Pi/4. */
156 if (isless (abstheta
, 9 * M_PI_4
))
158 /* There are cases where FE_UPWARD rounding mode can
159 produce a result of abstheta * inv_PI_4 == 9,
160 where abstheta < 9pi/4, so the domain for
161 pio2_table must go to 5 (9 / 2 + 1). */
162 unsigned int n
= (abstheta
* inv_PI_4
) + 1;
163 theta
= abstheta
- pio2_table
[n
/ 2];
164 return reduced (theta
, n
);
166 else if (isless (abstheta
, INFINITY
))
168 if (abstheta
< 0x1p
+23)
170 unsigned int n
= ((unsigned int) (abstheta
* inv_PI_4
)) + 1;
172 theta
= (abstheta
- x
* PI_2_hi
) - x
* PI_2_lo
;
173 /* Argument reduction needed. */
174 return reduced (theta
, n
);
176 else /* |theta| >= 2^23. */
180 GET_FLOAT_WORD (exponent
, x
);
181 exponent
= (exponent
>> FLOAT_EXPONENT_SHIFT
)
182 - FLOAT_EXPONENT_BIAS
;
185 double a
= invpio4_table
[exponent
] * x
;
186 double b
= invpio4_table
[exponent
+ 1] * x
;
187 double c
= invpio4_table
[exponent
+ 2] * x
;
188 double d
= invpio4_table
[exponent
+ 3] * x
;
202 return reduced (e
, l
+ 1);
212 return reduced (e
, l
+ 1);
219 return reduced (e
, l
+ 1);
227 GET_FLOAT_WORD (ix
, abstheta
);
228 /* cos(Inf or NaN) is NaN. */
229 if (ix
== 0x7f800000) /* Inf. */
237 libm_alias_float (__cos
, cos
)