1 1.2 sevan /* $NetBSD: tgmath.h,v 1.2 2017/04/04 12:25:40 sevan Exp $ */ 2 1.2 sevan 3 1.1 matt /*- 4 1.1 matt * Copyright (c) 2008 The NetBSD Foundation, Inc. 5 1.1 matt * All rights reserved. 6 1.1 matt * 7 1.1 matt * This code is derived from software contributed to The NetBSD Foundation 8 1.1 matt * by Matt Thomas <matt (at) 3am-software.com> 9 1.1 matt * 10 1.1 matt * Redistribution and use in source and binary forms, with or without 11 1.1 matt * modification, are permitted provided that the following conditions 12 1.1 matt * are met: 13 1.1 matt * 1. Redistributions of source code must retain the above copyright 14 1.1 matt * notice, this list of conditions and the following disclaimer. 15 1.1 matt * 2. Redistributions in binary form must reproduce the above copyright 16 1.1 matt * notice, this list of conditions and the following disclaimer in the 17 1.1 matt * documentation and/or other materials provided with the distribution. 18 1.1 matt * 19 1.1 matt * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 20 1.1 matt * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 21 1.1 matt * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 22 1.1 matt * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 23 1.1 matt * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 24 1.1 matt * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 25 1.1 matt * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 26 1.1 matt * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 27 1.1 matt * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 28 1.1 matt * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 29 1.1 matt * POSSIBILITY OF SUCH DAMAGE. 30 1.1 matt */ 31 1.1 matt 32 1.1 matt #ifndef _TGMATH_H_ 33 1.1 matt #define _TGMATH_H_ 34 1.1 matt 35 1.1 matt #include <math.h> 36 1.1 matt #include <complex.h> 37 1.1 matt 38 1.1 matt /* 39 1.1 matt * C99 Type-generic math (7.22) 40 1.1 matt */ 41 1.1 matt #ifdef __GNUC__ 42 1.1 matt #define __TG_CHOOSE(p, a, b) __builtin_choose_expr((p), (a), (b)) 43 1.1 matt #define __TG_IS_EQUIV_TYPE_P(v, t) \ 44 1.1 matt __builtin_types_compatible_p(__typeof__(v), t) 45 1.1 matt #else 46 1.1 matt #error how does this compler do type-generic macros? 47 1.1 matt #endif 48 1.1 matt 49 1.1 matt #define __TG_IS_FCOMPLEX_P(t) __TG_IS_EQUIV_TYPE_P(t, float complex) 50 1.1 matt #define __TG_IS_DCOMPLEX_P(t) __TG_IS_EQUIV_TYPE_P(t, double complex) 51 1.1 matt #define __TG_IS_LCOMPLEX_P(t) __TG_IS_EQUIV_TYPE_P(t, long double complex) 52 1.1 matt #define __TG_IS_FLOAT_P(t) __TG_IS_EQUIV_TYPE_P(t, float) 53 1.1 matt #define __TG_IS_LDOUBLE_P(t) __TG_IS_EQUIV_TYPE_P(t, long double) 54 1.1 matt #define __TG_IS_FREAL_P(t) (__TG_IS_FLOAT_P(t) || __TG_IS_FCOMPLEX_P(t)) 55 1.1 matt #define __TG_IS_LREAL_P(t) (__TG_IS_LDOUBLE_P(t) || __TG_IS_LCOMPLEX_P(t)) 56 1.1 matt 57 1.1 matt #define __TG_IS_COMPLEX_P(t) \ 58 1.1 matt (__TG_IS_FCOMPLEX_P(t) \ 59 1.1 matt || __TG_IS_DCOMPLEX_P(t) \ 60 1.1 matt || __TG_IS_LCOMPLEX_P(t)) 61 1.1 matt 62 1.1 matt #define __TG_GFN1(fn, a, ftype, ltype) \ 63 1.1 matt __TG_CHOOSE(__TG_IS_##ftype##_P(a), \ 64 1.1 matt fn##f(a), \ 65 1.1 matt __TG_CHOOSE(__TG_IS_##ltype##_P(a), \ 66 1.1 matt fn##l(a), \ 67 1.1 matt fn(a))) 68 1.1 matt 69 1.1 matt #define __TG_GFN1x(fn, a, b, ftype, ltype) \ 70 1.1 matt __TG_CHOOSE(__TG_IS_##ftype##_P(a), \ 71 1.1 matt fn##f((a), (b)), \ 72 1.1 matt __TG_CHOOSE(__TG_IS_##ltype##_P(a), \ 73 1.1 matt fn##l((a), (b)), \ 74 1.1 matt fn((a), (b)))) 75 1.1 matt 76 1.1 matt #define __TG_GFN2(fn, a, b, ftype, ltype) \ 77 1.1 matt __TG_CHOOSE(__TG_IS_##ftype##_P(a) \ 78 1.1 matt && __TG_IS_##ftype##_P(b), \ 79 1.1 matt fn##f((a), (b)), \ 80 1.1 matt __TG_CHOOSE(__TG_IS_##ltype##_P(a) \ 81 1.1 matt || __TG_IS_##ltype##_P(b), \ 82 1.1 matt fn##l((a), (b)), \ 83 1.1 matt fn((a), (b)))) 84 1.1 matt 85 1.1 matt #define __TG_GFN2x(fn, a, b, c, ftype, ltype) \ 86 1.1 matt __TG_CHOOSE(__TG_IS_##ftype##_P(a) \ 87 1.1 matt && __TG_IS_##ftype##_P(b), \ 88 1.1 matt fn##f((a), (b), (c)), \ 89 1.1 matt __TG_CHOOSE(__TG_IS_##ltype##_P(a) \ 90 1.1 matt || __TG_IS_##ltype##_P(b), \ 91 1.1 matt fn##l((a), (b), (c)), \ 92 1.1 matt fn((a), (b), (c)))) 93 1.1 matt 94 1.1 matt #define __TG_GFN3(fn, a, b, c, ftype, ltype) \ 95 1.1 matt __TG_CHOOSE(__TG_IS_##ftype##_P(a) \ 96 1.1 matt && __TG_IS_##ftype##_P(b) \ 97 1.1 matt && __TG_IS_##ftype##_P(c), \ 98 1.1 matt fn##f((a), (b), (c)), \ 99 1.1 matt __TG_CHOOSE(__TG_IS_##ltype##_P(a) \ 100 1.1 matt || __TG_IS_##ltype##_P(b) \ 101 1.1 matt || __TG_IS_##ltype##_P(c), \ 102 1.1 matt fn##l((a), (b), (c)), \ 103 1.1 matt fn((a), (b), (c)))) 104 1.1 matt 105 1.1 matt 106 1.1 matt #define __TG_CFN1(cfn, a) __TG_GFN1(cfn, a, FREAL, LREAL) 107 1.1 matt #define __TG_CFN2(cfn, a, b) __TG_GFN2(cfn, a, b, FREAL, LREAL) 108 1.1 matt 109 1.1 matt #define __TG_FN1(fn, a) __TG_GFN1(fn, a, FLOAT, LDOUBLE) 110 1.1 matt #define __TG_FN1x(fn, a, b) __TG_GFN1x(fn, a, b, FLOAT, LDOUBLE) 111 1.1 matt #define __TG_FN2(fn, a, b) __TG_GFN2(fn, a, b, FLOAT, LDOUBLE) 112 1.1 matt #define __TG_FN2x(fn, a, b, c) __TG_GFN2x(fn, a, b, c, FLOAT, LDOUBLE) 113 1.1 matt #define __TG_FN3(fn, a, b, c) __TG_GFN3(fn, a, b, c, FLOAT, LDOUBLE) 114 1.1 matt 115 1.1 matt #define __TG_COMPLEX(a, fn) \ 116 1.1 matt __TG_CHOOSE(__TG_IS_COMPLEX_P(a), \ 117 1.1 matt __TG_CFN1(c##fn, (a)), \ 118 1.1 matt __TG_FN1(fn, (a))) 119 1.1 matt 120 1.1 matt #define __TG_COMPLEX1(a, cfn, fn) \ 121 1.1 matt __TG_CHOOSE(__TG_IS_COMPLEX_P(a), \ 122 1.1 matt __TG_CFN1(cfn, (a)), \ 123 1.1 matt __TG_FN1(fn, (a))) 124 1.1 matt 125 1.1 matt #define __TG_COMPLEX2(a, b, fn) \ 126 1.1 matt __TG_CHOOSE(__TG_IS_COMPLEX_P(a) \ 127 1.1 matt || __TG_IS_COMPLEX_P(b), \ 128 1.1 matt __TG_CFN2(c##fn, (a), (b)), \ 129 1.1 matt __TG_FN2(fn, (a), (b))) 130 1.1 matt 131 1.1 matt #define acos(a) __TG_COMPLEX((a), acos) 132 1.1 matt #define asin(a) __TG_COMPLEX((a), asin) 133 1.1 matt #define atan(a) __TG_COMPLEX((a), atan) 134 1.1 matt #define acosh(a) __TG_COMPLEX((a), acosh) 135 1.1 matt #define asinh(a) __TG_COMPLEX((a), asinh) 136 1.1 matt #define atanh(a) __TG_COMPLEX((a), atanh) 137 1.1 matt #define cos(a) __TG_COMPLEX((a), cos) 138 1.1 matt #define sin(a) __TG_COMPLEX((a), sin) 139 1.1 matt #define tan(a) __TG_COMPLEX((a), tan) 140 1.1 matt #define cosh(a) __TG_COMPLEX((a), cosh) 141 1.1 matt #define sinh(a) __TG_COMPLEX((a), sinh) 142 1.1 matt #define tanh(a) __TG_COMPLEX((a), tanh) 143 1.1 matt #define exp(a) __TG_COMPLEX((a), exp) 144 1.1 matt #define log(a) __TG_COMPLEX((a), log) 145 1.1 matt #define pow(a,b) __TG_COMPLEX2((a), (b), pow) 146 1.1 matt #define sqrt(a) __TG_COMPLEX((a), sqrt) 147 1.1 matt #define fabs(a) __TG_COMPLEX1((a), cabs, fabs) 148 1.1 matt 149 1.1 matt #define atan2(a,b) __TG_FN2(atan2, (a), (b)) 150 1.1 matt #define cbrt(a) __TG_FN1(cbrt, (a)) 151 1.1 matt #define ceil(a) __TG_FN1(ceil, (a)) 152 1.1 matt #define copysign(a,b) __TG_FN2(copysign, (a), (b)) 153 1.1 matt #define erf(a) __TG_FN1(erf, (a)) 154 1.1 matt #define erfc(a) __TG_FN1(erfc, (a)) 155 1.1 matt #define exp2(a) __TG_FN1(exp2, (a)) 156 1.1 matt #define expm1(a) __TG_FN1(expm1, (a)) 157 1.1 matt #define fdim(a,b) __TG_FN2(fdim, (a), (b)) 158 1.1 matt #define floor(a) __TG_FN1(floor, (a)) 159 1.1 matt #define fma(a,b,c) __TG_FN3(fma, (a), (b), (c)) 160 1.1 matt #define fmax(a,b) __TG_FN2(fmax, (a), (b)) 161 1.1 matt #define fmin(a,b) __TG_FN2(fmin, (a), (b)) 162 1.1 matt #define fmod(a,b) __TG_FN2(fmod, (a), (b)) 163 1.1 matt #define frexp(a,b) __TG_FN1x(frexp, (a), (b)) 164 1.1 matt #define hypot(a,b) __TG_FN2(hypot, (a), (b)) 165 1.1 matt #define ilogb(a) __TG_FN1(ilogb, (a)) 166 1.1 matt #define ldexp(a,b) __TG_FN1x(ldexp, (a), (b)) 167 1.1 matt #define lgamma(a) __TG_FN1(lgamma, (a)) 168 1.1 matt #define llrint(a) __TG_FN1(llrint, (a)) 169 1.1 matt #define llround(a) __TG_FN1(llround, (a)) 170 1.1 matt #define log10(a) __TG_FN1(log10, (a)) 171 1.1 matt #define log1p(a) __TG_FN1(log1p, (a)) 172 1.1 matt #define log2(a) __TG_FN1(log2, (a)) 173 1.1 matt #define logb(a) __TG_FN1(logb, (a)) 174 1.1 matt #define lrint(a) __TG_FN1(lrint, (a)) 175 1.1 matt #define lround(a) __TG_FN1(lround, (a)) 176 1.1 matt #define nearbyint(a) __TG_FN1(nearbyint, (a)) 177 1.1 matt #define nextafter(a,b) __TG_FN2(nextafter, (a), (b)) 178 1.1 matt #define nexttoward(a,b) __TG_FN2(nexttoward, (a), (b)) 179 1.1 matt #define remainder(a,b) __TG_FN2(remainder, (a), (b)) 180 1.1 matt #define remquo(a,b,c) __TG_FN2x(remquo, (a), (b), (c)) 181 1.1 matt #define rint(a) __TG_FN1(rint, (a)) 182 1.1 matt #define round(a) __TG_FN1(round, (a)) 183 1.1 matt #define scalbn(a,b) __TG_FN1x(scalbn, (a), (b)) 184 1.1 matt #define scalb1n(a,b) __TG_FN1x(scalb1n, (a), (b)) 185 1.1 matt #define tgamma(a) __TG_FN1(tgamma, (a)) 186 1.1 matt #define trunc(a) __TG_FN1(trunc, (a)) 187 1.1 matt 188 1.1 matt #define carg(a) __TG_CFN1(carg, (a)) 189 1.1 matt #define cimag(a) __TG_CFN1(cimag, (a)) 190 1.1 matt #define conj(a) __TG_CFN1(conj, (a)) 191 1.1 matt #define cproj(a) __TG_CFN1(cproj, (a)) 192 1.1 matt #define creal(a) __TG_CFN1(creal, (a)) 193 1.1 matt 194 1.1 matt #endif /* !_TGMATH_H_ */ 195