annotate src/fftw-3.3.8/simd-support/simd-altivec.h @ 84:08ae793730bd

Add null config files
author Chris Cannam
date Mon, 02 Mar 2020 14:03:47 +0000
parents d0c2a83c1364
children
rev   line source
Chris@82 1 /*
Chris@82 2 * Copyright (c) 2003, 2007-14 Matteo Frigo
Chris@82 3 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
Chris@82 4 *
Chris@82 5 * This program is free software; you can redistribute it and/or modify
Chris@82 6 * it under the terms of the GNU General Public License as published by
Chris@82 7 * the Free Software Foundation; either version 2 of the License, or
Chris@82 8 * (at your option) any later version.
Chris@82 9 *
Chris@82 10 * This program is distributed in the hope that it will be useful,
Chris@82 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
Chris@82 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
Chris@82 13 * GNU General Public License for more details.
Chris@82 14 *
Chris@82 15 * You should have received a copy of the GNU General Public License
Chris@82 16 * along with this program; if not, write to the Free Software
Chris@82 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
Chris@82 18 *
Chris@82 19 */
Chris@82 20
Chris@82 21 #ifndef FFTW_SINGLE
Chris@82 22 #error "ALTIVEC only works in single precision"
Chris@82 23 #endif
Chris@82 24
Chris@82 25 /* define these unconditionally, because they are used by
Chris@82 26 taint.c which is compiled without altivec */
Chris@82 27 #define SIMD_SUFFIX _altivec /* for renaming */
Chris@82 28 #define VL 2 /* SIMD complex vector length */
Chris@82 29 #define SIMD_VSTRIDE_OKA(x) ((x) == 2)
Chris@82 30 #define SIMD_STRIDE_OKPAIR SIMD_STRIDE_OKA
Chris@82 31
Chris@82 32 #if !defined(__VEC__) && !defined(FAKE__VEC__)
Chris@82 33 # error "compiling simd-altivec.h requires -maltivec or equivalent"
Chris@82 34 #endif
Chris@82 35
Chris@82 36 #ifdef HAVE_ALTIVEC_H
Chris@82 37 # include <altivec.h>
Chris@82 38 #endif
Chris@82 39
Chris@82 40 typedef vector float V;
Chris@82 41 #define VLIT(x0, x1, x2, x3) {x0, x1, x2, x3}
Chris@82 42 #define LDK(x) x
Chris@82 43 #define DVK(var, val) const V var = VLIT(val, val, val, val)
Chris@82 44
Chris@82 45 static inline V VADD(V a, V b) { return vec_add(a, b); }
Chris@82 46 static inline V VSUB(V a, V b) { return vec_sub(a, b); }
Chris@82 47 static inline V VFMA(V a, V b, V c) { return vec_madd(a, b, c); }
Chris@82 48 static inline V VFNMS(V a, V b, V c) { return vec_nmsub(a, b, c); }
Chris@82 49
Chris@82 50 static inline V VMUL(V a, V b)
Chris@82 51 {
Chris@82 52 DVK(zero, -0.0);
Chris@82 53 return VFMA(a, b, zero);
Chris@82 54 }
Chris@82 55
Chris@82 56 static inline V VFMS(V a, V b, V c) { return VSUB(VMUL(a, b), c); }
Chris@82 57
Chris@82 58 static inline V LDA(const R *x, INT ivs, const R *aligned_like)
Chris@82 59 {
Chris@82 60 UNUSED(ivs);
Chris@82 61 UNUSED(aligned_like);
Chris@82 62 return vec_ld(0, x);
Chris@82 63 }
Chris@82 64
Chris@82 65 static inline V LD(const R *x, INT ivs, const R *aligned_like)
Chris@82 66 {
Chris@82 67 /* common subexpressions */
Chris@82 68 const INT fivs = sizeof(R) * ivs;
Chris@82 69 /* you are not expected to understand this: */
Chris@82 70 const vector unsigned int perm = VLIT(0, 0, 0xFFFFFFFF, 0xFFFFFFFF);
Chris@82 71 vector unsigned char ml = vec_lvsr(fivs + 8, aligned_like);
Chris@82 72 vector unsigned char mh = vec_lvsl(0, aligned_like);
Chris@82 73 vector unsigned char msk =
Chris@82 74 (vector unsigned char)vec_sel((V)mh, (V)ml, perm);
Chris@82 75 /* end of common subexpressions */
Chris@82 76
Chris@82 77 return vec_perm(vec_ld(0, x), vec_ld(fivs, x), msk);
Chris@82 78 }
Chris@82 79
Chris@82 80 /* store lower half */
Chris@82 81 static inline void STH(R *x, V v, R *aligned_like)
Chris@82 82 {
Chris@82 83 v = vec_perm(v, v, vec_lvsr(0, aligned_like));
Chris@82 84 vec_ste(v, 0, x);
Chris@82 85 vec_ste(v, sizeof(R), x);
Chris@82 86 }
Chris@82 87
Chris@82 88 static inline void STL(R *x, V v, INT ovs, R *aligned_like)
Chris@82 89 {
Chris@82 90 const INT fovs = sizeof(R) * ovs;
Chris@82 91 v = vec_perm(v, v, vec_lvsr(fovs + 8, aligned_like));
Chris@82 92 vec_ste(v, fovs, x);
Chris@82 93 vec_ste(v, sizeof(R) + fovs, x);
Chris@82 94 }
Chris@82 95
Chris@82 96 static inline void STA(R *x, V v, INT ovs, R *aligned_like)
Chris@82 97 {
Chris@82 98 UNUSED(ovs);
Chris@82 99 UNUSED(aligned_like);
Chris@82 100 vec_st(v, 0, x);
Chris@82 101 }
Chris@82 102
Chris@82 103 static inline void ST(R *x, V v, INT ovs, R *aligned_like)
Chris@82 104 {
Chris@82 105 /* WARNING: the extra_iter hack depends upon STH occurring after
Chris@82 106 STL */
Chris@82 107 STL(x, v, ovs, aligned_like);
Chris@82 108 STH(x, v, aligned_like);
Chris@82 109 }
Chris@82 110
Chris@82 111 #define STM2(x, v, ovs, aligned_like) /* no-op */
Chris@82 112
Chris@82 113 static inline void STN2(R *x, V v0, V v1, INT ovs)
Chris@82 114 {
Chris@82 115 const INT fovs = sizeof(R) * ovs;
Chris@82 116 const vector unsigned int even =
Chris@82 117 VLIT(0x00010203, 0x04050607, 0x10111213, 0x14151617);
Chris@82 118 const vector unsigned int odd =
Chris@82 119 VLIT(0x08090a0b, 0x0c0d0e0f, 0x18191a1b, 0x1c1d1e1f);
Chris@82 120 vec_st(vec_perm(v0, v1, (vector unsigned char)even), 0, x);
Chris@82 121 vec_st(vec_perm(v0, v1, (vector unsigned char)odd), fovs, x);
Chris@82 122 }
Chris@82 123
Chris@82 124 #define STM4(x, v, ovs, aligned_like) /* no-op */
Chris@82 125
Chris@82 126 static inline void STN4(R *x, V v0, V v1, V v2, V v3, INT ovs)
Chris@82 127 {
Chris@82 128 const INT fovs = sizeof(R) * ovs;
Chris@82 129 V x0 = vec_mergeh(v0, v2);
Chris@82 130 V x1 = vec_mergel(v0, v2);
Chris@82 131 V x2 = vec_mergeh(v1, v3);
Chris@82 132 V x3 = vec_mergel(v1, v3);
Chris@82 133 V y0 = vec_mergeh(x0, x2);
Chris@82 134 V y1 = vec_mergel(x0, x2);
Chris@82 135 V y2 = vec_mergeh(x1, x3);
Chris@82 136 V y3 = vec_mergel(x1, x3);
Chris@82 137 vec_st(y0, 0, x);
Chris@82 138 vec_st(y1, fovs, x);
Chris@82 139 vec_st(y2, 2 * fovs, x);
Chris@82 140 vec_st(y3, 3 * fovs, x);
Chris@82 141 }
Chris@82 142
Chris@82 143 static inline V FLIP_RI(V x)
Chris@82 144 {
Chris@82 145 const vector unsigned int perm =
Chris@82 146 VLIT(0x04050607, 0x00010203, 0x0c0d0e0f, 0x08090a0b);
Chris@82 147 return vec_perm(x, x, (vector unsigned char)perm);
Chris@82 148 }
Chris@82 149
Chris@82 150 static inline V VCONJ(V x)
Chris@82 151 {
Chris@82 152 const V pmpm = VLIT(0.0, -0.0, 0.0, -0.0);
Chris@82 153 return vec_xor(x, pmpm);
Chris@82 154 }
Chris@82 155
Chris@82 156 static inline V VBYI(V x)
Chris@82 157 {
Chris@82 158 return FLIP_RI(VCONJ(x));
Chris@82 159 }
Chris@82 160
Chris@82 161 static inline V VFMAI(V b, V c)
Chris@82 162 {
Chris@82 163 const V mpmp = VLIT(-1.0, 1.0, -1.0, 1.0);
Chris@82 164 return VFMA(FLIP_RI(b), mpmp, c);
Chris@82 165 }
Chris@82 166
Chris@82 167 static inline V VFNMSI(V b, V c)
Chris@82 168 {
Chris@82 169 const V mpmp = VLIT(-1.0, 1.0, -1.0, 1.0);
Chris@82 170 return VFNMS(FLIP_RI(b), mpmp, c);
Chris@82 171 }
Chris@82 172
Chris@82 173 static inline V VFMACONJ(V b, V c)
Chris@82 174 {
Chris@82 175 const V pmpm = VLIT(1.0, -1.0, 1.0, -1.0);
Chris@82 176 return VFMA(b, pmpm, c);
Chris@82 177 }
Chris@82 178
Chris@82 179 static inline V VFNMSCONJ(V b, V c)
Chris@82 180 {
Chris@82 181 const V pmpm = VLIT(1.0, -1.0, 1.0, -1.0);
Chris@82 182 return VFNMS(b, pmpm, c);
Chris@82 183 }
Chris@82 184
Chris@82 185 static inline V VFMSCONJ(V b, V c)
Chris@82 186 {
Chris@82 187 return VSUB(VCONJ(b), c);
Chris@82 188 }
Chris@82 189
Chris@82 190 static inline V VZMUL(V tx, V sr)
Chris@82 191 {
Chris@82 192 const vector unsigned int real =
Chris@82 193 VLIT(0x00010203, 0x00010203, 0x08090a0b, 0x08090a0b);
Chris@82 194 const vector unsigned int imag =
Chris@82 195 VLIT(0x04050607, 0x04050607, 0x0c0d0e0f, 0x0c0d0e0f);
Chris@82 196 V si = VBYI(sr);
Chris@82 197 V tr = vec_perm(tx, tx, (vector unsigned char)real);
Chris@82 198 V ti = vec_perm(tx, tx, (vector unsigned char)imag);
Chris@82 199 return VFMA(ti, si, VMUL(tr, sr));
Chris@82 200 }
Chris@82 201
Chris@82 202 static inline V VZMULJ(V tx, V sr)
Chris@82 203 {
Chris@82 204 const vector unsigned int real =
Chris@82 205 VLIT(0x00010203, 0x00010203, 0x08090a0b, 0x08090a0b);
Chris@82 206 const vector unsigned int imag =
Chris@82 207 VLIT(0x04050607, 0x04050607, 0x0c0d0e0f, 0x0c0d0e0f);
Chris@82 208 V si = VBYI(sr);
Chris@82 209 V tr = vec_perm(tx, tx, (vector unsigned char)real);
Chris@82 210 V ti = vec_perm(tx, tx, (vector unsigned char)imag);
Chris@82 211 return VFNMS(ti, si, VMUL(tr, sr));
Chris@82 212 }
Chris@82 213
Chris@82 214 static inline V VZMULI(V tx, V si)
Chris@82 215 {
Chris@82 216 const vector unsigned int real =
Chris@82 217 VLIT(0x00010203, 0x00010203, 0x08090a0b, 0x08090a0b);
Chris@82 218 const vector unsigned int imag =
Chris@82 219 VLIT(0x04050607, 0x04050607, 0x0c0d0e0f, 0x0c0d0e0f);
Chris@82 220 V sr = VBYI(si);
Chris@82 221 V tr = vec_perm(tx, tx, (vector unsigned char)real);
Chris@82 222 V ti = vec_perm(tx, tx, (vector unsigned char)imag);
Chris@82 223 return VFNMS(ti, si, VMUL(tr, sr));
Chris@82 224 }
Chris@82 225
Chris@82 226 static inline V VZMULIJ(V tx, V si)
Chris@82 227 {
Chris@82 228 const vector unsigned int real =
Chris@82 229 VLIT(0x00010203, 0x00010203, 0x08090a0b, 0x08090a0b);
Chris@82 230 const vector unsigned int imag =
Chris@82 231 VLIT(0x04050607, 0x04050607, 0x0c0d0e0f, 0x0c0d0e0f);
Chris@82 232 V sr = VBYI(si);
Chris@82 233 V tr = vec_perm(tx, tx, (vector unsigned char)real);
Chris@82 234 V ti = vec_perm(tx, tx, (vector unsigned char)imag);
Chris@82 235 return VFMA(ti, si, VMUL(tr, sr));
Chris@82 236 }
Chris@82 237
Chris@82 238 /* twiddle storage #1: compact, slower */
Chris@82 239 #define VTW1(v,x) \
Chris@82 240 {TW_COS, v, x}, {TW_COS, v+1, x}, {TW_SIN, v, x}, {TW_SIN, v+1, x}
Chris@82 241 #define TWVL1 (VL)
Chris@82 242
Chris@82 243 static inline V BYTW1(const R *t, V sr)
Chris@82 244 {
Chris@82 245 const V *twp = (const V *)t;
Chris@82 246 V si = VBYI(sr);
Chris@82 247 V tx = twp[0];
Chris@82 248 V tr = vec_mergeh(tx, tx);
Chris@82 249 V ti = vec_mergel(tx, tx);
Chris@82 250 return VFMA(ti, si, VMUL(tr, sr));
Chris@82 251 }
Chris@82 252
Chris@82 253 static inline V BYTWJ1(const R *t, V sr)
Chris@82 254 {
Chris@82 255 const V *twp = (const V *)t;
Chris@82 256 V si = VBYI(sr);
Chris@82 257 V tx = twp[0];
Chris@82 258 V tr = vec_mergeh(tx, tx);
Chris@82 259 V ti = vec_mergel(tx, tx);
Chris@82 260 return VFNMS(ti, si, VMUL(tr, sr));
Chris@82 261 }
Chris@82 262
Chris@82 263 /* twiddle storage #2: twice the space, faster (when in cache) */
Chris@82 264 #define VTW2(v,x) \
Chris@82 265 {TW_COS, v, x}, {TW_COS, v, x}, {TW_COS, v+1, x}, {TW_COS, v+1, x}, \
Chris@82 266 {TW_SIN, v, -x}, {TW_SIN, v, x}, {TW_SIN, v+1, -x}, {TW_SIN, v+1, x}
Chris@82 267 #define TWVL2 (2 * VL)
Chris@82 268
Chris@82 269 static inline V BYTW2(const R *t, V sr)
Chris@82 270 {
Chris@82 271 const V *twp = (const V *)t;
Chris@82 272 V si = FLIP_RI(sr);
Chris@82 273 V tr = twp[0], ti = twp[1];
Chris@82 274 return VFMA(ti, si, VMUL(tr, sr));
Chris@82 275 }
Chris@82 276
Chris@82 277 static inline V BYTWJ2(const R *t, V sr)
Chris@82 278 {
Chris@82 279 const V *twp = (const V *)t;
Chris@82 280 V si = FLIP_RI(sr);
Chris@82 281 V tr = twp[0], ti = twp[1];
Chris@82 282 return VFNMS(ti, si, VMUL(tr, sr));
Chris@82 283 }
Chris@82 284
Chris@82 285 /* twiddle storage #3 */
Chris@82 286 #define VTW3(v,x) {TW_CEXP, v, x}, {TW_CEXP, v+1, x}
Chris@82 287 #define TWVL3 (VL)
Chris@82 288
Chris@82 289 /* twiddle storage for split arrays */
Chris@82 290 #define VTWS(v,x) \
Chris@82 291 {TW_COS, v, x}, {TW_COS, v+1, x}, {TW_COS, v+2, x}, {TW_COS, v+3, x}, \
Chris@82 292 {TW_SIN, v, x}, {TW_SIN, v+1, x}, {TW_SIN, v+2, x}, {TW_SIN, v+3, x}
Chris@82 293 #define TWVLS (2 * VL)
Chris@82 294
Chris@82 295 #define VLEAVE() /* nothing */
Chris@82 296
Chris@82 297 #include "simd-common.h"