10 #ifndef EIGEN_COMPLEX_AVX_H 11 #define EIGEN_COMPLEX_AVX_H 21 EIGEN_STRONG_INLINE
explicit Packet4cf(
const __m256& a) : v(a) {}
58 const __m256 mask = _mm256_castsi256_ps(_mm256_setr_epi32(0x00000000,0x80000000,0x00000000,0x80000000,0x00000000,0x80000000,0x00000000,0x80000000));
59 return Packet4cf(_mm256_xor_ps(a.v,mask));
64 __m256 tmp1 = _mm256_mul_ps(_mm256_moveldup_ps(a.v), b.v);
65 __m256 tmp2 = _mm256_mul_ps(_mm256_movehdup_ps(a.v), _mm256_permute_ps(b.v, _MM_SHUFFLE(2,3,0,1)));
66 __m256 result = _mm256_addsub_ps(tmp1, tmp2);
75 template<> EIGEN_STRONG_INLINE
Packet4cf pload <Packet4cf>(
const std::complex<float>* from) { EIGEN_DEBUG_ALIGNED_LOAD
return Packet4cf(pload<Packet8f>(&numext::real_ref(*from))); }
76 template<> EIGEN_STRONG_INLINE
Packet4cf ploadu<Packet4cf>(
const std::complex<float>* from) { EIGEN_DEBUG_UNALIGNED_LOAD
return Packet4cf(ploadu<Packet8f>(&numext::real_ref(*from))); }
79 template<> EIGEN_STRONG_INLINE
Packet4cf pset1<Packet4cf>(
const std::complex<float>& from)
81 return Packet4cf(_mm256_castpd_ps(_mm256_broadcast_sd((
const double*)(
const void*)&from)));
84 template<> EIGEN_STRONG_INLINE
Packet4cf ploaddup<Packet4cf>(
const std::complex<float>* from)
88 Packet2cf b = ploaddup<Packet2cf>(from+1);
89 return Packet4cf(_mm256_insertf128_ps(_mm256_castps128_ps256(a.v), b.v, 1));
92 template<> EIGEN_STRONG_INLINE
void pstore <std::complex<float> >(std::complex<float>* to,
const Packet4cf& from) { EIGEN_DEBUG_ALIGNED_STORE pstore(&numext::real_ref(*to), from.v); }
93 template<> EIGEN_STRONG_INLINE
void pstoreu<std::complex<float> >(std::complex<float>* to,
const Packet4cf& from) { EIGEN_DEBUG_UNALIGNED_STORE pstoreu(&numext::real_ref(*to), from.v); }
95 template<> EIGEN_DEVICE_FUNC
inline Packet4cf pgather<std::complex<float>,
Packet4cf>(
const std::complex<float>* from,
Index stride)
97 return Packet4cf(_mm256_set_ps(std::imag(from[3*stride]), std::real(from[3*stride]),
98 std::imag(from[2*stride]), std::real(from[2*stride]),
99 std::imag(from[1*stride]), std::real(from[1*stride]),
100 std::imag(from[0*stride]), std::real(from[0*stride])));
103 template<> EIGEN_DEVICE_FUNC
inline void pscatter<std::complex<float>,
Packet4cf>(std::complex<float>* to,
const Packet4cf& from,
Index stride)
105 __m128 low = _mm256_extractf128_ps(from.v, 0);
106 to[stride*0] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(low, low, 0)),
107 _mm_cvtss_f32(_mm_shuffle_ps(low, low, 1)));
108 to[stride*1] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(low, low, 2)),
109 _mm_cvtss_f32(_mm_shuffle_ps(low, low, 3)));
111 __m128 high = _mm256_extractf128_ps(from.v, 1);
112 to[stride*2] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(high, high, 0)),
113 _mm_cvtss_f32(_mm_shuffle_ps(high, high, 1)));
114 to[stride*3] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(high, high, 2)),
115 _mm_cvtss_f32(_mm_shuffle_ps(high, high, 3)));
119 template<> EIGEN_STRONG_INLINE std::complex<float> pfirst<Packet4cf>(
const Packet4cf& a)
121 return pfirst(
Packet2cf(_mm256_castps256_ps128(a.v)));
125 __m128 low = _mm256_extractf128_ps(a.v, 0);
126 __m128 high = _mm256_extractf128_ps(a.v, 1);
127 __m128d lowd = _mm_castps_pd(low);
128 __m128d highd = _mm_castps_pd(high);
129 low = _mm_castpd_ps(_mm_shuffle_pd(lowd,lowd,0x1));
130 high = _mm_castpd_ps(_mm_shuffle_pd(highd,highd,0x1));
131 __m256 result = _mm256_setzero_ps();
132 result = _mm256_insertf128_ps(result, low, 1);
133 result = _mm256_insertf128_ps(result, high, 0);
137 template<> EIGEN_STRONG_INLINE std::complex<float> predux<Packet4cf>(
const Packet4cf& a)
139 return predux(padd(
Packet2cf(_mm256_extractf128_ps(a.v,0)),
140 Packet2cf(_mm256_extractf128_ps(a.v,1))));
145 Packet8f t0 = _mm256_shuffle_ps(vecs[0].v, vecs[0].v, _MM_SHUFFLE(3, 1, 2 ,0));
146 Packet8f t1 = _mm256_shuffle_ps(vecs[1].v, vecs[1].v, _MM_SHUFFLE(3, 1, 2 ,0));
147 t0 = _mm256_hadd_ps(t0,t1);
148 Packet8f t2 = _mm256_shuffle_ps(vecs[2].v, vecs[2].v, _MM_SHUFFLE(3, 1, 2 ,0));
149 Packet8f t3 = _mm256_shuffle_ps(vecs[3].v, vecs[3].v, _MM_SHUFFLE(3, 1, 2 ,0));
150 t2 = _mm256_hadd_ps(t2,t3);
152 t1 = _mm256_permute2f128_ps(t0,t2, 0 + (2<<4));
153 t3 = _mm256_permute2f128_ps(t0,t2, 1 + (3<<4));
158 template<> EIGEN_STRONG_INLINE std::complex<float> predux_mul<Packet4cf>(
const Packet4cf& a)
160 return predux_mul(pmul(
Packet2cf(_mm256_extractf128_ps(a.v, 0)),
161 Packet2cf(_mm256_extractf128_ps(a.v, 1))));
169 if (Offset==0)
return;
177 {
return padd(pmul(x,y),c); }
181 return internal::pmul(a, pconj(b));
188 {
return padd(pmul(x,y),c); }
192 return internal::pmul(pconj(a), b);
199 {
return padd(pmul(x,y),c); }
203 return pconj(internal::pmul(a, b));
210 {
return padd(c, pmul(x,y)); }
213 {
return Packet4cf(Eigen::internal::pmul(x, y.v)); }
219 {
return padd(c, pmul(x,y)); }
222 {
return Packet4cf(Eigen::internal::pmul(x.v, y)); }
228 __m256 tmp = _mm256_mul_ps(b.v, b.v);
229 __m256 tmp2 = _mm256_shuffle_ps(tmp,tmp,0xB1);
230 __m256 denom = _mm256_add_ps(tmp, tmp2);
231 return Packet4cf(_mm256_div_ps(num.v, denom));
236 return Packet4cf(_mm256_shuffle_ps(x.v, x.v, _MM_SHUFFLE(2, 3, 0 ,1)));
243 EIGEN_STRONG_INLINE
explicit Packet2cd(
const __m256d& a) : v(a) {}
277 const __m256d mask = _mm256_castsi256_pd(_mm256_set_epi32(0x80000000,0x0,0x0,0x0,0x80000000,0x0,0x0,0x0));
278 return Packet2cd(_mm256_xor_pd(a.v,mask));
283 __m256d tmp1 = _mm256_shuffle_pd(a.v,a.v,0x0);
284 __m256d even = _mm256_mul_pd(tmp1, b.v);
285 __m256d tmp2 = _mm256_shuffle_pd(a.v,a.v,0xF);
286 __m256d tmp3 = _mm256_shuffle_pd(b.v,b.v,0x5);
287 __m256d odd = _mm256_mul_pd(tmp2, tmp3);
288 return Packet2cd(_mm256_addsub_pd(even, odd));
296 template<> EIGEN_STRONG_INLINE
Packet2cd pload <Packet2cd>(
const std::complex<double>* from)
297 { EIGEN_DEBUG_ALIGNED_LOAD
return Packet2cd(pload<Packet4d>((
const double*)from)); }
298 template<> EIGEN_STRONG_INLINE
Packet2cd ploadu<Packet2cd>(
const std::complex<double>* from)
299 { EIGEN_DEBUG_UNALIGNED_LOAD
return Packet2cd(ploadu<Packet4d>((
const double*)from)); }
301 template<> EIGEN_STRONG_INLINE
Packet2cd pset1<Packet2cd>(
const std::complex<double>& from)
305 return Packet2cd(_mm256_broadcast_pd((
const __m128d*)(
const void*)&from));
308 template<> EIGEN_STRONG_INLINE
Packet2cd ploaddup<Packet2cd>(
const std::complex<double>* from) {
return pset1<Packet2cd>(*from); }
310 template<> EIGEN_STRONG_INLINE
void pstore <std::complex<double> >(std::complex<double> * to,
const Packet2cd& from) { EIGEN_DEBUG_ALIGNED_STORE pstore((
double*)to, from.v); }
311 template<> EIGEN_STRONG_INLINE
void pstoreu<std::complex<double> >(std::complex<double> * to,
const Packet2cd& from) { EIGEN_DEBUG_UNALIGNED_STORE pstoreu((
double*)to, from.v); }
313 template<> EIGEN_DEVICE_FUNC
inline Packet2cd pgather<std::complex<double>,
Packet2cd>(
const std::complex<double>* from,
Index stride)
315 return Packet2cd(_mm256_set_pd(std::imag(from[1*stride]), std::real(from[1*stride]),
316 std::imag(from[0*stride]), std::real(from[0*stride])));
319 template<> EIGEN_DEVICE_FUNC
inline void pscatter<std::complex<double>,
Packet2cd>(std::complex<double>* to,
const Packet2cd& from,
Index stride)
321 __m128d low = _mm256_extractf128_pd(from.v, 0);
322 to[stride*0] = std::complex<double>(_mm_cvtsd_f64(low), _mm_cvtsd_f64(_mm_shuffle_pd(low, low, 1)));
323 __m128d high = _mm256_extractf128_pd(from.v, 1);
324 to[stride*1] = std::complex<double>(_mm_cvtsd_f64(high), _mm_cvtsd_f64(_mm_shuffle_pd(high, high, 1)));
327 template<> EIGEN_STRONG_INLINE std::complex<double> pfirst<Packet2cd>(
const Packet2cd& a)
329 __m128d low = _mm256_extractf128_pd(a.v, 0);
330 EIGEN_ALIGN16
double res[2];
331 _mm_store_pd(res, low);
332 return std::complex<double>(res[0],res[1]);
336 __m256d result = _mm256_permute2f128_pd(a.v, a.v, 1);
340 template<> EIGEN_STRONG_INLINE std::complex<double> predux<Packet2cd>(
const Packet2cd& a)
342 return predux(padd(
Packet1cd(_mm256_extractf128_pd(a.v,0)),
343 Packet1cd(_mm256_extractf128_pd(a.v,1))));
348 Packet4d t0 = _mm256_permute2f128_pd(vecs[0].v,vecs[1].v, 0 + (2<<4));
349 Packet4d t1 = _mm256_permute2f128_pd(vecs[0].v,vecs[1].v, 1 + (3<<4));
354 template<> EIGEN_STRONG_INLINE std::complex<double> predux_mul<Packet2cd>(
const Packet2cd& a)
356 return predux(pmul(
Packet1cd(_mm256_extractf128_pd(a.v,0)),
357 Packet1cd(_mm256_extractf128_pd(a.v,1))));
365 if (Offset==0)
return;
373 {
return padd(pmul(x,y),c); }
377 return internal::pmul(a, pconj(b));
384 {
return padd(pmul(x,y),c); }
388 return internal::pmul(pconj(a), b);
395 {
return padd(pmul(x,y),c); }
399 return pconj(internal::pmul(a, b));
406 {
return padd(c, pmul(x,y)); }
409 {
return Packet2cd(Eigen::internal::pmul(x, y.v)); }
415 {
return padd(c, pmul(x,y)); }
418 {
return Packet2cd(Eigen::internal::pmul(x.v, y)); }
424 __m256d tmp = _mm256_mul_pd(b.v, b.v);
425 __m256d denom = _mm256_hadd_pd(tmp, tmp);
426 return Packet2cd(_mm256_div_pd(num.v, denom));
431 return Packet2cd(_mm256_shuffle_pd(x.v, x.v, 0x5));
434 EIGEN_DEVICE_FUNC
inline void 436 __m256d P0 = _mm256_castps_pd(kernel.packet[0].v);
437 __m256d P1 = _mm256_castps_pd(kernel.packet[1].v);
438 __m256d P2 = _mm256_castps_pd(kernel.packet[2].v);
439 __m256d P3 = _mm256_castps_pd(kernel.packet[3].v);
441 __m256d T0 = _mm256_shuffle_pd(P0, P1, 15);
442 __m256d T1 = _mm256_shuffle_pd(P0, P1, 0);
443 __m256d T2 = _mm256_shuffle_pd(P2, P3, 15);
444 __m256d T3 = _mm256_shuffle_pd(P2, P3, 0);
446 kernel.packet[1].v = _mm256_castpd_ps(_mm256_permute2f128_pd(T0, T2, 32));
447 kernel.packet[3].v = _mm256_castpd_ps(_mm256_permute2f128_pd(T0, T2, 49));
448 kernel.packet[0].v = _mm256_castpd_ps(_mm256_permute2f128_pd(T1, T3, 32));
449 kernel.packet[2].v = _mm256_castpd_ps(_mm256_permute2f128_pd(T1, T3, 49));
452 EIGEN_DEVICE_FUNC
inline void 454 __m256d tmp = _mm256_permute2f128_pd(kernel.packet[0].v, kernel.packet[1].v, 0+(2<<4));
455 kernel.packet[1].v = _mm256_permute2f128_pd(kernel.packet[0].v, kernel.packet[1].v, 1+(3<<4));
456 kernel.packet[0].v = tmp;
459 template<> EIGEN_STRONG_INLINE
Packet4cf pinsertfirst(
const Packet4cf& a, std::complex<float> b)
461 return Packet4cf(_mm256_blend_ps(a.v,pset1<Packet4cf>(b).v,1|2));
464 template<> EIGEN_STRONG_INLINE
Packet2cd pinsertfirst(
const Packet2cd& a, std::complex<double> b)
466 return Packet2cd(_mm256_blend_pd(a.v,pset1<Packet2cd>(b).v,1|2));
469 template<> EIGEN_STRONG_INLINE
Packet4cf pinsertlast(
const Packet4cf& a, std::complex<float> b)
471 return Packet4cf(_mm256_blend_ps(a.v,pset1<Packet4cf>(b).v,(1<<7)|(1<<6)));
474 template<> EIGEN_STRONG_INLINE
Packet2cd pinsertlast(
const Packet2cd& a, std::complex<double> b)
476 return Packet2cd(_mm256_blend_pd(a.v,pset1<Packet2cd>(b).v,(1<<3)|(1<<2)));
483 #endif // EIGEN_COMPLEX_AVX_H
Definition: BlasUtil.h:61
Definition: XprHelper.h:158
Namespace containing all symbols from the Eigen library.
Definition: bench_norm.cpp:85
Data pointer is aligned on a 32 bytes boundary.
Definition: Constants.h:231
Definition: Complex.h:240
Definition: GenericPacketMath.h:96
Definition: Complex.h:265
Definition: GenericPacketMath.h:42
EIGEN_DEFAULT_DENSE_INDEX_TYPE Index
The Index type as used for the API.
Definition: Meta.h:33
Definition: GenericPacketMath.h:539
Definition: BandTriangularSolver.h:13
Definition: datatypes.h:12
Definition: GenericPacketMath.h:492