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472 lines
19 KiB
C++
472 lines
19 KiB
C++
// This file is part of Eigen, a lightweight C++ template library
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// for linear algebra.
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//
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// Copyright (C) 2010 Gael Guennebaud <gael.guennebaud@inria.fr>
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//
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// This Source Code Form is subject to the terms of the Mozilla
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// Public License v. 2.0. If a copy of the MPL was not distributed
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// with this file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#ifndef EIGEN_COMPLEX_SSE_H
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#define EIGEN_COMPLEX_SSE_H
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namespace Eigen {
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namespace internal {
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//---------- float ----------
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struct Packet2cf
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{
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EIGEN_STRONG_INLINE Packet2cf() {}
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EIGEN_STRONG_INLINE explicit Packet2cf(const __m128& a) : v(a) {}
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__m128 v;
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};
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// Use the packet_traits defined in AVX/PacketMath.h instead if we're going
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// to leverage AVX instructions.
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#ifndef EIGEN_VECTORIZE_AVX
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template<> struct packet_traits<std::complex<float> > : default_packet_traits
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{
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typedef Packet2cf type;
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typedef Packet2cf half;
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enum {
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Vectorizable = 1,
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AlignedOnScalar = 1,
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size = 2,
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HasHalfPacket = 0,
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HasAdd = 1,
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HasSub = 1,
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HasMul = 1,
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HasDiv = 1,
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HasNegate = 1,
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HasAbs = 0,
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HasAbs2 = 0,
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HasMin = 0,
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HasMax = 0,
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HasSetLinear = 0,
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HasBlend = 1
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};
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};
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#endif
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template<> struct unpacket_traits<Packet2cf> { typedef std::complex<float> type; enum {size=2, alignment=Aligned16}; typedef Packet2cf half; };
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template<> EIGEN_STRONG_INLINE Packet2cf padd<Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_add_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf psub<Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_sub_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf pnegate(const Packet2cf& a)
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{
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x80000000,0x80000000,0x80000000,0x80000000));
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return Packet2cf(_mm_xor_ps(a.v,mask));
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}
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template<> EIGEN_STRONG_INLINE Packet2cf pconj(const Packet2cf& a)
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{
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x00000000,0x80000000,0x00000000,0x80000000));
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return Packet2cf(_mm_xor_ps(a.v,mask));
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}
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template<> EIGEN_STRONG_INLINE Packet2cf pmul<Packet2cf>(const Packet2cf& a, const Packet2cf& b)
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return Packet2cf(_mm_addsub_ps(_mm_mul_ps(_mm_moveldup_ps(a.v), b.v),
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_mm_mul_ps(_mm_movehdup_ps(a.v),
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vec4f_swizzle1(b.v, 1, 0, 3, 2))));
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// return Packet2cf(_mm_addsub_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 0, 0, 2, 2), b.v),
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// _mm_mul_ps(vec4f_swizzle1(a.v, 1, 1, 3, 3),
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// vec4f_swizzle1(b.v, 1, 0, 3, 2))));
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#else
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x80000000,0x00000000,0x80000000,0x00000000));
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return Packet2cf(_mm_add_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 0, 0, 2, 2), b.v),
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_mm_xor_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 1, 1, 3, 3),
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vec4f_swizzle1(b.v, 1, 0, 3, 2)), mask)));
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#endif
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}
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template<> EIGEN_STRONG_INLINE Packet2cf pand <Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_and_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf por <Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_or_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf pxor <Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_xor_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf pandnot<Packet2cf>(const Packet2cf& a, const Packet2cf& b) { return Packet2cf(_mm_andnot_ps(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet2cf pload <Packet2cf>(const std::complex<float>* from) { EIGEN_DEBUG_ALIGNED_LOAD return Packet2cf(pload<Packet4f>(&numext::real_ref(*from))); }
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template<> EIGEN_STRONG_INLINE Packet2cf ploadu<Packet2cf>(const std::complex<float>* from) { EIGEN_DEBUG_UNALIGNED_LOAD return Packet2cf(ploadu<Packet4f>(&numext::real_ref(*from))); }
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template<> EIGEN_STRONG_INLINE Packet2cf pset1<Packet2cf>(const std::complex<float>& from)
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{
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Packet2cf res;
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#if EIGEN_GNUC_AT_MOST(4,2)
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// Workaround annoying "may be used uninitialized in this function" warning with gcc 4.2
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res.v = _mm_loadl_pi(_mm_set1_ps(0.0f), reinterpret_cast<const __m64*>(&from));
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#elif EIGEN_GNUC_AT_LEAST(4,6)
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// Suppress annoying "may be used uninitialized in this function" warning with gcc >= 4.6
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#pragma GCC diagnostic push
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#pragma GCC diagnostic ignored "-Wuninitialized"
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res.v = _mm_loadl_pi(res.v, (const __m64*)&from);
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#pragma GCC diagnostic pop
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#else
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res.v = _mm_loadl_pi(res.v, (const __m64*)&from);
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#endif
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return Packet2cf(_mm_movelh_ps(res.v,res.v));
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}
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template<> EIGEN_STRONG_INLINE Packet2cf ploaddup<Packet2cf>(const std::complex<float>* from) { return pset1<Packet2cf>(*from); }
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template<> EIGEN_STRONG_INLINE void pstore <std::complex<float> >(std::complex<float> * to, const Packet2cf& from) { EIGEN_DEBUG_ALIGNED_STORE pstore(&numext::real_ref(*to), Packet4f(from.v)); }
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template<> EIGEN_STRONG_INLINE void pstoreu<std::complex<float> >(std::complex<float> * to, const Packet2cf& from) { EIGEN_DEBUG_UNALIGNED_STORE pstoreu(&numext::real_ref(*to), Packet4f(from.v)); }
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template<> EIGEN_DEVICE_FUNC inline Packet2cf pgather<std::complex<float>, Packet2cf>(const std::complex<float>* from, Index stride)
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{
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return Packet2cf(_mm_set_ps(std::imag(from[1*stride]), std::real(from[1*stride]),
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std::imag(from[0*stride]), std::real(from[0*stride])));
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}
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template<> EIGEN_DEVICE_FUNC inline void pscatter<std::complex<float>, Packet2cf>(std::complex<float>* to, const Packet2cf& from, Index stride)
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{
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to[stride*0] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(from.v, from.v, 0)),
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_mm_cvtss_f32(_mm_shuffle_ps(from.v, from.v, 1)));
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to[stride*1] = std::complex<float>(_mm_cvtss_f32(_mm_shuffle_ps(from.v, from.v, 2)),
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_mm_cvtss_f32(_mm_shuffle_ps(from.v, from.v, 3)));
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}
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template<> EIGEN_STRONG_INLINE void prefetch<std::complex<float> >(const std::complex<float> * addr) { _mm_prefetch((SsePrefetchPtrType)(addr), _MM_HINT_T0); }
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template<> EIGEN_STRONG_INLINE std::complex<float> pfirst<Packet2cf>(const Packet2cf& a)
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{
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#if EIGEN_GNUC_AT_MOST(4,3)
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// Workaround gcc 4.2 ICE - this is not performance wise ideal, but who cares...
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// This workaround also fix invalid code generation with gcc 4.3
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EIGEN_ALIGN16 std::complex<float> res[2];
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_mm_store_ps((float*)res, a.v);
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return res[0];
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#else
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std::complex<float> res;
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_mm_storel_pi((__m64*)&res, a.v);
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return res;
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#endif
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}
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template<> EIGEN_STRONG_INLINE Packet2cf preverse(const Packet2cf& a) { return Packet2cf(_mm_castpd_ps(preverse(Packet2d(_mm_castps_pd(a.v))))); }
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template<> EIGEN_STRONG_INLINE std::complex<float> predux<Packet2cf>(const Packet2cf& a)
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{
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return pfirst(Packet2cf(_mm_add_ps(a.v, _mm_movehl_ps(a.v,a.v))));
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}
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template<> EIGEN_STRONG_INLINE Packet2cf preduxp<Packet2cf>(const Packet2cf* vecs)
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{
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return Packet2cf(_mm_add_ps(_mm_movelh_ps(vecs[0].v,vecs[1].v), _mm_movehl_ps(vecs[1].v,vecs[0].v)));
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}
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template<> EIGEN_STRONG_INLINE std::complex<float> predux_mul<Packet2cf>(const Packet2cf& a)
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{
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return pfirst(pmul(a, Packet2cf(_mm_movehl_ps(a.v,a.v))));
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}
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template<int Offset>
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struct palign_impl<Offset,Packet2cf>
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{
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static EIGEN_STRONG_INLINE void run(Packet2cf& first, const Packet2cf& second)
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{
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if (Offset==1)
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{
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first.v = _mm_movehl_ps(first.v, first.v);
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first.v = _mm_movelh_ps(first.v, second.v);
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}
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}
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};
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template<> struct conj_helper<Packet2cf, Packet2cf, false,true>
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{
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EIGEN_STRONG_INLINE Packet2cf pmadd(const Packet2cf& x, const Packet2cf& y, const Packet2cf& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet2cf pmul(const Packet2cf& a, const Packet2cf& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return internal::pmul(a, pconj(b));
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#else
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x00000000,0x80000000,0x00000000,0x80000000));
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return Packet2cf(_mm_add_ps(_mm_xor_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 0, 0, 2, 2), b.v), mask),
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_mm_mul_ps(vec4f_swizzle1(a.v, 1, 1, 3, 3),
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vec4f_swizzle1(b.v, 1, 0, 3, 2))));
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#endif
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}
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};
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template<> struct conj_helper<Packet2cf, Packet2cf, true,false>
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{
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EIGEN_STRONG_INLINE Packet2cf pmadd(const Packet2cf& x, const Packet2cf& y, const Packet2cf& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet2cf pmul(const Packet2cf& a, const Packet2cf& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return internal::pmul(pconj(a), b);
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#else
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x00000000,0x80000000,0x00000000,0x80000000));
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return Packet2cf(_mm_add_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 0, 0, 2, 2), b.v),
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_mm_xor_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 1, 1, 3, 3),
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vec4f_swizzle1(b.v, 1, 0, 3, 2)), mask)));
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#endif
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}
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};
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template<> struct conj_helper<Packet2cf, Packet2cf, true,true>
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{
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EIGEN_STRONG_INLINE Packet2cf pmadd(const Packet2cf& x, const Packet2cf& y, const Packet2cf& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet2cf pmul(const Packet2cf& a, const Packet2cf& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return pconj(internal::pmul(a, b));
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#else
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const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0x00000000,0x80000000,0x00000000,0x80000000));
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return Packet2cf(_mm_sub_ps(_mm_xor_ps(_mm_mul_ps(vec4f_swizzle1(a.v, 0, 0, 2, 2), b.v), mask),
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_mm_mul_ps(vec4f_swizzle1(a.v, 1, 1, 3, 3),
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vec4f_swizzle1(b.v, 1, 0, 3, 2))));
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#endif
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}
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};
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EIGEN_MAKE_CONJ_HELPER_CPLX_REAL(Packet2cf,Packet4f)
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template<> EIGEN_STRONG_INLINE Packet2cf pdiv<Packet2cf>(const Packet2cf& a, const Packet2cf& b)
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{
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// TODO optimize it for SSE3 and 4
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Packet2cf res = conj_helper<Packet2cf,Packet2cf,false,true>().pmul(a,b);
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__m128 s = _mm_mul_ps(b.v,b.v);
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return Packet2cf(_mm_div_ps(res.v,_mm_add_ps(s,_mm_castsi128_ps(_mm_shuffle_epi32(_mm_castps_si128(s), 0xb1)))));
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}
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EIGEN_STRONG_INLINE Packet2cf pcplxflip/* <Packet2cf> */(const Packet2cf& x)
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{
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return Packet2cf(vec4f_swizzle1(x.v, 1, 0, 3, 2));
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}
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//---------- double ----------
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struct Packet1cd
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{
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EIGEN_STRONG_INLINE Packet1cd() {}
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EIGEN_STRONG_INLINE explicit Packet1cd(const __m128d& a) : v(a) {}
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__m128d v;
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};
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// Use the packet_traits defined in AVX/PacketMath.h instead if we're going
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// to leverage AVX instructions.
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#ifndef EIGEN_VECTORIZE_AVX
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template<> struct packet_traits<std::complex<double> > : default_packet_traits
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{
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typedef Packet1cd type;
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typedef Packet1cd half;
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enum {
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Vectorizable = 1,
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AlignedOnScalar = 0,
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size = 1,
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HasHalfPacket = 0,
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HasAdd = 1,
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HasSub = 1,
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HasMul = 1,
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HasDiv = 1,
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HasNegate = 1,
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HasAbs = 0,
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HasAbs2 = 0,
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HasMin = 0,
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HasMax = 0,
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HasSetLinear = 0
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};
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};
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#endif
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template<> struct unpacket_traits<Packet1cd> { typedef std::complex<double> type; enum {size=1, alignment=Aligned16}; typedef Packet1cd half; };
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template<> EIGEN_STRONG_INLINE Packet1cd padd<Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_add_pd(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet1cd psub<Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_sub_pd(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet1cd pnegate(const Packet1cd& a) { return Packet1cd(pnegate(Packet2d(a.v))); }
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template<> EIGEN_STRONG_INLINE Packet1cd pconj(const Packet1cd& a)
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{
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const __m128d mask = _mm_castsi128_pd(_mm_set_epi32(0x80000000,0x0,0x0,0x0));
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return Packet1cd(_mm_xor_pd(a.v,mask));
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}
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template<> EIGEN_STRONG_INLINE Packet1cd pmul<Packet1cd>(const Packet1cd& a, const Packet1cd& b)
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return Packet1cd(_mm_addsub_pd(_mm_mul_pd(_mm_movedup_pd(a.v), b.v),
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_mm_mul_pd(vec2d_swizzle1(a.v, 1, 1),
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vec2d_swizzle1(b.v, 1, 0))));
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#else
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const __m128d mask = _mm_castsi128_pd(_mm_set_epi32(0x0,0x0,0x80000000,0x0));
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return Packet1cd(_mm_add_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 0, 0), b.v),
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_mm_xor_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 1, 1),
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vec2d_swizzle1(b.v, 1, 0)), mask)));
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#endif
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}
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template<> EIGEN_STRONG_INLINE Packet1cd pand <Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_and_pd(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet1cd por <Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_or_pd(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet1cd pxor <Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_xor_pd(a.v,b.v)); }
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template<> EIGEN_STRONG_INLINE Packet1cd pandnot<Packet1cd>(const Packet1cd& a, const Packet1cd& b) { return Packet1cd(_mm_andnot_pd(a.v,b.v)); }
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// FIXME force unaligned load, this is a temporary fix
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template<> EIGEN_STRONG_INLINE Packet1cd pload <Packet1cd>(const std::complex<double>* from)
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{ EIGEN_DEBUG_ALIGNED_LOAD return Packet1cd(pload<Packet2d>((const double*)from)); }
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template<> EIGEN_STRONG_INLINE Packet1cd ploadu<Packet1cd>(const std::complex<double>* from)
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{ EIGEN_DEBUG_UNALIGNED_LOAD return Packet1cd(ploadu<Packet2d>((const double*)from)); }
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template<> EIGEN_STRONG_INLINE Packet1cd pset1<Packet1cd>(const std::complex<double>& from)
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{ /* here we really have to use unaligned loads :( */ return ploadu<Packet1cd>(&from); }
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template<> EIGEN_STRONG_INLINE Packet1cd ploaddup<Packet1cd>(const std::complex<double>* from) { return pset1<Packet1cd>(*from); }
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// FIXME force unaligned store, this is a temporary fix
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template<> EIGEN_STRONG_INLINE void pstore <std::complex<double> >(std::complex<double> * to, const Packet1cd& from) { EIGEN_DEBUG_ALIGNED_STORE pstore((double*)to, Packet2d(from.v)); }
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template<> EIGEN_STRONG_INLINE void pstoreu<std::complex<double> >(std::complex<double> * to, const Packet1cd& from) { EIGEN_DEBUG_UNALIGNED_STORE pstoreu((double*)to, Packet2d(from.v)); }
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template<> EIGEN_STRONG_INLINE void prefetch<std::complex<double> >(const std::complex<double> * addr) { _mm_prefetch((SsePrefetchPtrType)(addr), _MM_HINT_T0); }
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template<> EIGEN_STRONG_INLINE std::complex<double> pfirst<Packet1cd>(const Packet1cd& a)
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{
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EIGEN_ALIGN16 double res[2];
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_mm_store_pd(res, a.v);
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return std::complex<double>(res[0],res[1]);
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}
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template<> EIGEN_STRONG_INLINE Packet1cd preverse(const Packet1cd& a) { return a; }
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template<> EIGEN_STRONG_INLINE std::complex<double> predux<Packet1cd>(const Packet1cd& a)
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{
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return pfirst(a);
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}
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template<> EIGEN_STRONG_INLINE Packet1cd preduxp<Packet1cd>(const Packet1cd* vecs)
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{
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return vecs[0];
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}
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template<> EIGEN_STRONG_INLINE std::complex<double> predux_mul<Packet1cd>(const Packet1cd& a)
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{
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return pfirst(a);
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}
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template<int Offset>
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struct palign_impl<Offset,Packet1cd>
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{
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static EIGEN_STRONG_INLINE void run(Packet1cd& /*first*/, const Packet1cd& /*second*/)
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{
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// FIXME is it sure we never have to align a Packet1cd?
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// Even though a std::complex<double> has 16 bytes, it is not necessarily aligned on a 16 bytes boundary...
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}
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};
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template<> struct conj_helper<Packet1cd, Packet1cd, false,true>
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{
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EIGEN_STRONG_INLINE Packet1cd pmadd(const Packet1cd& x, const Packet1cd& y, const Packet1cd& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet1cd pmul(const Packet1cd& a, const Packet1cd& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return internal::pmul(a, pconj(b));
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#else
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const __m128d mask = _mm_castsi128_pd(_mm_set_epi32(0x80000000,0x0,0x0,0x0));
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return Packet1cd(_mm_add_pd(_mm_xor_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 0, 0), b.v), mask),
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_mm_mul_pd(vec2d_swizzle1(a.v, 1, 1),
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vec2d_swizzle1(b.v, 1, 0))));
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#endif
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}
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};
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template<> struct conj_helper<Packet1cd, Packet1cd, true,false>
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{
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EIGEN_STRONG_INLINE Packet1cd pmadd(const Packet1cd& x, const Packet1cd& y, const Packet1cd& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet1cd pmul(const Packet1cd& a, const Packet1cd& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return internal::pmul(pconj(a), b);
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#else
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const __m128d mask = _mm_castsi128_pd(_mm_set_epi32(0x80000000,0x0,0x0,0x0));
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return Packet1cd(_mm_add_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 0, 0), b.v),
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_mm_xor_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 1, 1),
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vec2d_swizzle1(b.v, 1, 0)), mask)));
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#endif
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}
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};
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template<> struct conj_helper<Packet1cd, Packet1cd, true,true>
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{
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EIGEN_STRONG_INLINE Packet1cd pmadd(const Packet1cd& x, const Packet1cd& y, const Packet1cd& c) const
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{ return padd(pmul(x,y),c); }
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EIGEN_STRONG_INLINE Packet1cd pmul(const Packet1cd& a, const Packet1cd& b) const
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{
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#ifdef EIGEN_VECTORIZE_SSE3
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return pconj(internal::pmul(a, b));
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#else
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const __m128d mask = _mm_castsi128_pd(_mm_set_epi32(0x80000000,0x0,0x0,0x0));
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return Packet1cd(_mm_sub_pd(_mm_xor_pd(_mm_mul_pd(vec2d_swizzle1(a.v, 0, 0), b.v), mask),
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_mm_mul_pd(vec2d_swizzle1(a.v, 1, 1),
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vec2d_swizzle1(b.v, 1, 0))));
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#endif
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}
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};
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EIGEN_MAKE_CONJ_HELPER_CPLX_REAL(Packet1cd,Packet2d)
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template<> EIGEN_STRONG_INLINE Packet1cd pdiv<Packet1cd>(const Packet1cd& a, const Packet1cd& b)
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{
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// TODO optimize it for SSE3 and 4
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Packet1cd res = conj_helper<Packet1cd,Packet1cd,false,true>().pmul(a,b);
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__m128d s = _mm_mul_pd(b.v,b.v);
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return Packet1cd(_mm_div_pd(res.v, _mm_add_pd(s,_mm_shuffle_pd(s, s, 0x1))));
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}
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EIGEN_STRONG_INLINE Packet1cd pcplxflip/* <Packet1cd> */(const Packet1cd& x)
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{
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return Packet1cd(preverse(Packet2d(x.v)));
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}
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EIGEN_DEVICE_FUNC inline void
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ptranspose(PacketBlock<Packet2cf,2>& kernel) {
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__m128d w1 = _mm_castps_pd(kernel.packet[0].v);
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__m128d w2 = _mm_castps_pd(kernel.packet[1].v);
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__m128 tmp = _mm_castpd_ps(_mm_unpackhi_pd(w1, w2));
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kernel.packet[0].v = _mm_castpd_ps(_mm_unpacklo_pd(w1, w2));
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kernel.packet[1].v = tmp;
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|
}
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template<> EIGEN_STRONG_INLINE Packet2cf pblend(const Selector<2>& ifPacket, const Packet2cf& thenPacket, const Packet2cf& elsePacket) {
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__m128d result = pblend<Packet2d>(ifPacket, _mm_castps_pd(thenPacket.v), _mm_castps_pd(elsePacket.v));
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return Packet2cf(_mm_castpd_ps(result));
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|
}
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|
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template<> EIGEN_STRONG_INLINE Packet2cf pinsertfirst(const Packet2cf& a, std::complex<float> b)
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|
{
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|
return Packet2cf(_mm_loadl_pi(a.v, reinterpret_cast<const __m64*>(&b)));
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|
}
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|
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|
template<> EIGEN_STRONG_INLINE Packet1cd pinsertfirst(const Packet1cd&, std::complex<double> b)
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|
{
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|
return pset1<Packet1cd>(b);
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|
}
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|
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|
template<> EIGEN_STRONG_INLINE Packet2cf pinsertlast(const Packet2cf& a, std::complex<float> b)
|
|
{
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|
return Packet2cf(_mm_loadh_pi(a.v, reinterpret_cast<const __m64*>(&b)));
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|
}
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|
|
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template<> EIGEN_STRONG_INLINE Packet1cd pinsertlast(const Packet1cd&, std::complex<double> b)
|
|
{
|
|
return pset1<Packet1cd>(b);
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|
}
|
|
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|
} // end namespace internal
|
|
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|
} // end namespace Eigen
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#endif // EIGEN_COMPLEX_SSE_H
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