// This file is part of Eigen, a lightweight C++ template library // for linear algebra. // // Copyright (C) 2009 Rohit Garg // Copyright (C) 2009-2010 Gael Guennebaud // // Eigen is free software; you can redistribute it and/or // modify it under the terms of the GNU Lesser General Public // License as published by the Free Software Foundation; either // version 3 of the License, or (at your option) any later version. // // Alternatively, you can redistribute it and/or // modify it under the terms of the GNU General Public License as // published by the Free Software Foundation; either version 2 of // the License, or (at your option) any later version. // // Eigen is distributed in the hope that it will be useful, but WITHOUT ANY // WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS // FOR A PARTICULAR PURPOSE. See the GNU Lesser General Public License or the // GNU General Public License for more details. // // You should have received a copy of the GNU Lesser General Public // License and a copy of the GNU General Public License along with // Eigen. If not, see . #ifndef EIGEN_GEOMETRY_SSE_H #define EIGEN_GEOMETRY_SSE_H template struct ei_quat_product { inline static Quaternion run(const QuaternionBase& _a, const QuaternionBase& _b) { const __m128 mask = _mm_castsi128_ps(_mm_setr_epi32(0,0,0,0x80000000)); Quaternion res; __m128 a = _a.coeffs().template packet(0); __m128 b = _b.coeffs().template packet(0); __m128 flip1 = _mm_xor_ps(_mm_mul_ps(ei_vec4f_swizzle1(a,1,2,0,2), ei_vec4f_swizzle1(b,2,0,1,2)),mask); __m128 flip2 = _mm_xor_ps(_mm_mul_ps(ei_vec4f_swizzle1(a,3,3,3,1), ei_vec4f_swizzle1(b,0,1,2,1)),mask); ei_pstore(&res.x(), _mm_add_ps(_mm_sub_ps(_mm_mul_ps(a,ei_vec4f_swizzle1(b,3,3,3,3)), _mm_mul_ps(ei_vec4f_swizzle1(a,2,0,1,0), ei_vec4f_swizzle1(b,1,2,0,0))), _mm_add_ps(flip1,flip2))); return res; } }; template struct ei_cross3_impl { inline static typename ei_plain_matrix_type::type run(const VectorLhs& lhs, const VectorRhs& rhs) { __m128 a = lhs.coeffs().packet(0); __m128 b = rhs.coeffs().packet(0); __m128 mul1=_mm_mul_ps(ei_vec4f_swizzle1(a,1,2,0,3),ei_vec4f_swizzle1(b,2,0,1,3)); __m128 mul2=_mm_mul_ps(ei_vec4f_swizzle1(a,2,0,1,3),ei_vec4f_swizzle1(b,1,2,0,3)); typename ei_plain_matrix_type::type res; ei_pstore(&res.x(),_mm_sub_ps(mul1,mul2)); return res; } }; template struct ei_quat_product { inline static Quaternion run(const QuaternionBase& _a, const QuaternionBase& _b) { const Packet2d mask = _mm_castsi128_pd(_mm_set_epi32(0x0,0x0,0x80000000,0x0)); Quaternion res; const double* a = _a.coeffs().data(); Packet2d b_xy = _b.coeffs().template packet(0); Packet2d b_zw = _b.coeffs().template packet(2); Packet2d a_xx = ei_pset1(a[0]); Packet2d a_yy = ei_pset1(a[1]); Packet2d a_zz = ei_pset1(a[2]); Packet2d a_ww = ei_pset1(a[3]); // two temporaries: Packet2d t1, t2; /* * t1 = ww*xy + yy*zw * t2 = zz*xy - xx*zw * res.xy = t1 +/- swap(t2) */ t1 = ei_padd(ei_pmul(a_ww, b_xy), ei_pmul(a_yy, b_zw)); t2 = ei_psub(ei_pmul(a_zz, b_xy), ei_pmul(a_xx, b_zw)); #ifdef __SSE3__ ei_pstore(&res.x(), _mm_addsub_pd(t1, ei_preverse(t2))); #else ei_pstore(&res.x(), ei_padd(t1, ei_pxor(mask,ei_preverse(t2)))); #endif /* * t1 = ww*zw - yy*xy * t2 = zz*zw + xx*xy * res.zw = t1 -/+ swap(t2) = swap( swap(t1) +/- t2) */ t1 = ei_psub(ei_pmul(a_ww, b_zw), ei_pmul(a_yy, b_xy)); t2 = ei_padd(ei_pmul(a_zz, b_zw), ei_pmul(a_xx, b_xy)); #ifdef __SSE3__ ei_pstore(&res.z(), ei_preverse(_mm_addsub_pd(ei_preverse(t1), t2))); #else ei_pstore(&res.z(), ei_psub(t1, ei_pxor(mask,ei_preverse(t2)))); #endif return res; } }; #endif // EIGEN_GEOMETRY_SSE_H