mirror of
https://github.com/saymrwulf/uhd.git
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148 lines
5.5 KiB
C++
148 lines
5.5 KiB
C++
//
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// Copyright 2011-2011 Ettus Research LLC
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//
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// This program is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// This program is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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//
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <http://www.gnu.org/licenses/>.
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//
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#include "convert_common.hpp"
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#include <uhd/utils/byteswap.hpp>
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#include <emmintrin.h>
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using namespace uhd::convert;
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DECLARE_CONVERTER(convert_fc32_1_to_item32_1_nswap, PRIORITY_CUSTOM){
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const fc32_t *input = reinterpret_cast<const fc32_t *>(inputs[0]);
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item32_t *output = reinterpret_cast<item32_t *>(outputs[0]);
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__m128 scalar = _mm_set_ps1(shorts_per_float);
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//convert blocks of samples with intrinsics
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size_t i = 0; for (; i < (nsamps & ~0x3); i+=4){
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//load from input
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__m128 tmplo = _mm_loadu_ps(reinterpret_cast<const float *>(input+i+0));
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__m128 tmphi = _mm_loadu_ps(reinterpret_cast<const float *>(input+i+2));
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//convert and scale
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__m128i tmpilo = _mm_cvtps_epi32(_mm_mul_ps(tmplo, scalar));
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__m128i tmpihi = _mm_cvtps_epi32(_mm_mul_ps(tmphi, scalar));
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//pack + swap 16-bit pairs
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__m128i tmpi = _mm_packs_epi32(tmpilo, tmpihi);
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tmpi = _mm_shufflelo_epi16(tmpi, _MM_SHUFFLE(2, 3, 0, 1));
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tmpi = _mm_shufflehi_epi16(tmpi, _MM_SHUFFLE(2, 3, 0, 1));
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//store to output
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_mm_storeu_si128(reinterpret_cast<__m128i *>(output+i), tmpi);
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}
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//convert remainder
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for (; i < nsamps; i++){
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output[i] = fc32_to_item32(input[i]);
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}
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}
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DECLARE_CONVERTER(convert_fc32_1_to_item32_1_bswap, PRIORITY_CUSTOM){
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const fc32_t *input = reinterpret_cast<const fc32_t *>(inputs[0]);
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item32_t *output = reinterpret_cast<item32_t *>(outputs[0]);
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__m128 scalar = _mm_set_ps1(shorts_per_float);
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//convert blocks of samples with intrinsics
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size_t i = 0; for (; i < (nsamps & ~0x3); i+=4){
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//load from input
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__m128 tmplo = _mm_loadu_ps(reinterpret_cast<const float *>(input+i+0));
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__m128 tmphi = _mm_loadu_ps(reinterpret_cast<const float *>(input+i+2));
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//convert and scale
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__m128i tmpilo = _mm_cvtps_epi32(_mm_mul_ps(tmplo, scalar));
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__m128i tmpihi = _mm_cvtps_epi32(_mm_mul_ps(tmphi, scalar));
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//pack + byteswap -> byteswap 16 bit words
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__m128i tmpi = _mm_packs_epi32(tmpilo, tmpihi);
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tmpi = _mm_or_si128(_mm_srli_epi16(tmpi, 8), _mm_slli_epi16(tmpi, 8));
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//store to output
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_mm_storeu_si128(reinterpret_cast<__m128i *>(output+i), tmpi);
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}
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//convert remainder
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for (; i < nsamps; i++){
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output[i] = uhd::byteswap(fc32_to_item32(input[i]));
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}
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}
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DECLARE_CONVERTER(convert_item32_1_to_fc32_1_nswap, PRIORITY_CUSTOM){
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const item32_t *input = reinterpret_cast<const item32_t *>(inputs[0]);
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fc32_t *output = reinterpret_cast<fc32_t *>(outputs[0]);
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__m128 scalar = _mm_set_ps1(floats_per_short/(1 << 16));
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__m128i zeroi = _mm_setzero_si128();
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//convert blocks of samples with intrinsics
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size_t i = 0; for (; i < (nsamps & ~0x3); i+=4){
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//load from input
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__m128i tmpi = _mm_loadu_si128(reinterpret_cast<const __m128i *>(input+i));
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//unpack + swap 16-bit pairs
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tmpi = _mm_shufflelo_epi16(tmpi, _MM_SHUFFLE(2, 3, 0, 1));
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tmpi = _mm_shufflehi_epi16(tmpi, _MM_SHUFFLE(2, 3, 0, 1));
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__m128i tmpilo = _mm_unpacklo_epi16(zeroi, tmpi); //value in upper 16 bits
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__m128i tmpihi = _mm_unpackhi_epi16(zeroi, tmpi);
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//convert and scale
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__m128 tmplo = _mm_mul_ps(_mm_cvtepi32_ps(tmpilo), scalar);
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__m128 tmphi = _mm_mul_ps(_mm_cvtepi32_ps(tmpihi), scalar);
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//store to output
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_mm_storeu_ps(reinterpret_cast<float *>(output+i+0), tmplo);
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_mm_storeu_ps(reinterpret_cast<float *>(output+i+2), tmphi);
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}
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//convert remainder
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for (; i < nsamps; i++){
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output[i] = item32_to_fc32(input[i]);
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}
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}
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DECLARE_CONVERTER(convert_item32_1_to_fc32_1_bswap, PRIORITY_CUSTOM){
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const item32_t *input = reinterpret_cast<const item32_t *>(inputs[0]);
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fc32_t *output = reinterpret_cast<fc32_t *>(outputs[0]);
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__m128 scalar = _mm_set_ps1(floats_per_short/(1 << 16));
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__m128i zeroi = _mm_setzero_si128();
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//convert blocks of samples with intrinsics
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size_t i = 0; for (; i < (nsamps & ~0x3); i+=4){
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//load from input
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__m128i tmpi = _mm_loadu_si128(reinterpret_cast<const __m128i *>(input+i));
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//byteswap + unpack -> byteswap 16 bit words
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tmpi = _mm_or_si128(_mm_srli_epi16(tmpi, 8), _mm_slli_epi16(tmpi, 8));
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__m128i tmpilo = _mm_unpacklo_epi16(zeroi, tmpi); //value in upper 16 bits
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__m128i tmpihi = _mm_unpackhi_epi16(zeroi, tmpi);
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//convert and scale
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__m128 tmplo = _mm_mul_ps(_mm_cvtepi32_ps(tmpilo), scalar);
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__m128 tmphi = _mm_mul_ps(_mm_cvtepi32_ps(tmpihi), scalar);
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//store to output
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_mm_storeu_ps(reinterpret_cast<float *>(output+i+0), tmplo);
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_mm_storeu_ps(reinterpret_cast<float *>(output+i+2), tmphi);
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}
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//convert remainder
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for (; i < nsamps; i++){
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output[i] = item32_to_fc32(uhd::byteswap(input[i]));
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}
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}
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