364 lines
15 KiB
C
364 lines
15 KiB
C
/*
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* Copyright (c) 2016, Alliance for Open Media. All rights reserved
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*
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* This source code is subject to the terms of the BSD 2 Clause License and
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* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
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* was not distributed with this source code in the LICENSE file, you can
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* obtain it at www.aomedia.org/license/software. If the Alliance for Open
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* Media Patent License 1.0 was not distributed with this source code in the
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* PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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*/
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#include "config/av1_rtcd.h"
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#include "av1/common/enums.h"
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#include "av1/common/av1_txfm.h"
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#include "av1/common/x86/av1_txfm_sse2.h"
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#include "av1/common/x86/highbd_txfm_utility_sse4.h"
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#include "av1/encoder/av1_fwd_txfm1d_cfg.h"
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#include "av1/encoder/x86/av1_txfm1d_sse4.h"
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#include "av1/encoder/x86/av1_fwd_txfm_sse2.h"
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static INLINE void int16_array_with_stride_to_int32_array_without_stride(
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const int16_t *input, int stride, int32_t *output, int txfm1d_size) {
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int r, c;
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for (r = 0; r < txfm1d_size; r++) {
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for (c = 0; c < txfm1d_size; c++) {
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output[r * txfm1d_size + c] = (int32_t)input[r * stride + c];
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}
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}
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}
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typedef void (*TxfmFuncSSE2)(__m128i *input, __m128i *output,
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const int8_t cos_bit, const int8_t *stage_range);
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static void fdct32_sse4_1(__m128i *input, __m128i *output, const int8_t cos_bit,
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const int8_t *stage_range) {
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const int txfm_size = 32;
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const int num_per_128 = 4;
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int col_num = txfm_size / num_per_128;
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int col;
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(void)stage_range;
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for (col = 0; col < col_num; col++) {
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av1_fdct32_sse4_1((input + col), (output + col), cos_bit, col_num);
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}
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}
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static void fdct64_new_sse4_1(__m128i *input, __m128i *output,
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const int8_t cos_bit, const int8_t *stage_range) {
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const int txfm_size = 64;
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const int num_per_128 = 4;
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int col_num = txfm_size / num_per_128;
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(void)stage_range;
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for (int col = 0; col < col_num; col++) {
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av1_fdct64_sse4_1((input + col), (output + col), cos_bit, col_num, col_num);
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}
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}
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static void idtx32x32_sse4_1(__m128i *input, __m128i *output,
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const int8_t cos_bit, const int8_t *stage_range) {
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(void)stage_range;
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for (int i = 0; i < 8; i++) {
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av1_idtx32_sse4_1(&input[i * 32], &output[i * 32], cos_bit, 1);
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}
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}
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static INLINE TxfmFuncSSE2 fwd_txfm_type_to_func(TXFM_TYPE txfm_type) {
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switch (txfm_type) {
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case TXFM_TYPE_DCT32: return fdct32_sse4_1; break;
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case TXFM_TYPE_DCT64: return fdct64_new_sse4_1; break;
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case TXFM_TYPE_IDENTITY32: return idtx32x32_sse4_1; break;
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default: assert(0);
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}
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return NULL;
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}
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static INLINE void fwd_txfm2d_sse4_1(const int16_t *input, int32_t *output,
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const int stride,
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const TXFM_2D_FLIP_CFG *cfg,
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int32_t *txfm_buf) {
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// TODO(sarahparker) This does not currently support rectangular transforms
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// and will break without splitting txfm_size out into row and col size.
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// Rectangular transforms use c code only, so it should be ok for now.
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// It will be corrected when there are sse implementations for rectangular
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// transforms.
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assert(cfg->tx_size < TX_SIZES);
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const int txfm_size = tx_size_wide[cfg->tx_size];
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const int8_t *shift = cfg->shift;
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const int8_t *stage_range_col = cfg->stage_range_col;
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const int8_t *stage_range_row = cfg->stage_range_row;
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const int8_t cos_bit_col = cfg->cos_bit_col;
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const int8_t cos_bit_row = cfg->cos_bit_row;
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const TxfmFuncSSE2 txfm_func_col = fwd_txfm_type_to_func(cfg->txfm_type_col);
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const TxfmFuncSSE2 txfm_func_row = fwd_txfm_type_to_func(cfg->txfm_type_row);
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__m128i *buf_128 = (__m128i *)txfm_buf;
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__m128i *out_128 = (__m128i *)output;
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int num_per_128 = 4;
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int txfm2d_size_128 = txfm_size * txfm_size / num_per_128;
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int16_array_with_stride_to_int32_array_without_stride(input, stride, txfm_buf,
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txfm_size);
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av1_round_shift_array_32_sse4_1(buf_128, out_128, txfm2d_size_128, -shift[0]);
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txfm_func_col(out_128, buf_128, cos_bit_col, stage_range_col);
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av1_round_shift_array_32_sse4_1(buf_128, out_128, txfm2d_size_128, -shift[1]);
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transpose_32(txfm_size, out_128, buf_128);
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txfm_func_row(buf_128, out_128, cos_bit_row, stage_range_row);
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av1_round_shift_array_32_sse4_1(out_128, buf_128, txfm2d_size_128, -shift[2]);
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transpose_32(txfm_size, buf_128, out_128);
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}
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static INLINE void fwd_txfm2d_64x64_sse4_1(const int16_t *input,
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int32_t *output, const int stride,
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const TXFM_2D_FLIP_CFG *cfg,
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int32_t *txfm_buf) {
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assert(cfg->tx_size < TX_SIZES);
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const int txfm_size = tx_size_wide[cfg->tx_size];
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const int8_t *shift = cfg->shift;
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const int8_t *stage_range_col = cfg->stage_range_col;
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const int8_t cos_bit_col = cfg->cos_bit_col;
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const int8_t cos_bit_row = cfg->cos_bit_row;
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const TxfmFuncSSE2 txfm_func_col = fwd_txfm_type_to_func(cfg->txfm_type_col);
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__m128i *buf_128 = (__m128i *)txfm_buf;
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__m128i *out_128 = (__m128i *)output;
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const int num_per_128 = 4;
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int txfm2d_size_128 = txfm_size * txfm_size / num_per_128;
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int col_num = txfm_size / num_per_128;
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int16_array_with_stride_to_int32_array_without_stride(input, stride, output,
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txfm_size);
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/*col wise transform*/
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txfm_func_col(out_128, buf_128, cos_bit_col, stage_range_col);
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av1_round_shift_array_32_sse4_1(buf_128, out_128, txfm2d_size_128, -shift[1]);
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transpose_32(txfm_size, out_128, buf_128);
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/*row wise transform*/
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for (int col = 0; col < (col_num >> 1); col++) {
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av1_fdct64_sse4_1((buf_128 + col), (out_128 + col), cos_bit_row, col_num,
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(col_num >> 1));
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}
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txfm2d_size_128 = (col_num >> 1) * (txfm_size >> 1);
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av1_round_shift_array_32_sse4_1(out_128, buf_128, txfm2d_size_128, -shift[2]);
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transpose_8nx8n(buf_128, out_128, 32, 32);
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}
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void av1_fwd_txfm2d_32x32_sse4_1(const int16_t *input, int32_t *output,
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int stride, TX_TYPE tx_type, int bd) {
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DECLARE_ALIGNED(16, int32_t, txfm_buf[1024]);
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TXFM_2D_FLIP_CFG cfg;
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av1_get_fwd_txfm_cfg(tx_type, TX_32X32, &cfg);
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(void)bd;
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fwd_txfm2d_sse4_1(input, output, stride, &cfg, txfm_buf);
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}
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void av1_fwd_txfm2d_64x64_sse4_1(const int16_t *input, int32_t *output,
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int stride, TX_TYPE tx_type, int bd) {
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DECLARE_ALIGNED(16, int32_t, txfm_buf[4096]);
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TXFM_2D_FLIP_CFG cfg;
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av1_get_fwd_txfm_cfg(tx_type, TX_64X64, &cfg);
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(void)bd;
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fwd_txfm2d_64x64_sse4_1(input, output, stride, &cfg, txfm_buf);
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}
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static INLINE void transpose_32_4x4x2(int stride, const __m128i *inputA,
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const __m128i *inputB, __m128i *output) {
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__m128i temp0 = _mm_unpacklo_epi32(inputA[0], inputA[2]);
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__m128i temp1 = _mm_unpackhi_epi32(inputA[0], inputA[2]);
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__m128i temp2 = _mm_unpacklo_epi32(inputA[1], inputA[3]);
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__m128i temp3 = _mm_unpackhi_epi32(inputA[1], inputA[3]);
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output[0 * stride] = _mm_unpacklo_epi32(temp0, temp2);
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output[1 * stride] = _mm_unpackhi_epi32(temp0, temp2);
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output[2 * stride] = _mm_unpacklo_epi32(temp1, temp3);
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output[3 * stride] = _mm_unpackhi_epi32(temp1, temp3);
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temp0 = _mm_unpacklo_epi32(inputB[0], inputB[2]);
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temp1 = _mm_unpackhi_epi32(inputB[0], inputB[2]);
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temp2 = _mm_unpacklo_epi32(inputB[1], inputB[3]);
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temp3 = _mm_unpackhi_epi32(inputB[1], inputB[3]);
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output[4 * stride] = _mm_unpacklo_epi32(temp0, temp2);
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output[5 * stride] = _mm_unpackhi_epi32(temp0, temp2);
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output[6 * stride] = _mm_unpacklo_epi32(temp1, temp3);
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output[7 * stride] = _mm_unpackhi_epi32(temp1, temp3);
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}
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static void lowbd_fwd_txfm2d_64x64_sse4_1(const int16_t *input, int32_t *output,
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int stride, TX_TYPE tx_type, int bd) {
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(void)bd;
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(void)tx_type;
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assert(tx_type == DCT_DCT);
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const TX_SIZE tx_size = TX_64X64;
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__m128i buf0[64], buf1[512];
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const int8_t *shift = av1_fwd_txfm_shift_ls[tx_size];
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const int txw_idx = get_txw_idx(tx_size);
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const int txh_idx = get_txh_idx(tx_size);
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const int cos_bit_col = av1_fwd_cos_bit_col[txw_idx][txh_idx];
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const int cos_bit_row = av1_fwd_cos_bit_row[txw_idx][txh_idx];
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const int width = tx_size_wide[tx_size];
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const int height = tx_size_high[tx_size];
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const transform_1d_sse2 col_txfm = av1_fdct8x64_new_sse2;
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const int width_div8 = (width >> 3);
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const int height_div8 = (height >> 3);
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for (int i = 0; i < width_div8; i++) {
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load_buffer_16bit_to_16bit(input + 8 * i, stride, buf0, height);
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round_shift_16bit(buf0, height, shift[0]);
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col_txfm(buf0, buf0, cos_bit_col);
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round_shift_16bit(buf0, height, shift[1]);
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for (int j = 0; j < AOMMIN(4, height_div8); ++j) {
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transpose_16bit_8x8(buf0 + j * 8, buf1 + j * width + 8 * i);
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}
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}
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for (int i = 0; i < AOMMIN(4, height_div8); i++) {
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__m128i bufA[64];
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__m128i bufB[64];
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__m128i *buf = buf1 + width * i;
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for (int j = 0; j < width; ++j) {
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bufA[j] = _mm_cvtepi16_epi32(buf[j]);
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bufB[j] = _mm_cvtepi16_epi32(_mm_unpackhi_epi64(buf[j], buf[j]));
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}
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av1_fdct64_sse4_1(bufA, bufA, cos_bit_row, 1, 1);
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av1_fdct64_sse4_1(bufB, bufB, cos_bit_row, 1, 1);
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av1_round_shift_array_32_sse4_1(bufA, bufA, 32, -shift[2]);
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av1_round_shift_array_32_sse4_1(bufB, bufB, 32, -shift[2]);
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int32_t *output8 = output + 8 * 32 * i;
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for (int j = 0; j < width_div8; ++j) {
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__m128i *out = (__m128i *)(output8 + 4 * j);
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transpose_32_4x4x2(8, bufA + 4 * j, bufB + 4 * j, out);
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}
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}
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}
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static void lowbd_fwd_txfm2d_64x32_sse4_1(const int16_t *input, int32_t *output,
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int stride, TX_TYPE tx_type, int bd) {
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(void)bd;
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const TX_SIZE tx_size = TX_64X32;
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__m128i buf0[64], buf1[256];
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const int8_t *shift = av1_fwd_txfm_shift_ls[tx_size];
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const int txw_idx = get_txw_idx(tx_size);
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const int txh_idx = get_txh_idx(tx_size);
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const int cos_bit_col = av1_fwd_cos_bit_col[txw_idx][txh_idx];
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const int cos_bit_row = av1_fwd_cos_bit_row[txw_idx][txh_idx];
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const int width = tx_size_wide[tx_size];
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const int height = tx_size_high[tx_size];
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const transform_1d_sse2 col_txfm = col_txfm8x32_arr[tx_type];
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const int width_div8 = (width >> 3);
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const int height_div8 = (height >> 3);
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for (int i = 0; i < width_div8; i++) {
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load_buffer_16bit_to_16bit(input + 8 * i, stride, buf0, height);
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round_shift_16bit(buf0, height, shift[0]);
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col_txfm(buf0, buf0, cos_bit_col);
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round_shift_16bit(buf0, height, shift[1]);
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for (int j = 0; j < AOMMIN(4, height_div8); ++j) {
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transpose_16bit_8x8(buf0 + j * 8, buf1 + j * width + 8 * i);
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}
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}
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assert(tx_type == DCT_DCT);
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for (int i = 0; i < AOMMIN(4, height_div8); i++) {
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__m128i bufA[64];
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__m128i bufB[64];
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__m128i *buf = buf1 + width * i;
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for (int j = 0; j < width; ++j) {
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bufA[j] = _mm_cvtepi16_epi32(buf[j]);
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bufB[j] = _mm_cvtepi16_epi32(_mm_unpackhi_epi64(buf[j], buf[j]));
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}
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av1_fdct64_sse4_1(bufA, bufA, cos_bit_row, 1, 1);
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av1_fdct64_sse4_1(bufB, bufB, cos_bit_row, 1, 1);
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av1_round_shift_rect_array_32_sse4_1(bufA, bufA, 32, -shift[2], NewSqrt2);
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av1_round_shift_rect_array_32_sse4_1(bufB, bufB, 32, -shift[2], NewSqrt2);
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int32_t *output8 = output + 8 * 32 * i;
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for (int j = 0; j < width_div8; ++j) {
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__m128i *out = (__m128i *)(output8 + 4 * j);
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transpose_32_4x4x2(8, bufA + 4 * j, bufB + 4 * j, out);
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}
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}
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}
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static void lowbd_fwd_txfm2d_32x64_sse4_1(const int16_t *input, int32_t *output,
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int stride, TX_TYPE tx_type, int bd) {
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(void)bd;
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(void)tx_type;
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assert(tx_type == DCT_DCT);
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const TX_SIZE tx_size = TX_32X64;
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__m128i buf0[64], buf1[256];
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const int8_t *shift = av1_fwd_txfm_shift_ls[tx_size];
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const int txw_idx = get_txw_idx(tx_size);
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const int txh_idx = get_txh_idx(tx_size);
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const int cos_bit_col = av1_fwd_cos_bit_col[txw_idx][txh_idx];
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const int cos_bit_row = av1_fwd_cos_bit_row[txw_idx][txh_idx];
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const int width = tx_size_wide[tx_size];
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const int height = tx_size_high[tx_size];
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const transform_1d_sse2 col_txfm = av1_fdct8x64_new_sse2;
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const int width_div8 = (width >> 3);
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const int height_div8 = (height >> 3);
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for (int i = 0; i < width_div8; i++) {
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load_buffer_16bit_to_16bit(input + 8 * i, stride, buf0, height);
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round_shift_16bit(buf0, height, shift[0]);
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col_txfm(buf0, buf0, cos_bit_col);
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round_shift_16bit(buf0, height, shift[1]);
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for (int j = 0; j < AOMMIN(4, height_div8); ++j) {
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transpose_16bit_8x8(buf0 + j * 8, buf1 + j * width + 8 * i);
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}
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}
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for (int i = 0; i < AOMMIN(4, height_div8); i++) {
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__m128i bufA[32];
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__m128i bufB[32];
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__m128i *buf = buf1 + width * i;
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for (int j = 0; j < width; ++j) {
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bufA[j] = _mm_cvtepi16_epi32(buf[j]);
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bufB[j] = _mm_cvtepi16_epi32(_mm_unpackhi_epi64(buf[j], buf[j]));
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}
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av1_fdct32_sse4_1(bufA, bufA, cos_bit_row, 1);
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av1_fdct32_sse4_1(bufB, bufB, cos_bit_row, 1);
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av1_round_shift_rect_array_32_sse4_1(bufA, bufA, 32, -shift[2], NewSqrt2);
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av1_round_shift_rect_array_32_sse4_1(bufB, bufB, 32, -shift[2], NewSqrt2);
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int32_t *output8 = output + 8 * 32 * i;
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for (int j = 0; j < (32 / 4); ++j) {
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__m128i *out = (__m128i *)(output8 + 4 * j);
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transpose_32_4x4x2(8, bufA + 4 * j, bufB + 4 * j, out);
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}
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}
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}
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static FwdTxfm2dFunc fwd_txfm2d_func_ls[TX_SIZES_ALL] = {
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av1_lowbd_fwd_txfm2d_4x4_sse2, // 4x4 transform
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av1_lowbd_fwd_txfm2d_8x8_sse2, // 8x8 transform
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av1_lowbd_fwd_txfm2d_16x16_sse2, // 16x16 transform
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av1_lowbd_fwd_txfm2d_32x32_sse2, // 32x32 transform
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lowbd_fwd_txfm2d_64x64_sse4_1, // 64x64 transform
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av1_lowbd_fwd_txfm2d_4x8_sse2, // 4x8 transform
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av1_lowbd_fwd_txfm2d_8x4_sse2, // 8x4 transform
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av1_lowbd_fwd_txfm2d_8x16_sse2, // 8x16 transform
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av1_lowbd_fwd_txfm2d_16x8_sse2, // 16x8 transform
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av1_lowbd_fwd_txfm2d_16x32_sse2, // 16x32 transform
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av1_lowbd_fwd_txfm2d_32x16_sse2, // 32x16 transform
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lowbd_fwd_txfm2d_32x64_sse4_1, // 32x64 transform
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lowbd_fwd_txfm2d_64x32_sse4_1, // 64x32 transform
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av1_lowbd_fwd_txfm2d_4x16_sse2, // 4x16 transform
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av1_lowbd_fwd_txfm2d_16x4_sse2, // 16x4 transform
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av1_lowbd_fwd_txfm2d_8x32_sse2, // 8x32 transform
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av1_lowbd_fwd_txfm2d_32x8_sse2, // 32x8 transform
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av1_lowbd_fwd_txfm2d_16x64_sse2, // 16x64 transform
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av1_lowbd_fwd_txfm2d_64x16_sse2, // 64x16 transform
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};
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void av1_lowbd_fwd_txfm_sse4_1(const int16_t *src_diff, tran_low_t *coeff,
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int diff_stride, TxfmParam *txfm_param) {
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FwdTxfm2dFunc fwd_txfm2d_func = fwd_txfm2d_func_ls[txfm_param->tx_size];
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if (txfm_param->lossless && txfm_param->tx_size == TX_4X4) {
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av1_lowbd_fwd_txfm_c(src_diff, coeff, diff_stride, txfm_param);
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} else {
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fwd_txfm2d_func(src_diff, coeff, diff_stride, txfm_param->tx_type,
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txfm_param->bd);
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}
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}
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