Refactor vp10_fwd_txfm2d_test.cc
Change-Id: Ibaf7b00bfe247df3e665ea3a0241667cb130e16c
This commit is contained in:
@@ -190,6 +190,7 @@ LIBVPX_TEST_SRCS-$(CONFIG_VP9_HIGHBITDEPTH) += hbd_metrics_test.cc
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endif
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LIBVPX_TEST_SRCS-$(CONFIG_ENCODERS) += sad_test.cc
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LIBVPX_TEST_SRCS-$(CONFIG_VP10) += vp10_txfm_test.h
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LIBVPX_TEST_SRCS-$(CONFIG_VP10) += vp10_txfm_test.cc
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LIBVPX_TEST_SRCS-$(CONFIG_VP10) += vp10_fwd_txfm1d_test.cc
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LIBVPX_TEST_SRCS-$(CONFIG_VP10) += vp10_inv_txfm1d_test.cc
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LIBVPX_TEST_SRCS-$(CONFIG_VP10) += vp10_fwd_txfm2d_test.cc
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@@ -13,6 +13,7 @@
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#include <stdlib.h>
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#include "test/acm_random.h"
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#include "test/util.h"
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#include "test/vp10_txfm_test.h"
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#include "vp10/common/vp10_txfm.h"
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#include "./vp10_rtcd.h"
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@@ -23,80 +24,127 @@ using libvpx_test::bd;
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using libvpx_test::compute_avg_abs_error;
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using libvpx_test::Fwd_Txfm2d_Func;
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using libvpx_test::TYPE_TXFM;
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using libvpx_test::TYPE_DCT;
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using libvpx_test::TYPE_ADST;
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namespace {
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#if CONFIG_VP9_HIGHBITDEPTH
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const Fwd_Txfm2d_Func fwd_txfm_func_ls[TX_SIZES] = {
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vp10_fwd_txfm2d_4x4_c, vp10_fwd_txfm2d_8x8_c, vp10_fwd_txfm2d_16x16_c,
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vp10_fwd_txfm2d_32x32_c};
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const TYPE_TXFM type_ls_0[4] = {TYPE_DCT, TYPE_ADST, TYPE_DCT, TYPE_ADST};
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const TYPE_TXFM type_ls_1[4] = {TYPE_DCT, TYPE_DCT, TYPE_ADST, TYPE_ADST};
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// VP10FwdTxfm2dParam argument list:
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// tx_type_, tx_size_, max_error_, max_avg_error_
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typedef std::tr1::tuple<TX_TYPE, TX_SIZE, double, double> VP10FwdTxfm2dParam;
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TEST(vp10_fwd_txfm2d, accuracy) {
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for (int tx_size = 0; tx_size < TX_SIZES; ++tx_size) {
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int txfm_size = 1 << (tx_size + 2);
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int sqr_txfm_size = txfm_size * txfm_size;
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int16_t* input = new int16_t[sqr_txfm_size];
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int32_t* output = new int32_t[sqr_txfm_size];
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double* ref_input = new double[sqr_txfm_size];
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double* ref_output = new double[sqr_txfm_size];
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class VP10FwdTxfm2d : public ::testing::TestWithParam<VP10FwdTxfm2dParam> {
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public:
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virtual void SetUp() {
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tx_type_ = GET_PARAM(0);
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tx_size_ = GET_PARAM(1);
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max_error_ = GET_PARAM(2);
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max_avg_error_ = GET_PARAM(3);
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count_ = 500;
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TXFM_2D_FLIP_CFG fwd_txfm_flip_cfg =
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vp10_get_fwd_txfm_cfg(tx_type_, tx_size_);
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const TXFM_2D_CFG *fwd_txfm_cfg = fwd_txfm_flip_cfg.cfg;
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int amplify_bit = fwd_txfm_cfg->shift[0] + fwd_txfm_cfg->shift[1] +
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fwd_txfm_cfg->shift[2];
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amplify_factor_ =
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amplify_bit >= 0 ? (1 << amplify_bit) : (1.0 / (1 << -amplify_bit));
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for (int tx_type = 0; tx_type < 4; ++tx_type) {
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TXFM_2D_FLIP_CFG fwd_txfm_flip_cfg =
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vp10_get_fwd_txfm_cfg(tx_type, tx_size);
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const TXFM_2D_CFG *fwd_txfm_cfg = fwd_txfm_flip_cfg.cfg;
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if (fwd_txfm_cfg != NULL) {
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Fwd_Txfm2d_Func fwd_txfm_func = fwd_txfm_func_ls[tx_size];
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TYPE_TXFM type0 = type_ls_0[tx_type];
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TYPE_TXFM type1 = type_ls_1[tx_type];
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int amplify_bit = fwd_txfm_cfg->shift[0] + fwd_txfm_cfg->shift[1] +
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fwd_txfm_cfg->shift[2];
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double amplify_factor =
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amplify_bit >= 0 ? (1 << amplify_bit) : (1.0 / (1 << -amplify_bit));
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fwd_txfm_ = fwd_txfm_func_ls[tx_size_];
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txfm1d_size_ = libvpx_test::get_txfm1d_size(tx_size_);
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txfm2d_size_ = txfm1d_size_ * txfm1d_size_;
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get_txfm1d_type(tx_type_, &type0_, &type1_);
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input_ = reinterpret_cast<int16_t *>
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(vpx_memalign(16, sizeof(int16_t) * txfm2d_size_));
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output_ = reinterpret_cast<int32_t *>
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(vpx_memalign(16, sizeof(int32_t) * txfm2d_size_));
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ref_input_ = reinterpret_cast<double *>
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(vpx_memalign(16, sizeof(double) * txfm2d_size_));
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ref_output_ = reinterpret_cast<double *>
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(vpx_memalign(16, sizeof(double) * txfm2d_size_));
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}
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ACMRandom rnd(ACMRandom::DeterministicSeed());
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int count = 500;
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double avg_abs_error = 0;
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for (int ci = 0; ci < count; ci++) {
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for (int ni = 0; ni < sqr_txfm_size; ++ni) {
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input[ni] = rnd.Rand16() % input_base;
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ref_input[ni] = static_cast<double>(input[ni]);
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output[ni] = 0;
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ref_output[ni] = 0;
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}
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fwd_txfm_func(input, output, txfm_size, tx_type, bd);
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reference_hybrid_2d(ref_input, ref_output, txfm_size, type0, type1);
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for (int ni = 0; ni < sqr_txfm_size; ++ni) {
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ref_output[ni] = round(ref_output[ni] * amplify_factor);
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EXPECT_LE(fabs(output[ni] - ref_output[ni]) / amplify_factor, 70);
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}
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avg_abs_error += compute_avg_abs_error<int32_t, double>(
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output, ref_output, sqr_txfm_size);
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}
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avg_abs_error /= amplify_factor;
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avg_abs_error /= count;
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// max_abs_avg_error comes from upper bound of avg_abs_error
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// printf("type0: %d type1: %d txfm_size: %d accuracy_avg_abs_error:
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// %f\n",
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// type0, type1, txfm_size, avg_abs_error);
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double max_abs_avg_error = 7;
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EXPECT_LE(avg_abs_error, max_abs_avg_error);
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void RunFwdAccuracyCheck() {
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ACMRandom rnd(ACMRandom::DeterministicSeed());
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double avg_abs_error = 0;
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for (int ci = 0; ci < count_; ci++) {
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for (int ni = 0; ni < txfm2d_size_; ++ni) {
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input_[ni] = rnd.Rand16() % input_base;
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ref_input_[ni] = static_cast<double>(input_[ni]);
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output_[ni] = 0;
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ref_output_[ni] = 0;
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}
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fwd_txfm_(input_, output_, txfm1d_size_, tx_type_, bd);
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reference_hybrid_2d(ref_input_, ref_output_, txfm1d_size_,
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type0_, type1_);
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for (int ni = 0; ni < txfm2d_size_; ++ni) {
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ref_output_[ni] = round(ref_output_[ni] * amplify_factor_);
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EXPECT_GE(max_error_,
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fabs(output_[ni] - ref_output_[ni]) / amplify_factor_);
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}
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avg_abs_error += compute_avg_abs_error<int32_t, double>(
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output_, ref_output_, txfm2d_size_);
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}
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delete[] input;
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delete[] output;
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delete[] ref_input;
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delete[] ref_output;
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avg_abs_error /= amplify_factor_;
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avg_abs_error /= count_;
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// max_abs_avg_error comes from upper bound of avg_abs_error
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// printf("type0: %d type1: %d txfm_size: %d accuracy_avg_abs_error:
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// %f\n", type0_, type1_, txfm1d_size_, avg_abs_error);
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EXPECT_GE(max_avg_error_, avg_abs_error);
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}
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virtual void TearDown() {
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vpx_free(input_);
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vpx_free(output_);
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vpx_free(ref_input_);
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vpx_free(ref_output_);
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}
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private:
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double max_error_;
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double max_avg_error_;
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int count_;
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double amplify_factor_;
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TX_TYPE tx_type_;
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TX_SIZE tx_size_;
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int txfm1d_size_;
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int txfm2d_size_;
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Fwd_Txfm2d_Func fwd_txfm_;
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TYPE_TXFM type0_;
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TYPE_TXFM type1_;
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int16_t* input_;
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int32_t* output_;
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double* ref_input_;
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double* ref_output_;
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};
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TEST_P(VP10FwdTxfm2d, RunFwdAccuracyCheck) {
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RunFwdAccuracyCheck();
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}
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INSTANTIATE_TEST_CASE_P(
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C, VP10FwdTxfm2d,
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::testing::Values(
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VP10FwdTxfm2dParam(DCT_DCT, TX_4X4, 2, 0.2),
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VP10FwdTxfm2dParam(ADST_DCT, TX_4X4, 2, 0.2),
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VP10FwdTxfm2dParam(DCT_ADST, TX_4X4, 2, 0.2),
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VP10FwdTxfm2dParam(ADST_ADST, TX_4X4, 2, 0.2),
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VP10FwdTxfm2dParam(DCT_DCT, TX_8X8, 5, 0.6),
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VP10FwdTxfm2dParam(ADST_DCT, TX_8X8, 5, 0.6),
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VP10FwdTxfm2dParam(DCT_ADST, TX_8X8, 5, 0.6),
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VP10FwdTxfm2dParam(ADST_ADST, TX_8X8, 5, 0.6),
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VP10FwdTxfm2dParam(DCT_DCT, TX_16X16, 11, 1.5),
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VP10FwdTxfm2dParam(ADST_DCT, TX_16X16, 11, 1.5),
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VP10FwdTxfm2dParam(DCT_ADST, TX_16X16, 11, 1.5),
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VP10FwdTxfm2dParam(ADST_ADST, TX_16X16, 11, 1.5),
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VP10FwdTxfm2dParam(DCT_DCT, TX_32X32, 70, 7),
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VP10FwdTxfm2dParam(ADST_DCT, TX_32X32, 70, 7),
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VP10FwdTxfm2dParam(DCT_ADST, TX_32X32, 70, 7),
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VP10FwdTxfm2dParam(ADST_ADST, TX_32X32, 70, 7)));
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#endif // CONFIG_VP9_HIGHBITDEPTH
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} // namespace
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103
test/vp10_txfm_test.cc
Normal file
103
test/vp10_txfm_test.cc
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@@ -0,0 +1,103 @@
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/*
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* Copyright (c) 2015 The WebM project authors. All Rights Reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include <stdio.h>
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#include "test/vp10_txfm_test.h"
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namespace libvpx_test {
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int get_txfm1d_size(TX_SIZE tx_size) {
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return 1 << (tx_size + 2);
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}
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void get_txfm1d_type(TX_TYPE txfm2d_type, TYPE_TXFM* type0,
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TYPE_TXFM* type1) {
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switch (txfm2d_type) {
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case DCT_DCT:
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*type0 = TYPE_DCT;
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*type1 = TYPE_DCT;
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break;
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case ADST_DCT:
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*type0 = TYPE_ADST;
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*type1 = TYPE_DCT;
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break;
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case DCT_ADST:
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*type0 = TYPE_DCT;
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*type1 = TYPE_ADST;
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break;
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case ADST_ADST:
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*type0 = TYPE_ADST;
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*type1 = TYPE_ADST;
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break;
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default:
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*type0 = TYPE_DCT;
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*type1 = TYPE_DCT;
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assert(0);
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break;
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}
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}
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double invSqrt2 = 1 / pow(2, 0.5);
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void reference_dct_1d(const double* in, double* out, int size) {
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for (int k = 0; k < size; ++k) {
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out[k] = 0;
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for (int n = 0; n < size; ++n) {
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out[k] += in[n] * cos(M_PI * (2 * n + 1) * k / (2 * size));
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}
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if (k == 0) out[k] = out[k] * invSqrt2;
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}
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}
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void reference_adst_1d(const double* in, double* out, int size) {
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for (int k = 0; k < size; ++k) {
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out[k] = 0;
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for (int n = 0; n < size; ++n) {
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out[k] += in[n] * sin(M_PI * (2 * n + 1) * (2 * k + 1) / (4 * size));
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}
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}
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}
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void reference_hybrid_1d(double* in, double* out, int size, int type) {
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if (type == TYPE_DCT)
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reference_dct_1d(in, out, size);
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else
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reference_adst_1d(in, out, size);
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}
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void reference_hybrid_2d(double* in, double* out, int size,
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int type0, int type1) {
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double* tempOut = new double[size * size];
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for (int r = 0; r < size; r++) {
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// out ->tempOut
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for (int c = 0; c < size; c++) {
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tempOut[r * size + c] = in[c * size + r];
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}
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}
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// dct each row: in -> out
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for (int r = 0; r < size; r++) {
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reference_hybrid_1d(tempOut + r * size, out + r * size, size, type0);
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}
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for (int r = 0; r < size; r++) {
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// out ->tempOut
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for (int c = 0; c < size; c++) {
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tempOut[r * size + c] = out[c * size + r];
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}
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}
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for (int r = 0; r < size; r++) {
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reference_hybrid_1d(tempOut + r * size, out + r * size, size, type1);
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}
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delete[] tempOut;
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}
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} // namespace libvpx_test
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@@ -33,62 +33,19 @@ typedef enum {
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TYPE_LAST
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} TYPE_TXFM;
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static double invSqrt2 = 1 / pow(2, 0.5);
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int get_txfm1d_size(TX_SIZE tx_size);
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static void reference_dct_1d(const double* in, double* out, int size) {
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for (int k = 0; k < size; ++k) {
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out[k] = 0;
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for (int n = 0; n < size; ++n) {
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out[k] += in[n] * cos(M_PI * (2 * n + 1) * k / (2 * size));
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}
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if (k == 0) out[k] = out[k] * invSqrt2;
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}
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}
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void get_txfm1d_type(TX_TYPE txfm2d_type, TYPE_TXFM* type0,
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TYPE_TXFM* type1);
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static void reference_adst_1d(const double* in, double* out, int size) {
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for (int k = 0; k < size; ++k) {
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out[k] = 0;
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for (int n = 0; n < size; ++n) {
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out[k] += in[n] * sin(M_PI * (2 * n + 1) * (2 * k + 1) / (4 * size));
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}
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}
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}
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void reference_dct_1d(const double* in, double* out, int size);
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static void reference_hybrid_1d(double* in, double* out, int size, int type) {
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if (type == TYPE_DCT)
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reference_dct_1d(in, out, size);
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else
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reference_adst_1d(in, out, size);
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}
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void reference_adst_1d(const double* in, double* out, int size);
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static INLINE void reference_hybrid_2d(double* in, double* out, int size,
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int type0, int type1) {
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double* tempOut = new double[size * size];
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void reference_hybrid_1d(double* in, double* out, int size, int type);
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for (int r = 0; r < size; r++) {
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// out ->tempOut
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for (int c = 0; c < size; c++) {
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tempOut[r * size + c] = in[c * size + r];
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}
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}
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// dct each row: in -> out
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for (int r = 0; r < size; r++) {
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reference_hybrid_1d(tempOut + r * size, out + r * size, size, type0);
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}
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for (int r = 0; r < size; r++) {
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// out ->tempOut
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for (int c = 0; c < size; c++) {
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tempOut[r * size + c] = out[c * size + r];
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}
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}
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for (int r = 0; r < size; r++) {
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reference_hybrid_1d(tempOut + r * size, out + r * size, size, type1);
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}
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delete[] tempOut;
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}
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void reference_hybrid_2d(double* in, double* out, int size,
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int type0, int type1);
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template <typename Type1, typename Type2>
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static double compute_avg_abs_error(const Type1* a, const Type2* b,
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