
Cherry-Picked the following commits: 0defd8f Changed "WebM" to "AOMedia" & "webm" to "aomedia" 54e6676 Replace "VPx" by "AVx" 5082a36 Change "Vpx" to "Avx" 7df44f1 Replace "Vp9" w/ "Av1" 967f722 Remove kVp9CodecId 828f30c Change "Vp8" to "AOM" 030b5ff AUTHORS regenerated 2524cae Add ref-mv experimental flag 016762b Change copyright notice to AOMedia form 81e5526 Replace vp9 w/ av1 9b94565 Add missing files fa8ca9f Change "vp9" to "av1" ec838b7 Convert "vp8" to "aom" 80edfa0 Change "VP9" to "AV1" d1a11fb Change "vp8" to "aom" 7b58251 Point to WebM test data dd1a5c8 Replace "VP8" with "AOM" ff00fc0 Change "VPX" to "AOM" 01dee0b Change "vp10" to "av1" in source code cebe6f0 Convert "vpx" to "aom" 17b0567 rename vp10*.mk to av1_*.mk fe5f8a8 rename files vp10_* to av1_* Change-Id: I6fc3d18eb11fc171e46140c836ad5339cf6c9419
342 lines
10 KiB
C++
342 lines
10 KiB
C++
/*
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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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#define AV1_FORCE_AOMBOOL_TREEWRITER
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#include <assert.h>
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#include <math.h>
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#include <stdio.h>
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#include <ctime>
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#include <utility>
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#include <vector>
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#include "third_party/googletest/src/include/gtest/gtest.h"
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#include "test/acm_random.h"
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#include "av1/common/ans.h"
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#include "av1/encoder/treewriter.h"
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#include "aom_dsp/bitreader.h"
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#include "aom_dsp/bitwriter.h"
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namespace {
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typedef std::vector<std::pair<uint8_t, bool> > PvVec;
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PvVec abs_encode_build_vals(int iters) {
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PvVec ret;
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libaom_test::ACMRandom gen(0x30317076);
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double entropy = 0;
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for (int i = 0; i < iters; ++i) {
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uint8_t p;
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do {
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p = gen.Rand8();
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} while (p == 0); // zero is not a valid coding probability
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bool b = gen.Rand8() < p;
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ret.push_back(std::make_pair(static_cast<uint8_t>(p), b));
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double d = p / 256.;
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entropy += -d * log2(d) - (1 - d) * log2(1 - d);
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}
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printf("entropy %f\n", entropy);
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return ret;
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}
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bool check_rabs(const PvVec &pv_vec, uint8_t *buf) {
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AnsCoder a;
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ans_write_init(&a, buf);
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std::clock_t start = std::clock();
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for (PvVec::const_reverse_iterator it = pv_vec.rbegin(); it != pv_vec.rend();
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++it) {
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rabs_write(&a, it->second, 256 - it->first);
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}
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std::clock_t enc_time = std::clock() - start;
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int offset = ans_write_end(&a);
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bool okay = true;
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AnsDecoder d;
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if (ans_read_init(&d, buf, offset)) return false;
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start = std::clock();
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for (PvVec::const_iterator it = pv_vec.begin(); it != pv_vec.end(); ++it) {
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okay &= rabs_read(&d, 256 - it->first) == it->second;
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}
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std::clock_t dec_time = std::clock() - start;
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if (!okay) return false;
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printf("rABS size %d enc_time %f dec_time %f\n", offset,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return ans_read_end(&d);
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}
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bool check_rabs_asc(const PvVec &pv_vec, uint8_t *buf) {
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AnsCoder a;
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ans_write_init(&a, buf);
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std::clock_t start = std::clock();
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for (PvVec::const_reverse_iterator it = pv_vec.rbegin(); it != pv_vec.rend();
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++it) {
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rabs_asc_write(&a, it->second, 256 - it->first);
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}
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std::clock_t enc_time = std::clock() - start;
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int offset = ans_write_end(&a);
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bool okay = true;
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AnsDecoder d;
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if (ans_read_init(&d, buf, offset)) return false;
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start = std::clock();
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for (PvVec::const_iterator it = pv_vec.begin(); it != pv_vec.end(); ++it) {
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okay &= rabs_asc_read(&d, 256 - it->first) == it->second;
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}
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std::clock_t dec_time = std::clock() - start;
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if (!okay) return false;
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printf("rABS (asc) size %d enc_time %f dec_time %f\n", offset,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return ans_read_end(&d);
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}
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bool check_uabs(const PvVec &pv_vec, uint8_t *buf) {
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AnsCoder a;
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ans_write_init(&a, buf);
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std::clock_t start = std::clock();
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for (PvVec::const_reverse_iterator it = pv_vec.rbegin(); it != pv_vec.rend();
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++it) {
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uabs_write(&a, it->second, 256 - it->first);
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}
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std::clock_t enc_time = std::clock() - start;
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int offset = ans_write_end(&a);
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bool okay = true;
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AnsDecoder d;
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if (ans_read_init(&d, buf, offset)) return false;
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start = std::clock();
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for (PvVec::const_iterator it = pv_vec.begin(); it != pv_vec.end(); ++it) {
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okay &= uabs_read(&d, 256 - it->first) == it->second;
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}
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std::clock_t dec_time = std::clock() - start;
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if (!okay) return false;
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printf("uABS size %d enc_time %f dec_time %f\n", offset,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return ans_read_end(&d);
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}
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bool check_aombool(const PvVec &pv_vec, uint8_t *buf) {
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aom_writer w;
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aom_reader r;
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aom_start_encode(&w, buf);
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std::clock_t start = std::clock();
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for (PvVec::const_iterator it = pv_vec.begin(); it != pv_vec.end(); ++it) {
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aom_write(&w, it->second, 256 - it->first);
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}
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std::clock_t enc_time = std::clock() - start;
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aom_stop_encode(&w);
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bool okay = true;
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aom_reader_init(&r, buf, w.pos, NULL, NULL);
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start = std::clock();
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for (PvVec::const_iterator it = pv_vec.begin(); it != pv_vec.end(); ++it) {
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okay &= aom_read(&r, 256 - it->first) == it->second;
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}
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std::clock_t dec_time = std::clock() - start;
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printf("AOM size %d enc_time %f dec_time %f\n", w.pos,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return okay;
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}
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// TODO(aconverse): replace this with a more representative distribution from
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// the codec.
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const rans_sym rans_sym_tab[] = {
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{ 16 * 4, 0 * 4 },
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{ 100 * 4, 16 * 4 },
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{ 70 * 4, 116 * 4 },
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{ 70 * 4, 186 * 4 },
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};
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const int kDistinctSyms = sizeof(rans_sym_tab) / sizeof(rans_sym_tab[0]);
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std::vector<int> ans_encode_build_vals(const rans_sym *tab, int iters) {
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std::vector<int> p_to_sym;
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int i = 0;
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while (p_to_sym.size() < rans_precision) {
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p_to_sym.insert(p_to_sym.end(), tab[i].prob, i);
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++i;
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}
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assert(p_to_sym.size() == rans_precision);
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std::vector<int> ret;
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libaom_test::ACMRandom gen(18543637);
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for (int i = 0; i < iters; ++i) {
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int sym = p_to_sym[gen.Rand8() * 4];
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ret.push_back(sym);
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}
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return ret;
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}
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void rans_build_dec_tab(const struct rans_sym sym_tab[], rans_dec_lut dec_tab) {
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dec_tab[0] = 0;
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for (int i = 1; dec_tab[i - 1] < rans_precision; ++i) {
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dec_tab[i] = dec_tab[i - 1] + sym_tab[i - 1].prob;
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}
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}
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bool check_rans(const std::vector<int> &sym_vec, const rans_sym *const tab,
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uint8_t *buf) {
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AnsCoder a;
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ans_write_init(&a, buf);
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rans_dec_lut dec_tab;
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rans_build_dec_tab(tab, dec_tab);
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std::clock_t start = std::clock();
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for (std::vector<int>::const_reverse_iterator it = sym_vec.rbegin();
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it != sym_vec.rend(); ++it) {
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rans_write(&a, &tab[*it]);
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}
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std::clock_t enc_time = std::clock() - start;
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int offset = ans_write_end(&a);
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bool okay = true;
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AnsDecoder d;
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if (ans_read_init(&d, buf, offset)) return false;
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start = std::clock();
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for (std::vector<int>::const_iterator it = sym_vec.begin();
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it != sym_vec.end(); ++it) {
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okay &= rans_read(&d, dec_tab) == *it;
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}
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std::clock_t dec_time = std::clock() - start;
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if (!okay) return false;
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printf("rANS size %d enc_time %f dec_time %f\n", offset,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return ans_read_end(&d);
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}
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void build_tree(aom_tree_index *tree, int num_syms) {
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aom_tree_index i;
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int sym = 0;
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for (i = 0; i < num_syms - 1; ++i) {
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tree[2 * i] = sym--;
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tree[2 * i + 1] = 2 * (i + 1);
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}
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tree[2 * i - 1] = sym;
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}
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/* The treep array contains the probabilities of nodes of a tree structured
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* like:
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* *
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* / \
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* -sym0 *
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* / \
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* -sym1 *
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* / \
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* -sym2 -sym3
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*/
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void tab2tree(const rans_sym *tab, int tab_size, aom_prob *treep) {
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const unsigned basep = rans_precision;
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unsigned pleft = basep;
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for (int i = 0; i < tab_size - 1; ++i) {
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unsigned prob = (tab[i].prob * basep + basep * 2) / (pleft * 4);
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assert(prob > 0 && prob < 256);
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treep[i] = prob;
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pleft -= tab[i].prob;
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}
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}
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struct sym_bools {
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unsigned bits;
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int len;
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};
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static void make_tree_bits_tab(sym_bools *tab, int num_syms) {
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unsigned bits = 0;
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int len = 0;
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int i;
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for (i = 0; i < num_syms - 1; ++i) {
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bits *= 2;
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++len;
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tab[i].bits = bits;
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tab[i].len = len;
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++bits;
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}
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tab[i].bits = bits;
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tab[i].len = len;
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}
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void build_tpb(aom_prob probs[/*num_syms*/],
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aom_tree_index tree[/*2*num_syms*/],
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sym_bools bit_len[/*num_syms*/],
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const rans_sym sym_tab[/*num_syms*/], int num_syms) {
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tab2tree(sym_tab, num_syms, probs);
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build_tree(tree, num_syms);
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make_tree_bits_tab(bit_len, num_syms);
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}
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bool check_aomtree(const std::vector<int> &sym_vec, const rans_sym *sym_tab,
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uint8_t *buf) {
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aom_writer w;
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aom_reader r;
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aom_start_encode(&w, buf);
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aom_prob probs[kDistinctSyms];
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aom_tree_index tree[2 * kDistinctSyms];
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sym_bools bit_len[kDistinctSyms];
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build_tpb(probs, tree, bit_len, sym_tab, kDistinctSyms);
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std::clock_t start = std::clock();
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for (std::vector<int>::const_iterator it = sym_vec.begin();
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it != sym_vec.end(); ++it) {
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av1_write_tree(&w, tree, probs, bit_len[*it].bits, bit_len[*it].len, 0);
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}
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std::clock_t enc_time = std::clock() - start;
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aom_stop_encode(&w);
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aom_reader_init(&r, buf, w.pos, NULL, NULL);
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start = std::clock();
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for (std::vector<int>::const_iterator it = sym_vec.begin();
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it != sym_vec.end(); ++it) {
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if (aom_read_tree(&r, tree, probs) != *it) return false;
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}
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std::clock_t dec_time = std::clock() - start;
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printf("AOMtree size %u enc_time %f dec_time %f\n", w.pos,
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static_cast<float>(enc_time) / CLOCKS_PER_SEC,
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static_cast<float>(dec_time) / CLOCKS_PER_SEC);
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return true;
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}
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class Av1AbsTest : public ::testing::Test {
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protected:
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static void SetUpTestCase() { pv_vec_ = abs_encode_build_vals(kNumBools); }
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virtual void SetUp() { buf_ = new uint8_t[kNumBools / 8]; }
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virtual void TearDown() { delete[] buf_; }
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static const int kNumBools = 100000000;
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static PvVec pv_vec_;
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uint8_t *buf_;
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};
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PvVec Av1AbsTest::pv_vec_;
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class Av1AnsTest : public ::testing::Test {
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protected:
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static void SetUpTestCase() {
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sym_vec_ = ans_encode_build_vals(rans_sym_tab, kNumSyms);
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}
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virtual void SetUp() { buf_ = new uint8_t[kNumSyms / 2]; }
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virtual void TearDown() { delete[] buf_; }
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static const int kNumSyms = 25000000;
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static std::vector<int> sym_vec_;
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uint8_t *buf_;
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};
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std::vector<int> Av1AnsTest::sym_vec_;
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TEST_F(Av1AbsTest, Avxbool) { EXPECT_TRUE(check_aombool(pv_vec_, buf_)); }
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TEST_F(Av1AbsTest, Rabs) { EXPECT_TRUE(check_rabs(pv_vec_, buf_)); }
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TEST_F(Av1AbsTest, RabsAsc) { EXPECT_TRUE(check_rabs_asc(pv_vec_, buf_)); }
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TEST_F(Av1AbsTest, Uabs) { EXPECT_TRUE(check_uabs(pv_vec_, buf_)); }
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TEST_F(Av1AnsTest, Rans) {
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EXPECT_TRUE(check_rans(sym_vec_, rans_sym_tab, buf_));
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}
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TEST_F(Av1AnsTest, Avxtree) {
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EXPECT_TRUE(check_aomtree(sym_vec_, rans_sym_tab, buf_));
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}
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} // namespace
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