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This CL adds the ability to toggle the AGC2 adaptive digital mode in audioproc_f Bug: webrtc:5298 Change-Id: If1567d8c87f88992dff89253edb293a56cee0a73 Reviewed-on: https://webrtc-review.googlesource.com/c/103361 Reviewed-by: Alex Loiko <aleloi@webrtc.org> Commit-Queue: Per Åhgren <peah@webrtc.org> Cr-Commit-Position: refs/heads/master@{#24954}
505 lines
21 KiB
C++
505 lines
21 KiB
C++
/*
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* Copyright (c) 2014 The WebRTC 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 <string.h>
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#include <iostream>
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#include <memory>
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#include <string>
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#include <utility>
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#include "modules/audio_processing/include/audio_processing.h"
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#include "modules/audio_processing/test/aec_dump_based_simulator.h"
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#include "modules/audio_processing/test/audio_processing_simulator.h"
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#include "modules/audio_processing/test/audioproc_float_impl.h"
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#include "modules/audio_processing/test/wav_based_simulator.h"
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#include "rtc_base/flags.h"
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namespace webrtc {
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namespace test {
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namespace {
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const int kParameterNotSpecifiedValue = -10000;
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const char kUsageDescription[] =
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"Usage: audioproc_f [options] -i <input.wav>\n"
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" or\n"
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" audioproc_f [options] -dump_input <aec_dump>\n"
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"\n\n"
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"Command-line tool to simulate a call using the audio "
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"processing module, either based on wav files or "
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"protobuf debug dump recordings.\n";
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DEFINE_string(dump_input, "", "Aec dump input filename");
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DEFINE_string(dump_output, "", "Aec dump output filename");
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DEFINE_string(i, "", "Forward stream input wav filename");
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DEFINE_string(o, "", "Forward stream output wav filename");
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DEFINE_string(ri, "", "Reverse stream input wav filename");
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DEFINE_string(ro, "", "Reverse stream output wav filename");
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DEFINE_string(artificial_nearend, "", "Artificial nearend wav filename");
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DEFINE_int(output_num_channels,
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kParameterNotSpecifiedValue,
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"Number of forward stream output channels");
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DEFINE_int(reverse_output_num_channels,
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kParameterNotSpecifiedValue,
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"Number of Reverse stream output channels");
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DEFINE_int(output_sample_rate_hz,
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kParameterNotSpecifiedValue,
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"Forward stream output sample rate in Hz");
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DEFINE_int(reverse_output_sample_rate_hz,
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kParameterNotSpecifiedValue,
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"Reverse stream output sample rate in Hz");
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DEFINE_bool(fixed_interface,
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false,
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"Use the fixed interface when operating on wav files");
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DEFINE_int(aec,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the echo canceller");
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DEFINE_int(aecm,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the mobile echo controller");
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DEFINE_int(ed,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate (0) the residual echo detector");
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DEFINE_string(ed_graph, "", "Output filename for graph of echo likelihood");
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DEFINE_int(agc,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the AGC");
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DEFINE_int(agc2,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the AGC2");
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DEFINE_int(pre_amplifier,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the pre amplifier");
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DEFINE_int(hpf,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the high-pass filter");
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DEFINE_int(ns,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the noise suppressor");
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DEFINE_int(ts,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the transient suppressor");
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DEFINE_int(vad,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the voice activity detector");
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DEFINE_int(le,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the level estimator");
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DEFINE_bool(all_default,
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false,
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"Activate all of the default components (will be overridden by any "
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"other settings)");
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DEFINE_int(aec_suppression_level,
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kParameterNotSpecifiedValue,
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"Set the aec suppression level (0-2)");
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DEFINE_int(delay_agnostic,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the AEC delay agnostic mode");
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DEFINE_int(extended_filter,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the AEC extended filter mode");
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DEFINE_int(aec3,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the experimental AEC mode AEC3");
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DEFINE_int(experimental_agc,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the experimental AGC");
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DEFINE_int(experimental_agc_disable_digital_adaptive,
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kParameterNotSpecifiedValue,
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"Force-deactivate (1) digital adaptation in "
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"experimental AGC. Digital adaptation is active by default (0).");
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DEFINE_int(experimental_agc_analyze_before_aec,
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kParameterNotSpecifiedValue,
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"Make level estimation happen before AEC"
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" in the experimental AGC. After AEC is the default (0)");
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DEFINE_int(
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experimental_agc_agc2_level_estimator,
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kParameterNotSpecifiedValue,
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"AGC2 level estimation"
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" in the experimental AGC. AGC1 level estimation is the default (0)");
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DEFINE_int(
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refined_adaptive_filter,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the refined adaptive filter functionality");
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DEFINE_int(agc_mode, kParameterNotSpecifiedValue, "Specify the AGC mode (0-2)");
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DEFINE_int(agc_target_level,
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kParameterNotSpecifiedValue,
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"Specify the AGC target level (0-31)");
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DEFINE_int(agc_limiter,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the level estimator");
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DEFINE_int(agc_compression_gain,
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kParameterNotSpecifiedValue,
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"Specify the AGC compression gain (0-90)");
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DEFINE_float(agc2_enable_adaptive_gain,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) the AGC2 adaptive gain");
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DEFINE_float(agc2_fixed_gain_db, 0.f, "AGC2 fixed gain (dB) to apply");
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DEFINE_float(pre_amplifier_gain_factor,
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1.f,
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"Pre-amplifier gain factor (linear) to apply");
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DEFINE_int(vad_likelihood,
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kParameterNotSpecifiedValue,
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"Specify the VAD likelihood (0-3)");
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DEFINE_int(ns_level, kParameterNotSpecifiedValue, "Specify the NS level (0-3)");
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DEFINE_int(stream_delay,
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kParameterNotSpecifiedValue,
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"Specify the stream delay in ms to use");
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DEFINE_int(use_stream_delay,
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kParameterNotSpecifiedValue,
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"Activate (1) or deactivate(0) reporting the stream delay");
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DEFINE_int(stream_drift_samples,
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kParameterNotSpecifiedValue,
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"Specify the number of stream drift samples to use");
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DEFINE_int(initial_mic_level, 100, "Initial mic level (0-255)");
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DEFINE_int(simulate_mic_gain,
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0,
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"Activate (1) or deactivate(0) the analog mic gain simulation");
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DEFINE_int(simulated_mic_kind,
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kParameterNotSpecifiedValue,
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"Specify which microphone kind to use for microphone simulation");
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DEFINE_bool(performance_report, false, "Report the APM performance ");
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DEFINE_bool(verbose, false, "Produce verbose output");
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DEFINE_bool(quiet, false, "Avoid producing information about the progress.");
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DEFINE_bool(bitexactness_report,
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false,
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"Report bitexactness for aec dump result reproduction");
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DEFINE_bool(discard_settings_in_aecdump,
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false,
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"Discard any config settings specified in the aec dump");
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DEFINE_bool(store_intermediate_output,
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false,
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"Creates new output files after each init");
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DEFINE_string(custom_call_order_file, "", "Custom process API call order file");
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DEFINE_bool(print_aec3_parameter_values,
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false,
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"Print parameter values used in AEC3 in JSON-format");
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DEFINE_string(aec3_settings,
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"",
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"File in JSON-format with custom AEC3 settings");
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DEFINE_bool(help, false, "Print this message");
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void SetSettingIfSpecified(const std::string& value,
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absl::optional<std::string>* parameter) {
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if (value.compare("") != 0) {
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*parameter = value;
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}
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}
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void SetSettingIfSpecified(int value, absl::optional<int>* parameter) {
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if (value != kParameterNotSpecifiedValue) {
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*parameter = value;
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}
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}
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void SetSettingIfFlagSet(int32_t flag, absl::optional<bool>* parameter) {
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if (flag == 0) {
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*parameter = false;
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} else if (flag == 1) {
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*parameter = true;
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}
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}
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SimulationSettings CreateSettings() {
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SimulationSettings settings;
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if (FLAG_all_default) {
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settings.use_le = true;
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settings.use_vad = true;
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settings.use_ie = false;
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settings.use_ts = true;
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settings.use_ns = true;
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settings.use_hpf = true;
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settings.use_agc = true;
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settings.use_agc2 = false;
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settings.use_pre_amplifier = false;
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settings.use_aec = true;
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settings.use_aecm = false;
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settings.use_ed = false;
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}
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SetSettingIfSpecified(FLAG_dump_input, &settings.aec_dump_input_filename);
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SetSettingIfSpecified(FLAG_dump_output, &settings.aec_dump_output_filename);
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SetSettingIfSpecified(FLAG_i, &settings.input_filename);
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SetSettingIfSpecified(FLAG_o, &settings.output_filename);
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SetSettingIfSpecified(FLAG_ri, &settings.reverse_input_filename);
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SetSettingIfSpecified(FLAG_ro, &settings.reverse_output_filename);
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SetSettingIfSpecified(FLAG_artificial_nearend,
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&settings.artificial_nearend_filename);
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SetSettingIfSpecified(FLAG_output_num_channels,
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&settings.output_num_channels);
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SetSettingIfSpecified(FLAG_reverse_output_num_channels,
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&settings.reverse_output_num_channels);
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SetSettingIfSpecified(FLAG_output_sample_rate_hz,
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&settings.output_sample_rate_hz);
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SetSettingIfSpecified(FLAG_reverse_output_sample_rate_hz,
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&settings.reverse_output_sample_rate_hz);
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SetSettingIfFlagSet(FLAG_aec, &settings.use_aec);
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SetSettingIfFlagSet(FLAG_aecm, &settings.use_aecm);
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SetSettingIfFlagSet(FLAG_ed, &settings.use_ed);
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SetSettingIfSpecified(FLAG_ed_graph, &settings.ed_graph_output_filename);
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SetSettingIfFlagSet(FLAG_agc, &settings.use_agc);
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SetSettingIfFlagSet(FLAG_agc2, &settings.use_agc2);
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SetSettingIfFlagSet(FLAG_pre_amplifier, &settings.use_pre_amplifier);
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SetSettingIfFlagSet(FLAG_hpf, &settings.use_hpf);
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SetSettingIfFlagSet(FLAG_ns, &settings.use_ns);
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SetSettingIfFlagSet(FLAG_ts, &settings.use_ts);
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SetSettingIfFlagSet(FLAG_vad, &settings.use_vad);
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SetSettingIfFlagSet(FLAG_le, &settings.use_le);
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SetSettingIfSpecified(FLAG_aec_suppression_level,
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&settings.aec_suppression_level);
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SetSettingIfFlagSet(FLAG_delay_agnostic, &settings.use_delay_agnostic);
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SetSettingIfFlagSet(FLAG_extended_filter, &settings.use_extended_filter);
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SetSettingIfFlagSet(FLAG_refined_adaptive_filter,
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&settings.use_refined_adaptive_filter);
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SetSettingIfFlagSet(FLAG_aec3, &settings.use_aec3);
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SetSettingIfFlagSet(FLAG_experimental_agc, &settings.use_experimental_agc);
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SetSettingIfFlagSet(FLAG_experimental_agc_disable_digital_adaptive,
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&settings.experimental_agc_disable_digital_adaptive);
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SetSettingIfFlagSet(FLAG_experimental_agc_analyze_before_aec,
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&settings.experimental_agc_analyze_before_aec);
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SetSettingIfFlagSet(FLAG_experimental_agc_agc2_level_estimator,
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&settings.use_experimental_agc_agc2_level_estimator);
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SetSettingIfSpecified(FLAG_agc_mode, &settings.agc_mode);
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SetSettingIfSpecified(FLAG_agc_target_level, &settings.agc_target_level);
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SetSettingIfFlagSet(FLAG_agc_limiter, &settings.use_agc_limiter);
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SetSettingIfSpecified(FLAG_agc_compression_gain,
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&settings.agc_compression_gain);
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SetSettingIfFlagSet(FLAG_agc2_enable_adaptive_gain,
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&settings.agc2_use_adaptive_gain);
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settings.agc2_fixed_gain_db = FLAG_agc2_fixed_gain_db;
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settings.pre_amplifier_gain_factor = FLAG_pre_amplifier_gain_factor;
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SetSettingIfSpecified(FLAG_vad_likelihood, &settings.vad_likelihood);
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SetSettingIfSpecified(FLAG_ns_level, &settings.ns_level);
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SetSettingIfSpecified(FLAG_stream_delay, &settings.stream_delay);
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SetSettingIfFlagSet(FLAG_use_stream_delay, &settings.use_stream_delay);
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SetSettingIfSpecified(FLAG_stream_drift_samples,
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&settings.stream_drift_samples);
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SetSettingIfSpecified(FLAG_custom_call_order_file,
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&settings.custom_call_order_filename);
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SetSettingIfSpecified(FLAG_aec3_settings, &settings.aec3_settings_filename);
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settings.initial_mic_level = FLAG_initial_mic_level;
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settings.simulate_mic_gain = FLAG_simulate_mic_gain;
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SetSettingIfSpecified(FLAG_simulated_mic_kind, &settings.simulated_mic_kind);
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settings.report_performance = FLAG_performance_report;
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settings.use_verbose_logging = FLAG_verbose;
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settings.use_quiet_output = FLAG_quiet;
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settings.report_bitexactness = FLAG_bitexactness_report;
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settings.discard_all_settings_in_aecdump = FLAG_discard_settings_in_aecdump;
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settings.fixed_interface = FLAG_fixed_interface;
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settings.store_intermediate_output = FLAG_store_intermediate_output;
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settings.print_aec3_parameter_values = FLAG_print_aec3_parameter_values;
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return settings;
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}
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void ReportConditionalErrorAndExit(bool condition, const std::string& message) {
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if (condition) {
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std::cerr << message << std::endl;
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exit(1);
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}
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}
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void PerformBasicParameterSanityChecks(const SimulationSettings& settings) {
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if (settings.input_filename || settings.reverse_input_filename) {
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ReportConditionalErrorAndExit(!!settings.aec_dump_input_filename,
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"Error: The aec dump cannot be specified "
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"together with input wav files!\n");
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ReportConditionalErrorAndExit(!!settings.artificial_nearend_filename,
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"Error: The artificial nearend cannot be "
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"specified together with input wav files!\n");
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ReportConditionalErrorAndExit(!settings.input_filename,
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"Error: When operating at wav files, the "
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"input wav filename must be "
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"specified!\n");
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ReportConditionalErrorAndExit(
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settings.reverse_output_filename && !settings.reverse_input_filename,
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"Error: When operating at wav files, the reverse input wav filename "
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"must be specified if the reverse output wav filename is specified!\n");
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} else {
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ReportConditionalErrorAndExit(!settings.aec_dump_input_filename,
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"Error: Either the aec dump or the wav "
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"input files must be specified!\n");
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}
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ReportConditionalErrorAndExit(
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settings.use_aec && *settings.use_aec && settings.use_aecm &&
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*settings.use_aecm,
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"Error: The AEC and the AECM cannot be activated at the same time!\n");
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ReportConditionalErrorAndExit(
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settings.output_sample_rate_hz && *settings.output_sample_rate_hz <= 0,
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"Error: --output_sample_rate_hz must be positive!\n");
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ReportConditionalErrorAndExit(
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settings.reverse_output_sample_rate_hz &&
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settings.output_sample_rate_hz &&
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*settings.output_sample_rate_hz <= 0,
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"Error: --reverse_output_sample_rate_hz must be positive!\n");
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ReportConditionalErrorAndExit(
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settings.output_num_channels && *settings.output_num_channels <= 0,
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"Error: --output_num_channels must be positive!\n");
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ReportConditionalErrorAndExit(
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settings.reverse_output_num_channels &&
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*settings.reverse_output_num_channels <= 0,
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"Error: --reverse_output_num_channels must be positive!\n");
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ReportConditionalErrorAndExit(settings.aec_suppression_level &&
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((*settings.aec_suppression_level) < 1 ||
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(*settings.aec_suppression_level) > 2),
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"Error: --aec_suppression_level must be "
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"specified between 1 and 2. 0 is "
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"deprecated.\n");
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ReportConditionalErrorAndExit(
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settings.agc_target_level && ((*settings.agc_target_level) < 0 ||
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(*settings.agc_target_level) > 31),
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"Error: --agc_target_level must be specified between 0 and 31.\n");
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ReportConditionalErrorAndExit(
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settings.agc_compression_gain && ((*settings.agc_compression_gain) < 0 ||
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(*settings.agc_compression_gain) > 90),
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"Error: --agc_compression_gain must be specified between 0 and 90.\n");
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ReportConditionalErrorAndExit(
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settings.use_agc2 && *settings.use_agc2 &&
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((settings.agc2_fixed_gain_db) < 0 ||
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(settings.agc2_fixed_gain_db) > 90),
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"Error: --agc2_fixed_gain_db must be specified between 0 and 90.\n");
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ReportConditionalErrorAndExit(
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settings.vad_likelihood &&
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((*settings.vad_likelihood) < 0 || (*settings.vad_likelihood) > 3),
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"Error: --vad_likelihood must be specified between 0 and 3.\n");
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ReportConditionalErrorAndExit(
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settings.ns_level &&
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((*settings.ns_level) < 0 || (*settings.ns_level) > 3),
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"Error: --ns_level must be specified between 0 and 3.\n");
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ReportConditionalErrorAndExit(
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settings.report_bitexactness && !settings.aec_dump_input_filename,
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"Error: --bitexactness_report can only be used when operating on an "
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"aecdump\n");
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ReportConditionalErrorAndExit(
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settings.custom_call_order_filename && settings.aec_dump_input_filename,
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"Error: --custom_call_order_file cannot be used when operating on an "
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"aecdump\n");
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ReportConditionalErrorAndExit(
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(settings.initial_mic_level < 0 || settings.initial_mic_level > 255),
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"Error: --initial_mic_level must be specified between 0 and 255.\n");
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ReportConditionalErrorAndExit(
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settings.simulated_mic_kind && !settings.simulate_mic_gain,
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"Error: --simulated_mic_kind cannot be specified when mic simulation is "
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"disabled\n");
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ReportConditionalErrorAndExit(
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!settings.simulated_mic_kind && settings.simulate_mic_gain,
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"Error: --simulated_mic_kind must be specified when mic simulation is "
|
|
"enabled\n");
|
|
|
|
auto valid_wav_name = [](const std::string& wav_file_name) {
|
|
if (wav_file_name.size() < 5) {
|
|
return false;
|
|
}
|
|
if ((wav_file_name.compare(wav_file_name.size() - 4, 4, ".wav") == 0) ||
|
|
(wav_file_name.compare(wav_file_name.size() - 4, 4, ".WAV") == 0)) {
|
|
return true;
|
|
}
|
|
return false;
|
|
};
|
|
|
|
ReportConditionalErrorAndExit(
|
|
settings.input_filename && (!valid_wav_name(*settings.input_filename)),
|
|
"Error: --i must be a valid .wav file name.\n");
|
|
|
|
ReportConditionalErrorAndExit(
|
|
settings.output_filename && (!valid_wav_name(*settings.output_filename)),
|
|
"Error: --o must be a valid .wav file name.\n");
|
|
|
|
ReportConditionalErrorAndExit(
|
|
settings.reverse_input_filename &&
|
|
(!valid_wav_name(*settings.reverse_input_filename)),
|
|
"Error: --ri must be a valid .wav file name.\n");
|
|
|
|
ReportConditionalErrorAndExit(
|
|
settings.reverse_output_filename &&
|
|
(!valid_wav_name(*settings.reverse_output_filename)),
|
|
"Error: --ro must be a valid .wav file name.\n");
|
|
|
|
ReportConditionalErrorAndExit(
|
|
settings.artificial_nearend_filename &&
|
|
!valid_wav_name(*settings.artificial_nearend_filename),
|
|
"Error: --artifical_nearend must be a valid .wav file name.\n");
|
|
}
|
|
|
|
} // namespace
|
|
|
|
int AudioprocFloatImpl(std::unique_ptr<AudioProcessingBuilder> ap_builder,
|
|
int argc,
|
|
char* argv[]) {
|
|
if (rtc::FlagList::SetFlagsFromCommandLine(&argc, argv, true) || FLAG_help ||
|
|
argc != 1) {
|
|
printf("%s", kUsageDescription);
|
|
if (FLAG_help) {
|
|
rtc::FlagList::Print(nullptr, false);
|
|
return 0;
|
|
}
|
|
return 1;
|
|
}
|
|
|
|
SimulationSettings settings = CreateSettings();
|
|
PerformBasicParameterSanityChecks(settings);
|
|
std::unique_ptr<AudioProcessingSimulator> processor;
|
|
|
|
if (settings.aec_dump_input_filename) {
|
|
processor.reset(new AecDumpBasedSimulator(settings, std::move(ap_builder)));
|
|
} else {
|
|
processor.reset(new WavBasedSimulator(settings, std::move(ap_builder)));
|
|
}
|
|
|
|
processor->Process();
|
|
|
|
if (settings.report_performance) {
|
|
const auto& proc_time = processor->proc_time();
|
|
int64_t exec_time_us = proc_time.sum / rtc::kNumNanosecsPerMicrosec;
|
|
std::cout << std::endl
|
|
<< "Execution time: " << exec_time_us * 1e-6 << " s, File time: "
|
|
<< processor->get_num_process_stream_calls() * 1.f /
|
|
AudioProcessingSimulator::kChunksPerSecond
|
|
<< std::endl
|
|
<< "Time per fwd stream chunk (mean, max, min): " << std::endl
|
|
<< exec_time_us * 1.f / processor->get_num_process_stream_calls()
|
|
<< " us, " << 1.f * proc_time.max / rtc::kNumNanosecsPerMicrosec
|
|
<< " us, " << 1.f * proc_time.min / rtc::kNumNanosecsPerMicrosec
|
|
<< " us" << std::endl;
|
|
}
|
|
|
|
if (settings.report_bitexactness && settings.aec_dump_input_filename) {
|
|
if (processor->OutputWasBitexact()) {
|
|
std::cout << "The processing was bitexact.";
|
|
} else {
|
|
std::cout << "The processing was not bitexact.";
|
|
}
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
} // namespace test
|
|
} // namespace webrtc
|