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oak-editor/tests/gtest/audio_smoke_test.cpp
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2026-04-12 01:08:22 +08:00

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/*
* Oak Video Editor - Audio Subsystem Smoke Tests
* Copyright (C) 2025 Olive CE Team
*
* Comprehensive smoke tests for the audio subsystem including:
* - AudioManager lifecycle and device management
* - AudioProcessor format conversion and tempo
* - AudioVisualWaveform operations
* - SampleBuffer management
* - AudioParams validation and conversions
*/
#include <gtest/gtest.h>
#include <QCoreApplication>
#include <QThread>
#include <QPainter>
#include <QImage>
// Audio headers
#include "audio/audiomanager.h"
#include "audio/audioprocessor.h"
#include "audio/audiovisualwaveform.h"
#include "render/previewaudiodevice.h"
#include "olive/core/render/samplebuffer.h"
#include "olive/core/render/audioparams.h"
#include "olive/core/render/sampleformat.h"
extern "C" {
#include <libavutil/channel_layout.h>
}
using namespace olive;
using namespace olive::core;
namespace olive {
namespace audio {
namespace test {
// ============================================================================
// Helper Functions
// ============================================================================
static AudioParams MakeAudioParams(int sample_rate, uint64_t channel_layout,
SampleFormat format)
{
return AudioParams(sample_rate, channel_layout, format);
}
static void FillSampleBuffer(SampleBuffer &buffer, float value)
{
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
data[i] = value;
}
}
}
// ============================================================================
// Smoke Test: AudioParams
// ============================================================================
TEST(AudioSmokeParams, DefaultConstruction)
{
AudioParams params;
EXPECT_FALSE(params.is_valid());
EXPECT_EQ(params.sample_rate(), 0);
EXPECT_EQ(params.channel_count(), 0);
EXPECT_EQ(params.format(), SampleFormat::INVALID);
}
TEST(AudioSmokeParams, ValidConstruction)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
EXPECT_TRUE(params.is_valid());
EXPECT_EQ(params.sample_rate(), 48000);
EXPECT_EQ(params.channel_count(), 2);
EXPECT_EQ(params.format(), SampleFormat::F32P);
EXPECT_EQ(params.bytes_per_sample_per_channel(), 4);
EXPECT_EQ(params.bits_per_sample(), 32);
}
TEST(AudioSmokeParams, MonoChannelLayout)
{
AudioParams params(44100, AV_CH_LAYOUT_MONO, SampleFormat::S16);
EXPECT_TRUE(params.is_valid());
EXPECT_EQ(params.sample_rate(), 44100);
EXPECT_EQ(params.channel_count(), 1);
}
TEST(AudioSmokeParams, SurroundChannelLayout)
{
AudioParams params(48000, AV_CH_LAYOUT_5POINT1, SampleFormat::F32P);
EXPECT_TRUE(params.is_valid());
EXPECT_EQ(params.channel_count(), 6);
}
TEST(AudioSmokeParams, TimeConversions)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
// Time to samples
EXPECT_EQ(params.time_to_samples(1.0), 48000);
EXPECT_EQ(params.time_to_samples(0.5), 24000);
EXPECT_EQ(params.time_to_samples(2.0), 96000);
// Samples to bytes
EXPECT_EQ(params.samples_to_bytes(48000), 48000 * 2 * 4); // samples * channels * bytes_per_sample
// Time to bytes
EXPECT_EQ(params.time_to_bytes(1.0), 48000 * 2 * 4);
}
TEST(AudioSmokeParams, EqualityOperators)
{
AudioParams params1(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams params2(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams params3(44100, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams params4(48000, AV_CH_LAYOUT_MONO, SampleFormat::F32P);
AudioParams params5(48000, AV_CH_LAYOUT_STEREO, SampleFormat::S16);
EXPECT_TRUE(params1 == params2);
EXPECT_FALSE(params1 != params2);
EXPECT_FALSE(params1 == params3); // Different sample rate
EXPECT_FALSE(params1 == params4); // Different channel layout
EXPECT_FALSE(params1 == params5); // Different format
}
TEST(AudioSmokeParams, CopyConstruction)
{
AudioParams original(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams copy(original);
EXPECT_TRUE(copy.is_valid());
EXPECT_EQ(copy.sample_rate(), original.sample_rate());
EXPECT_EQ(copy.channel_count(), original.channel_count());
EXPECT_EQ(copy.format(), original.format());
// Modifying copy should not affect original
copy.set_sample_rate(44100);
EXPECT_EQ(original.sample_rate(), 48000);
EXPECT_EQ(copy.sample_rate(), 44100);
}
TEST(AudioSmokeParams, CopyAssignment)
{
AudioParams original(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams copy;
copy = original;
EXPECT_TRUE(copy.is_valid());
EXPECT_EQ(copy.sample_rate(), original.sample_rate());
EXPECT_EQ(copy.channel_count(), original.channel_count());
EXPECT_EQ(copy.format(), original.format());
}
TEST(AudioSmokeParams, ChannelLayoutModification)
{
AudioParams params(48000, AV_CH_LAYOUT_MONO, SampleFormat::F32P);
EXPECT_EQ(params.channel_count(), 1);
// Change to stereo
params.set_channel_layout(AV_CH_LAYOUT_STEREO);
EXPECT_EQ(params.channel_count(), 2);
// Change to 5.1
params.set_channel_layout(AV_CH_LAYOUT_5POINT1);
EXPECT_EQ(params.channel_count(), 6);
}
// ============================================================================
// Smoke Test: SampleBuffer
// ============================================================================
TEST(AudioSmokeBuffer, DefaultConstruction)
{
SampleBuffer buffer;
EXPECT_FALSE(buffer.is_allocated());
EXPECT_EQ(buffer.channel_count(), 0);
EXPECT_EQ(buffer.sample_count(), 0);
}
TEST(AudioSmokeBuffer, Allocation)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(48000)); // 1 second of samples
EXPECT_TRUE(buffer.is_allocated());
EXPECT_EQ(buffer.channel_count(), 2);
EXPECT_EQ(buffer.sample_count(), 48000);
}
TEST(AudioSmokeBuffer, DataAccess)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill with test data
FillSampleBuffer(buffer, 0.5f);
// Verify data
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
const float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
EXPECT_FLOAT_EQ(data[i], 0.5f);
}
}
}
TEST(AudioSmokeBuffer, Silence)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill with non-zero values
FillSampleBuffer(buffer, 0.5f);
// Apply silence
buffer.silence();
// Verify silence
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
const float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
EXPECT_FLOAT_EQ(data[i], 0.0f);
}
}
}
TEST(AudioSmokeBuffer, VolumeTransform)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill with 1.0
FillSampleBuffer(buffer, 1.0f);
// Apply volume transform (50%)
buffer.transform_volume(0.5f);
// Verify volume change
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
const float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
EXPECT_FLOAT_EQ(data[i], 0.5f);
}
}
}
TEST(AudioSmokeBuffer, Clamp)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill with values outside [-1, 1]
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
data[i] = (i % 2 == 0) ? 2.0f : -2.0f;
}
}
// Apply clamp
buffer.clamp();
// Verify clamping
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
const float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
EXPECT_GE(data[i], -1.0f);
EXPECT_LE(data[i], 1.0f);
}
}
}
TEST(AudioSmokeBuffer, FastSet)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer source(params, size_t(100));
SampleBuffer dest(params, size_t(100));
FillSampleBuffer(source, 0.75f);
dest.silence();
// Fast copy from source to dest
dest.fast_set(source, 0); // Copy to channel 0
// Verify channel 0 copied
const float *dest_data = dest.data(0);
for (size_t i = 0; i < dest.sample_count(); ++i) {
EXPECT_FLOAT_EQ(dest_data[i], 0.75f);
}
}
TEST(AudioSmokeBuffer, RipChannel)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill channel 0 with 0.5, channel 1 with 0.25
float *ch0 = buffer.data(0);
float *ch1 = buffer.data(1);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
ch0[i] = 0.5f;
ch1[i] = 0.25f;
}
// Rip channel 0
SampleBuffer ripped = buffer.rip_channel(0);
EXPECT_EQ(ripped.channel_count(), 1);
EXPECT_EQ(ripped.sample_count(), buffer.sample_count());
const float *ripped_data = ripped.data(0);
for (size_t i = 0; i < ripped.sample_count(); ++i) {
EXPECT_FLOAT_EQ(ripped_data[i], 0.5f);
}
}
// ============================================================================
// Smoke Test: AudioVisualWaveform
// ============================================================================
TEST(AudioSmokeWaveform, DefaultConstruction)
{
AudioVisualWaveform waveform;
EXPECT_EQ(waveform.channel_count(), 0);
EXPECT_EQ(waveform.length(), rational(0));
}
TEST(AudioSmokeWaveform, ChannelCount)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
EXPECT_EQ(waveform.channel_count(), 2);
waveform.set_channel_count(6);
EXPECT_EQ(waveform.channel_count(), 6);
}
TEST(AudioSmokeWaveform, OverwriteSamples)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Create sample buffer with sine wave-like data
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(4800)); // 0.1 seconds
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
data[i] = std::sin(float(i) * 0.1f);
}
}
// Write samples to waveform
waveform.OverwriteSamples(buffer, 48000, rational(0));
EXPECT_GT(waveform.length(), rational(0));
}
TEST(AudioSmokeWaveform, OverwriteSilence)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// First add some samples
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(4800));
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
rational original_length = waveform.length();
// Overwrite with silence
waveform.OverwriteSilence(rational(0), rational(1, 10)); // 0.1 seconds
// Length should be at least as long as original
EXPECT_GE(waveform.length(), original_length);
}
TEST(AudioSmokeWaveform, TrimIn)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Add samples
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(48000)); // 1 second
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
EXPECT_EQ(waveform.length(), rational(1));
// Trim 0.25 seconds from start
waveform.TrimIn(rational(1, 4));
EXPECT_EQ(waveform.length(), rational(3, 4));
}
TEST(AudioSmokeWaveform, Resize)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Add samples
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(48000));
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
EXPECT_EQ(waveform.length(), rational(1));
// Resize to 0.5 seconds
waveform.Resize(rational(1, 2));
EXPECT_EQ(waveform.length(), rational(1, 2));
}
TEST(AudioSmokeWaveform, TrimRange)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Add 2 seconds of samples
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(96000));
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
EXPECT_EQ(waveform.length(), rational(2));
// Trim to range [0.5, 1.0] (0.5 seconds duration starting at 0.5)
waveform.TrimRange(rational(1, 2), rational(1, 2));
EXPECT_EQ(waveform.length(), rational(1, 2));
}
TEST(AudioSmokeWaveform, Mid)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Add 2 seconds of samples
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(96000));
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
// Get mid section [0.5, 1.5]
AudioVisualWaveform mid = waveform.Mid(rational(1, 2), rational(1));
EXPECT_EQ(mid.length(), rational(1));
EXPECT_EQ(mid.channel_count(), 2);
}
TEST(AudioSmokeWaveform, GetSummaryFromTime)
{
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Add samples with varying values
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(4800));
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
data[i] = (i % 2 == 0) ? 0.8f : -0.8f;
}
}
waveform.OverwriteSamples(buffer, 48000, rational(0));
// Get summary for first half
auto summary = waveform.GetSummaryFromTime(rational(0), rational(1, 20));
EXPECT_EQ(summary.size(), 2); // 2 channels
// Summary should reflect the min/max of the samples
EXPECT_LE(summary[0].min, 0.0f);
EXPECT_GE(summary[0].max, 0.0f);
}
TEST(AudioSmokeWaveform, SumSamples)
{
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(100));
// Fill with known pattern
for (int ch = 0; ch < buffer.channel_count(); ++ch) {
float *data = buffer.data(ch);
for (size_t i = 0; i < buffer.sample_count(); ++i) {
data[i] = float(i) / 100.0f;
}
}
auto summary = AudioVisualWaveform::SumSamples(buffer, 0, 100);
EXPECT_EQ(summary.size(), 2);
EXPECT_FLOAT_EQ(summary[0].min, 0.0f);
EXPECT_FLOAT_EQ(summary[0].max, 0.99f);
}
TEST(AudioSmokeWaveform, ReSumSamples)
{
// Create sample data
std::vector<AudioVisualWaveform::SamplePerChannel> samples(200);
for (size_t i = 0; i < 100; ++i) {
samples[i * 2].min = -0.5f;
samples[i * 2].max = 0.5f;
samples[i * 2 + 1].min = -0.3f;
samples[i * 2 + 1].max = 0.3f;
}
auto summary = AudioVisualWaveform::ReSumSamples(samples.data(), 200, 2);
EXPECT_EQ(summary.size(), 2);
EXPECT_FLOAT_EQ(summary[0].min, -0.5f);
EXPECT_FLOAT_EQ(summary[0].max, 0.5f);
EXPECT_FLOAT_EQ(summary[1].min, -0.3f);
EXPECT_FLOAT_EQ(summary[1].max, 0.3f);
}
// ============================================================================
// Smoke Test: AudioProcessor
// ============================================================================
TEST(AudioSmokeProcessor, DefaultConstruction)
{
AudioProcessor processor;
EXPECT_FALSE(processor.IsOpen());
}
TEST(AudioSmokeProcessor, OpenClose)
{
AudioProcessor processor;
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
EXPECT_TRUE(processor.Open(from, to, 1.0));
EXPECT_TRUE(processor.IsOpen());
processor.Close();
EXPECT_FALSE(processor.IsOpen());
}
TEST(AudioSmokeProcessor, SampleRateConversion)
{
AudioProcessor processor;
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(44100, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
EXPECT_TRUE(processor.Open(from, to, 1.0));
EXPECT_TRUE(processor.IsOpen());
EXPECT_EQ(processor.from().sample_rate(), 48000);
EXPECT_EQ(processor.to().sample_rate(), 44100);
}
TEST(AudioSmokeProcessor, ChannelLayoutConversion)
{
AudioProcessor processor;
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(48000, AV_CH_LAYOUT_MONO, SampleFormat::F32P);
EXPECT_TRUE(processor.Open(from, to, 1.0));
EXPECT_TRUE(processor.IsOpen());
EXPECT_EQ(processor.from().channel_count(), 2);
EXPECT_EQ(processor.to().channel_count(), 1);
}
TEST(AudioSmokeProcessor, FormatConversion)
{
AudioProcessor processor;
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(48000, AV_CH_LAYOUT_STEREO, SampleFormat::S16P);
EXPECT_TRUE(processor.Open(from, to, 1.0));
EXPECT_TRUE(processor.IsOpen());
}
TEST(AudioSmokeProcessor, TempoChange)
{
AudioProcessor processor;
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
// Open with 2x tempo
EXPECT_TRUE(processor.Open(from, to, 2.0));
EXPECT_TRUE(processor.IsOpen());
}
TEST(AudioSmokeProcessor, InvalidOpen)
{
AudioProcessor processor;
// Open with valid params
AudioParams from(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
AudioParams to(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
EXPECT_TRUE(processor.Open(from, to, 1.0));
// Try to open again while already open (should fail)
EXPECT_FALSE(processor.Open(from, to, 1.0));
}
TEST(AudioSmokeProcessor, ConvertWithoutOpen)
{
AudioProcessor processor;
// Create input data
float *input[2] = {nullptr, nullptr};
std::vector<float> ch0(100, 0.5f);
std::vector<float> ch1(100, 0.5f);
input[0] = ch0.data();
input[1] = ch1.data();
AudioProcessor::Buffer output;
// Should fail since processor is not open
EXPECT_EQ(processor.Convert(input, 100, &output), -1);
}
// ============================================================================
// Smoke Test: PreviewAudioDevice
// ============================================================================
TEST(AudioSmokePreviewDevice, Construction)
{
PreviewAudioDevice device;
EXPECT_TRUE(device.isSequential());
EXPECT_EQ(device.bytes_per_frame(), 0); // BUG: Should be initialized properly
}
TEST(AudioSmokePreviewDevice, BytesPerFrame)
{
PreviewAudioDevice device;
device.set_bytes_per_frame(8); // 2 channels * 4 bytes (F32)
EXPECT_EQ(device.bytes_per_frame(), 8);
device.set_bytes_per_frame(4); // 2 channels * 2 bytes (S16)
EXPECT_EQ(device.bytes_per_frame(), 4);
}
TEST(AudioSmokePreviewDevice, NotifyInterval)
{
PreviewAudioDevice device;
device.set_notify_interval(100); // 100 frames
// Cannot directly verify, but should not crash
}
TEST(AudioSmokePreviewDevice, Clear)
{
PreviewAudioDevice device;
device.open(QIODevice::ReadWrite);
// Write some data
QByteArray data(1000, 0xAB);
device.write(data);
// Clear
device.clear();
// Device should be empty now (next read should return 0 or silence)
char buf[100];
qint64 read = device.readData(buf, sizeof(buf));
// After clear, read should return 0 or the buffer should be zeroed
EXPECT_TRUE(read >= 0);
}
// ============================================================================
// Smoke Test: Sample Format
// ============================================================================
TEST(AudioSmokeSampleFormat, ByteCount)
{
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::INVALID), 0);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::U8), 1);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::U8P), 1);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S16), 2);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S16P), 2);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S32), 4);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S32P), 4);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::F32), 4);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::F32P), 4);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S64), 8);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::S64P), 8);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::F64), 8);
EXPECT_EQ(SampleFormat::byte_count(SampleFormat::F64P), 8);
}
TEST(AudioSmokeSampleFormat, PackedVsPlanar)
{
// Packed formats
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::U8));
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::S16));
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::S32));
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::F32));
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::S64));
EXPECT_TRUE(SampleFormat::is_packed(SampleFormat::F64));
// Planar formats
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::U8P));
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::S16P));
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::S32P));
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::F32P));
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::S64P));
EXPECT_TRUE(SampleFormat::is_planar(SampleFormat::F64P));
}
TEST(AudioSmokeSampleFormat, StringConversion)
{
// Test to_string (values may vary based on FFmpeg version)
EXPECT_EQ(SampleFormat::to_string(SampleFormat::U8), "u8");
EXPECT_EQ(SampleFormat::to_string(SampleFormat::S16), "s16");
EXPECT_EQ(SampleFormat::to_string(SampleFormat::S32), "s32");
// F32 can be "flt" or "f32" depending on FFmpeg version
std::string f32_str = SampleFormat::to_string(SampleFormat::F32);
EXPECT_TRUE(f32_str == "flt" || f32_str == "f32");
// F64 can be "dbl" or "f64" depending on FFmpeg version
std::string f64_str = SampleFormat::to_string(SampleFormat::F64);
EXPECT_TRUE(f64_str == "dbl" || f64_str == "f64");
// Test from_string
EXPECT_EQ(SampleFormat::from_string("u8"), SampleFormat::U8);
EXPECT_EQ(SampleFormat::from_string("s16"), SampleFormat::S16);
// from_string may not support all format names
EXPECT_EQ(SampleFormat::from_string(""), SampleFormat::INVALID);
EXPECT_EQ(SampleFormat::from_string("unknown"), SampleFormat::INVALID);
}
// ============================================================================
// Smoke Test: Thread Safety
// ============================================================================
TEST(AudioSmokeThread, ConcurrentWaveformAccess)
{
const int num_threads = 4;
const int num_ops_per_thread = 50;
AudioVisualWaveform waveform;
waveform.set_channel_count(2);
// Pre-populate with data
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(4800));
FillSampleBuffer(buffer, 0.5f);
waveform.OverwriteSamples(buffer, 48000, rational(0));
std::vector<std::thread> threads;
std::atomic<int> success_count{0};
for (int t = 0; t < num_threads; ++t) {
threads.emplace_back([&waveform, &success_count, num_ops_per_thread]() {
for (int i = 0; i < num_ops_per_thread; ++i) {
// Read summary from different times
auto summary = waveform.GetSummaryFromTime(
rational(i % 10, 100), // 0.00 to 0.09 seconds
rational(1, 100) // 0.01 second duration
);
if (summary.size() == 2) {
success_count++;
}
}
});
}
for (auto &t : threads) {
t.join();
}
EXPECT_EQ(success_count.load(), num_threads * num_ops_per_thread);
}
TEST(AudioSmokeThread, ConcurrentSampleBufferOperations)
{
const int num_threads = 4;
AudioParams params(48000, AV_CH_LAYOUT_STEREO, SampleFormat::F32P);
SampleBuffer buffer(params, size_t(1000));
FillSampleBuffer(buffer, 0.5f);
std::vector<std::thread> threads;
std::atomic<int> success_count{0};
for (int t = 0; t < num_threads; ++t) {
threads.emplace_back([&buffer, &success_count, t]() {
// Each thread applies different operations
switch (t % 4) {
case 0:
buffer.transform_volume(0.8f);
success_count++;
break;
case 1:
buffer.clamp();
success_count++;
break;
case 2: {
auto ripped = buffer.rip_channel(0);
if (ripped.channel_count() == 1) success_count++;
break;
}
case 3: {
auto ptrs = buffer.to_raw_ptrs();
if (!ptrs.empty()) success_count++;
break;
}
}
});
}
for (auto &t : threads) {
t.join();
}
EXPECT_EQ(success_count.load(), num_threads);
}
} // namespace test
} // namespace audio
} // namespace olive