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oak-editor/app/codec/samplebuffer.cpp
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/***
Olive - Non-Linear Video Editor
Copyright (C) 2021 Olive Team
This program is free software: you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation, either version 3 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program. If not, see <http://www.gnu.org/licenses/>.
***/
#include "samplebuffer.h"
namespace olive {
SampleBuffer::SampleBuffer() :
sample_count_per_channel_(0)
{
}
SampleBufferPtr SampleBuffer::Create()
{
return std::make_shared<SampleBuffer>();
}
SampleBufferPtr SampleBuffer::CreateAllocated(const AudioParams &audio_params, const rational &length)
{
return CreateAllocated(audio_params, audio_params.time_to_samples(length));
}
SampleBufferPtr SampleBuffer::CreateAllocated(const AudioParams &audio_params, int samples_per_channel)
{
SampleBufferPtr buffer = Create();
buffer->set_audio_params(audio_params);
buffer->set_sample_count(samples_per_channel);
buffer->allocate();
return buffer;
}
SampleBufferPtr SampleBuffer::CreateFromPackedData(const AudioParams &audio_params, const QByteArray &bytes)
{
if (!audio_params.is_valid()) {
qWarning() << "Tried to create from packed data with invalid parameters";
return nullptr;
}
int samples_per_channel = audio_params.bytes_to_samples(bytes.size());
SampleBufferPtr buffer = CreateAllocated(audio_params, samples_per_channel);
int total_samples = samples_per_channel * audio_params.channel_count();
const float* packed_data = reinterpret_cast<const float*>(bytes.constData());
for (int i=0;i<total_samples;i++) {
int channel = i % audio_params.channel_count();
int index = i / audio_params.channel_count();
buffer->data_[channel][index] = packed_data[i];
}
return buffer;
}
const AudioParams &SampleBuffer::audio_params() const
{
return audio_params_;
}
void SampleBuffer::set_audio_params(const AudioParams &params)
{
if (is_allocated()) {
qWarning() << "Tried to set parameters on allocated sample buffer";
return;
}
audio_params_ = params;
}
const int &SampleBuffer::sample_count() const
{
return sample_count_per_channel_;
}
void SampleBuffer::set_sample_count(const int &sample_count)
{
if (is_allocated()) {
qWarning() << "Tried to set sample count on allocated sample buffer";
return;
}
sample_count_per_channel_ = sample_count;
}
bool SampleBuffer::is_allocated() const
{
return !data_.isEmpty();
}
void SampleBuffer::allocate()
{
if (!audio_params_.is_valid()) {
qWarning() << "Tried to allocate sample buffer with invalid audio parameters";
return;
}
if (!sample_count_per_channel_) {
qWarning() << "Tried to allocate sample buffer with zero sample count";
return;
}
if (is_allocated()) {
qWarning() << "Tried to allocate already allocated sample buffer";
return;
}
data_.resize(audio_params_.channel_count());
for (int i=0; i<audio_params_.channel_count(); i++) {
data_[i].resize(sample_count_per_channel_);
}
}
void SampleBuffer::destroy()
{
data_.clear();
}
void SampleBuffer::reverse()
{
if (!is_allocated()) {
qWarning() << "Tried to reverse an unallocated sample buffer";
return;
}
int half_nb_sample = sample_count_per_channel_ / 2;
for (int i=0;i<half_nb_sample;i++) {
int opposite_ind = sample_count_per_channel_ - i - 1;
for (int j=0;j<audio_params_.channel_count();j++) {
std::swap(data_[j][i], data_[j][opposite_ind]);
}
}
}
void SampleBuffer::speed(double speed)
{
if (!is_allocated()) {
qWarning() << "Tried to speed an unallocated sample buffer";
return;
}
sample_count_per_channel_ = qRound(static_cast<double>(sample_count_per_channel_) / speed);
QVector< QVector<float> > output_data;
output_data.resize(audio_params_.channel_count());
for (int i=0; i<audio_params_.channel_count(); i++) {
output_data[i].resize(sample_count_per_channel_);
}
for (int i=0;i<sample_count_per_channel_;i++) {
int input_index = qFloor(static_cast<double>(i) * speed);
for (int j=0;j<audio_params_.channel_count();j++) {
output_data[j][i] = data_[j][input_index];
}
}
data_ = output_data;
}
void SampleBuffer::transform_volume(float f)
{
for (int i=0;i<audio_params().channel_count();i++) {
for (int j=0;j<sample_count_per_channel_;j++) {
data_[i][j] *= f;
}
}
}
void SampleBuffer::transform_volume_for_channel(int channel, float volume)
{
for (int i=0;i<sample_count_per_channel_;i++) {
data_[channel][i] *= volume;
}
}
void SampleBuffer::transform_volume_for_sample(int sample_index, float volume)
{
for (int i=0;i<audio_params().channel_count();i++) {
data_[i][sample_index] *= volume;
}
}
void SampleBuffer::transform_volume_for_sample_on_channel(int sample_index, int channel, float volume)
{
data_[channel][sample_index] *= volume;
}
void SampleBuffer::fill(const float &f)
{
fill(f, 0, sample_count_per_channel_);
}
void SampleBuffer::fill(const float &f, int start_sample, int end_sample)
{
if (!is_allocated()) {
qWarning() << "Tried to fill an unallocated sample buffer";
return;
}
for (int i=0;i<audio_params().channel_count();i++) {
for (int j=start_sample;j<end_sample;j++) {
data_[i][j] = f;
}
}
}
void SampleBuffer::set(int channel, const float *data, int sample_offset, int sample_length)
{
if (!is_allocated()) {
qWarning() << "Tried to fill an unallocated sample buffer";
return;
}
memcpy(&data_[channel].data()[sample_offset], data, sizeof(float) * sample_length);
}
QByteArray SampleBuffer::toPackedData() const
{
QByteArray packed_data;
if (is_allocated()) {
packed_data.resize(audio_params_.samples_to_bytes(sample_count_per_channel_));
float* output_data = reinterpret_cast<float*>(packed_data.data());
for (int j=0;j<sample_count_per_channel_;j++) {
for (int i=0;i<audio_params_.channel_count();i++) {
output_data[i*j + i] = data_[i][j];
}
}
}
return packed_data;
}
}