Files
oak-editor/app/codec/ffmpeg/ffmpegdecoder.cpp
T
itsmattkc 81c1922911 use strings to connect nodes
This makes the node system somewhat more high-level with the intent of making
working with them far more flexible and stable. By making the architecture more
abstracted, it becomes far less rigid which should allow us to do even more
with it and make it much less crash prone.
2021-02-09 15:48:37 +11:00

1106 lines
31 KiB
C++

/***
Olive - Non-Linear Video Editor
Copyright (C) 2020 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 "ffmpegdecoder.h"
extern "C" {
#include <libavcodec/avcodec.h>
#include <libavformat/avformat.h>
#include <libavutil/imgutils.h>
#include <libavutil/pixdesc.h>
}
#include <OpenImageIO/imagebuf.h>
#include <QDebug>
#include <QFile>
#include <QFileInfo>
#include <QString>
#include <QtMath>
#include <QThread>
#include <QtConcurrent/QtConcurrent>
#include "codec/waveinput.h"
#include "common/define.h"
#include "common/ffmpegutils.h"
#include "common/filefunctions.h"
#include "common/functiontimer.h"
#include "common/timecodefunctions.h"
#include "render/framehashcache.h"
#include "render/diskmanager.h"
namespace olive {
FFmpegDecoder::FFmpegDecoder() :
scale_ctx_(nullptr),
scale_divider_(0),
pool_(QThread::idealThreadCount()*2),
is_working_(false),
cache_at_zero_(false),
cache_at_eof_(false)
{
}
FFmpegDecoder::~FFmpegDecoder()
{
CloseInternal();
}
bool FFmpegDecoder::OpenInternal()
{
if (instance_.Open(stream()->footage()->filename().toUtf8(), stream()->index())) {
AVStream* s = instance_.avstream();
// Store one second in the source's timebase
second_ts_ = qRound64(av_q2d(av_inv_q(s->time_base)));
if (stream()->type() == Stream::kVideo) {
// Get an Olive compatible AVPixelFormat
ideal_pix_fmt_ = FFmpegUtils::GetCompatiblePixelFormat(static_cast<AVPixelFormat>(s->codecpar->format));
// Determine which Olive native pixel format we retrieved
// Note that FFmpeg doesn't support float formats
native_pix_fmt_ = GetNativePixelFormat(ideal_pix_fmt_);
native_channel_count_ = GetNativeChannelCount(ideal_pix_fmt_);
if (native_pix_fmt_ == VideoParams::kFormatInvalid
|| native_channel_count_ == 0) {
qDebug() << "Failed to find valid native pixel format for" << ideal_pix_fmt_;
return false;
}
}
return true;
}
return false;
}
FramePtr FFmpegDecoder::RetrieveStillImage(const rational &timecode, const int &divider)
{
// This is a still image
VideoStream* is = static_cast<VideoStream*>(stream());
QString img_filename = stream()->footage()->filename();
int64_t ts;
// If it's an image sequence, we'll probably need to transform the filename
if (is->video_type() == VideoStream::kVideoTypeImageSequence) {
ts = static_cast<VideoStream*>(stream())->get_time_in_timebase_units(timecode);
img_filename = TransformImageSequenceFileName(stream()->footage()->filename(), ts);
} else {
ts = 0;
}
AVPacket* pkt = av_packet_alloc();
AVFrame* frame = av_frame_alloc();
FramePtr output_frame = nullptr;
Instance i;
i.Open(img_filename.toUtf8(), stream()->index());
int ret = i.GetFrame(pkt, frame);
if (ret >= 0) {
// Create frame to return
output_frame = Frame::Create();
output_frame->set_video_params(VideoParams(frame->width,
frame->height,
native_pix_fmt_,
native_channel_count_,
is->pixel_aspect_ratio(),
is->interlacing(),
divider));
output_frame->set_timestamp(timecode);
output_frame->allocate();
uint8_t* copy_data = reinterpret_cast<uint8_t*>(output_frame->data());
int copy_linesize = output_frame->linesize_bytes();
FFmpegBufferToNativeBuffer(frame->data, frame->linesize, &copy_data, &copy_linesize);
} else {
qWarning() << "Failed to retrieve still image from decoder";
}
i.Close();
av_frame_free(&frame);
av_packet_free(&pkt);
return output_frame;
}
FramePtr FFmpegDecoder::RetrieveVideoInternal(const rational &timecode, const int &divider)
{
VideoStream* vs = static_cast<VideoStream*>(stream());
if (scale_divider_ != divider) {
FreeScaler();
InitScaler(divider);
}
if (vs->video_type() == VideoStream::kVideoTypeStill
|| vs->video_type() == VideoStream::kVideoTypeImageSequence) {
return RetrieveStillImage(timecode, divider);
} else {
int64_t target_ts = vs->get_time_in_timebase_units(timecode);
int divided_width = VideoParams::GetScaledDimension(vs->width(), divider);
int divided_height = VideoParams::GetScaledDimension(vs->height(), divider);
if (pool_.width() != divided_width || pool_.height() != divided_height) {
// Clear all instance queues
ClearFrameCache();
// Set new frame pool parameters
pool_.SetParameters(divided_width, divided_height, native_pix_fmt_, native_channel_count_);
}
// Retrieve frame
FFmpegFramePool::ElementPtr return_frame = RetrieveFrame(target_ts, divider);
// We found the frame, we'll return a copy
if (return_frame) {
FramePtr copy = Frame::Create();
copy->set_video_params(VideoParams(vs->width(),
vs->height(),
native_pix_fmt_,
native_channel_count_,
vs->pixel_aspect_ratio(),
vs->interlacing(),
divider));
copy->set_timestamp(timecode);
copy->allocate();
// This data will already match the frame
memcpy(copy->data(), return_frame->data(), copy->allocated_size());
return copy;
}
}
return nullptr;
}
void FFmpegDecoder::CloseInternal()
{
ClearFrameCache();
instance_.Close();
FreeScaler();
}
QString FFmpegDecoder::id()
{
return QStringLiteral("ffmpeg");
}
Footage *FFmpegDecoder::Probe(const QString& filename, const QAtomicInt* cancelled) const
{
Q_UNUSED(cancelled)
// Variable for receiving errors from FFmpeg
int error_code;
// Result to return
Footage* footage = nullptr;
// Convert QString to a C string
QByteArray ba = filename.toUtf8();
const char* filename_c = ba.constData();
// Open file in a format context
AVFormatContext* fmt_ctx = nullptr;
error_code = avformat_open_input(&fmt_ctx, filename_c, nullptr, nullptr);
// Handle format context error
if (error_code == 0) {
// Retrieve metadata about the media
avformat_find_stream_info(fmt_ctx, nullptr);
int64_t footage_duration = fmt_ctx->duration;
QVector<Stream*> streams(fmt_ctx->nb_streams);
// Dump it into the Footage object
for (unsigned int i=0;i<fmt_ctx->nb_streams;i++) {
AVStream* avstream = fmt_ctx->streams[i];
// Find decoder for this stream, if it exists we can proceed
AVCodec* decoder = avcodec_find_decoder(avstream->codecpar->codec_id);
Stream* str;
if (decoder
&& (avstream->codecpar->codec_type == AVMEDIA_TYPE_VIDEO
|| avstream->codecpar->codec_type == AVMEDIA_TYPE_AUDIO)) {
if (avstream->codecpar->codec_type == AVMEDIA_TYPE_VIDEO) {
bool image_is_still = false;
rational pixel_aspect_ratio;
rational frame_rate;
VideoParams::Interlacing interlacing = VideoParams::kInterlaceNone;
{
// Read at least two frames to get more information about this video stream
AVPacket* pkt = av_packet_alloc();
AVFrame* frame = av_frame_alloc();
{
Instance instance;
instance.Open(filename.toUtf8(), avstream->index);
// Read first frame and retrieve some metadata
if (instance.GetFrame(pkt, frame) >= 0) {
// Check if video is interlaced and what field dominance it has if so
if (frame->interlaced_frame) {
if (frame->top_field_first) {
interlacing = VideoParams::kInterlacedTopFirst;
} else {
interlacing = VideoParams::kInterlacedBottomFirst;
}
}
pixel_aspect_ratio = av_guess_sample_aspect_ratio(instance.fmt_ctx(),
instance.avstream(),
frame);
frame_rate = av_guess_frame_rate(instance.fmt_ctx(),
instance.avstream(),
frame);
}
// Read second frame
int ret = instance.GetFrame(pkt, frame);
if (ret >= 0) {
// Check if we need a manual duration
if (avstream->duration == AV_NOPTS_VALUE) {
if (footage_duration == AV_NOPTS_VALUE) {
// Manually read through file for duration
int64_t new_dur;
do {
new_dur = frame->pts;
} while (instance.GetFrame(pkt, frame) >= 0);
avstream->duration = new_dur;
} else {
// Fallback to footage duration
avstream->duration = Timecode::rescale_timestamp_ceil(footage_duration, rational(1, AV_TIME_BASE), avstream->time_base);
}
}
} else if (ret == AVERROR_EOF) {
// Video has only one frame in it, treat it like a still image
image_is_still = true;
}
instance.Close();
}
av_frame_free(&frame);
av_packet_free(&pkt);
}
VideoStream* video_stream = new VideoStream();
if (image_is_still) {
video_stream->set_video_type(VideoStream::kVideoTypeStill);
} else {
video_stream->set_video_type(VideoStream::kVideoTypeVideo);
video_stream->set_frame_rate(frame_rate);
video_stream->set_start_time(avstream->start_time);
}
video_stream->set_width(avstream->codecpar->width);
video_stream->set_height(avstream->codecpar->height);
video_stream->set_interlacing(interlacing);
video_stream->set_pixel_aspect_ratio(pixel_aspect_ratio);
AVPixelFormat compatible_pix_fmt = FFmpegUtils::GetCompatiblePixelFormat(static_cast<AVPixelFormat>(avstream->codecpar->format));
video_stream->set_format(GetNativePixelFormat(compatible_pix_fmt));
video_stream->set_channel_count(GetNativeChannelCount(compatible_pix_fmt));
str = video_stream;
} else {
// Create an audio stream object
AudioStream* audio_stream = new AudioStream();
uint64_t channel_layout = avstream->codecpar->channel_layout;
if (!channel_layout) {
channel_layout = static_cast<uint64_t>(av_get_default_channel_layout(avstream->codecpar->channels));
}
audio_stream->set_channel_layout(channel_layout);
audio_stream->set_channels(avstream->codecpar->channels);
audio_stream->set_sample_rate(avstream->codecpar->sample_rate);
if (avstream->duration == AV_NOPTS_VALUE) {
// Loop through stream until we get the whole duration
if (footage_duration == AV_NOPTS_VALUE) {
Instance instance;
instance.Open(filename.toUtf8(), avstream->index);
AVPacket* pkt = av_packet_alloc();
AVFrame* frame = av_frame_alloc();
int64_t new_dur;
do {
new_dur = frame->pts;
} while (instance.GetFrame(pkt, frame) >= 0);
avstream->duration = new_dur;
av_frame_free(&frame);
av_packet_free(&pkt);
instance.Close();
} else {
avstream->duration = Timecode::rescale_timestamp_ceil(footage_duration, rational(1, AV_TIME_BASE), avstream->time_base);
}
}
str = audio_stream;
}
} else {
// This is data we can't utilize at the moment, but we make a Stream object anyway to keep parity with the file
str = new Stream();
// Set the correct codec type based on FFmpeg's result
switch (avstream->codecpar->codec_type) {
case AVMEDIA_TYPE_UNKNOWN:
str->set_type(Stream::kUnknown);
break;
case AVMEDIA_TYPE_DATA:
str->set_type(Stream::kData);
break;
case AVMEDIA_TYPE_SUBTITLE:
str->set_type(Stream::kSubtitle);
break;
case AVMEDIA_TYPE_ATTACHMENT:
str->set_type(Stream::kAttachment);
break;
default:
// Fallback to an unknown stream
str->set_type(Stream::kUnknown);
break;
}
}
str->set_index(avstream->index);
str->set_timebase(avstream->time_base);
str->set_duration(avstream->duration);
streams[i] = str;
}
// Check if we could pick up any streams in this file
bool found_valid_streams = false;
foreach (Stream* stream, streams) {
if (stream->type() != Stream::kUnknown) {
found_valid_streams = true;
break;
}
}
if (found_valid_streams) {
// We actually have footage we can return instead of nullptr
footage = new Footage();
// Add streams
footage->add_streams(streams);
}
}
// Free all memory
avformat_close_input(&fmt_ctx);
return footage;
}
QString FFmpegDecoder::FFmpegError(int error_code)
{
char err[1024];
av_strerror(error_code, err, 1024);
return QStringLiteral("%1 %2").arg(QString::number(error_code), err);
}
bool FFmpegDecoder::ConformAudioInternal(const QString &filename, const AudioParams &params, const QAtomicInt *cancelled)
{
// Iterate through each audio frame and extract the PCM data
// Seek to starting point
instance_.Seek(0);
// Handle NULL channel layout
uint64_t channel_layout = ValidateChannelLayout(instance_.avstream());
if (!channel_layout) {
qCritical() << "Failed to determine channel layout of audio file, could not conform";
return false;
}
// Create resampling context
SwrContext* resampler = swr_alloc_set_opts(nullptr,
params.channel_layout(),
FFmpegUtils::GetFFmpegSampleFormat(params.format()),
params.sample_rate(),
channel_layout,
static_cast<AVSampleFormat>(instance_.avstream()->codecpar->format),
instance_.avstream()->codecpar->sample_rate,
0,
nullptr);
swr_init(resampler);
WaveOutput wave_out(filename, params);
AVPacket* pkt = av_packet_alloc();
AVFrame* frame = av_frame_alloc();
int ret;
bool success = false;
if (wave_out.open()) {
while (true) {
// Check if we have a `cancelled` ptr and its value
if (cancelled && *cancelled) {
break;
}
ret = instance_.GetFrame(pkt, frame);
if (ret < 0) {
if (ret == AVERROR_EOF) {
success = true;
} else {
char err_str[50];
av_strerror(ret, err_str, 50);
qWarning() << "Failed to conform:" << ret << err_str;
}
break;
}
// Allocate buffers
int nb_samples = swr_get_out_samples(resampler, frame->nb_samples);
char* data = new char[params.samples_to_bytes(nb_samples)];
// Resample audio to our destination parameters
nb_samples = swr_convert(resampler,
reinterpret_cast<uint8_t**>(&data),
nb_samples,
const_cast<const uint8_t**>(frame->data),
frame->nb_samples);
if (nb_samples < 0) {
char err_str[50];
av_strerror(nb_samples, err_str, 50);
qWarning() << "libswresample failed with error:" << nb_samples << err_str;
break;
}
// Write packed WAV data to the disk cache
wave_out.write(data, params.samples_to_bytes(nb_samples));
// If we allocated an output for the resampler, delete it here
if (data != reinterpret_cast<char*>(frame->data[0])) {
delete [] data;
}
SignalProcessingProgress(frame->pts);
}
wave_out.close();
} else {
qWarning() << "Failed to open WAVE output for indexing";
}
swr_free(&resampler);
av_frame_free(&frame);
av_packet_free(&pkt);
return success;
}
VideoParams::Format FFmpegDecoder::GetNativePixelFormat(AVPixelFormat pix_fmt)
{
switch (pix_fmt) {
case AV_PIX_FMT_RGB24:
case AV_PIX_FMT_RGBA:
return VideoParams::kFormatUnsigned8;
case AV_PIX_FMT_RGB48:
case AV_PIX_FMT_RGBA64:
return VideoParams::kFormatUnsigned16;
default:
return VideoParams::kFormatInvalid;
}
}
int FFmpegDecoder::GetNativeChannelCount(AVPixelFormat pix_fmt)
{
switch (pix_fmt) {
case AV_PIX_FMT_RGB24:
case AV_PIX_FMT_RGB48:
return VideoParams::kRGBChannelCount;
case AV_PIX_FMT_RGBA:
case AV_PIX_FMT_RGBA64:
return VideoParams::kRGBAChannelCount;
default:
return 0;
}
}
uint64_t FFmpegDecoder::ValidateChannelLayout(AVStream* stream)
{
if (stream->codecpar->channel_layout) {
return stream->codecpar->channel_layout;
}
return av_get_default_channel_layout(stream->codecpar->channels);
}
void FFmpegDecoder::FFmpegBufferToNativeBuffer(uint8_t **input_data, int *input_linesize, uint8_t** output_buffer, int* output_linesize)
{
sws_scale(scale_ctx_,
input_data,
input_linesize,
0,
instance_.avstream()->codecpar->height,
output_buffer,
output_linesize);
}
/* OLD UNUSED CODE: Keeping this around in case the code proves useful
void FFmpegDecoder::CacheFrameToDisk(AVFrame *f)
{
QFile save_frame(GetIndexFilename().append(QString::number(f->pts)));
if (save_frame.open(QFile::WriteOnly)) {
// Save frame to media index
int cached_buffer_sz = av_image_get_buffer_size(static_cast<AVPixelFormat>(f->format),
f->width,
f->height,
1);
QByteArray cached_frame(cached_buffer_sz, Qt::Uninitialized);
av_image_copy_to_buffer(reinterpret_cast<uint8_t*>(cached_frame.data()),
cached_frame.size(),
f->data,
f->linesize,
static_cast<AVPixelFormat>(f->format),
f->width,
f->height,
1);
save_frame.write(qCompress(cached_frame, 1));
save_frame.close();
DiskManager::instance()->CreatedFile(save_frame.fileName(), QByteArray());
}
// See if we stored this frame in the disk cache
QByteArray frame_loader;
if (!got_frame) {
QFile compressed_frame(GetIndexFilename().append(QString::number(target_ts)));
if (compressed_frame.exists()
&& compressed_frame.size() > 0
&& compressed_frame.open(QFile::ReadOnly)) {
DiskManager::instance()->Accessed(compressed_frame.fileName());
// Read data
frame_loader = qUncompress(compressed_frame.readAll());
av_image_fill_arrays(input_data,
input_linesize,
reinterpret_cast<uint8_t*>(frame_loader.data()),
static_cast<AVPixelFormat>(avstream_->codecpar->format),
avstream_->codecpar->width,
avstream_->codecpar->height,
1);
got_frame = true;
}
}
}
*/
void FFmpegDecoder::ClearFrameCache()
{
cached_frames_.clear();
cache_at_eof_ = false;
cache_at_zero_ = false;
}
FFmpegFramePool::ElementPtr FFmpegDecoder::RetrieveFrame(const int64_t& target_ts, int divider)
{
int64_t seek_ts = target_ts;
bool still_seeking = false;
// If the frame wasn't in the frame cache, see if this frame cache is too old to use
if (cached_frames_.isEmpty()
|| (target_ts < cached_frames_.first()->timestamp() || target_ts > cached_frames_.last()->timestamp() + 2*second_ts_)) {
ClearFrameCache();
instance_.Seek(seek_ts);
if (seek_ts == 0) {
cache_at_zero_ = true;
}
still_seeking = true;
} else {
// Search cache for frame
FFmpegFramePool::ElementPtr cached_frame = GetFrameFromCache(target_ts);
if (cached_frame) {
return cached_frame;
}
}
int ret;
AVPacket* pkt = av_packet_alloc();
FFmpegFramePool::ElementPtr return_frame = nullptr;
// Allocate a new frame
AVFrame* working_frame = av_frame_alloc();
while (true) {
// Pull from the decoder
ret = instance_.GetFrame(pkt, working_frame);
// Handle any errors that aren't EOF (EOF is handled later on)
if (ret < 0 && ret != AVERROR_EOF) {
qCritical() << "Failed to retrieve frame:" << ret;
break;
}
if (still_seeking) {
// Handle a failure to seek (occurs on some media)
// We'll only be here if the frame cache was emptied earlier
if (!cache_at_zero_ && (ret == AVERROR_EOF || working_frame->pts > target_ts)) {
seek_ts = qMax(static_cast<int64_t>(0), seek_ts - second_ts_);
instance_.Seek(seek_ts);
if (seek_ts == 0) {
cache_at_zero_ = true;
}
continue;
} else {
still_seeking = false;
}
}
if (ret == AVERROR_EOF) {
// Handle an "expected" EOF by using the last frame of our cache
cache_at_eof_ = true;
if (cached_frames_.isEmpty()) {
qCritical() << "Unexpected codec EOF - unable to retrieve frame";
} else {
return_frame = cached_frames_.last();
}
break;
} else {
// Cut down to thread count - 1 before we acquire a new frame
if (cached_frames_.size() == QThread::idealThreadCount()) {
RemoveFirstFrame();
}
FFmpegFramePool::ElementPtr cached = pool_.Get();
if (!cached) {
qCritical() << "Frame pool failed to return a valid frame - out of memory?";
break;
}
// Store in queue, converting to native format
uint8_t* destination_data = cached->data();
int destination_linesize = Frame::generate_linesize_bytes(VideoParams::GetScaledDimension(instance_.avstream()->codecpar->width, divider), native_pix_fmt_, native_channel_count_);
FFmpegBufferToNativeBuffer(working_frame->data, working_frame->linesize, &destination_data, &destination_linesize);
// Set timestamp so this frame can be identified later
cached->set_timestamp(working_frame->pts);
// Store frame before just in case
FFmpegFramePool::ElementPtr previous;
if (cached_frames_.isEmpty()) {
previous = nullptr;
} else {
previous = cached_frames_.last();
}
// Append this frame and signal to other threads that a new frame has arrived
cached_frames_.append(cached);
// If this is a valid frame, see if this or the frame before it are the one we need
if (cached->timestamp() == target_ts) {
return_frame = cached;
break;
} else if (cached->timestamp() > target_ts) {
if (!previous && cache_at_zero_) {
return_frame = cached;
break;
} else {
return_frame = previous;
break;
}
}
}
}
av_frame_free(&working_frame);
av_packet_free(&pkt);
return return_frame;
}
void FFmpegDecoder::InitScaler(int divider)
{
VideoStream* vs = static_cast<VideoStream*>(stream());
int scaled_width = VideoParams::GetScaledDimension(vs->width(), divider);
int scaled_height = VideoParams::GetScaledDimension(vs->height(), divider);
scale_ctx_ = sws_getContext(vs->width(),
vs->height(),
static_cast<AVPixelFormat>(instance_.avstream()->codecpar->format),
scaled_width,
scaled_height,
ideal_pix_fmt_,
SWS_FAST_BILINEAR,
nullptr,
nullptr,
nullptr);
if (scale_ctx_) {
scale_divider_ = divider;
} else {
scale_divider_ = 0;
}
}
void FFmpegDecoder::FreeScaler()
{
if (scale_ctx_) {
sws_freeContext(scale_ctx_);
scale_ctx_ = nullptr;
scale_divider_ = 0;
}
}
/*int64_t FFmpegDecoder::RangeStart() const
{
if (cached_frames_.isEmpty()) {
return AV_NOPTS_VALUE;
}
return cached_frames_.first()->timestamp();
}
int64_t FFmpegDecoder::RangeEnd() const
{
if (cached_frames_.isEmpty()) {
return AV_NOPTS_VALUE;
}
return cached_frames_.last()->timestamp();
}
bool FFmpegDecoder::CacheContainsTime(const int64_t &t) const
{
return !cached_frames_.isEmpty()
&& ((RangeStart() <= t && RangeEnd() >= t)
|| (cache_at_zero_ && t < cached_frames_.first()->timestamp())
|| (cache_at_eof_ && t > cached_frames_.last()->timestamp()));
}
bool FFmpegDecoder::CacheWillContainTime(const int64_t &t) const
{
return !cached_frames_.isEmpty() && t >= cached_frames_.first()->timestamp() && t <= cache_target_time_;
}
bool FFmpegDecoder::CacheCouldContainTime(const int64_t &t) const
{
return !cached_frames_.isEmpty() && t >= cached_frames_.first()->timestamp() && t <= (cache_target_time_ + 2*second_ts_);
}
bool FFmpegDecoder::CacheIsEmpty() const
{
return cached_frames_.isEmpty();
}*/
FFmpegFramePool::ElementPtr FFmpegDecoder::GetFrameFromCache(const int64_t &t) const
{
if (t < cached_frames_.first()->timestamp()) {
if (cache_at_zero_) {
cached_frames_.first()->access();
return cached_frames_.first();
}
} else if (t > cached_frames_.last()->timestamp()) {
if (cache_at_eof_) {
cached_frames_.last()->access();
return cached_frames_.last();
}
} else {
// We already have this frame in the cache, find it
for (int i=0;i<cached_frames_.size();i++) {
FFmpegFramePool::ElementPtr this_frame = cached_frames_.at(i);
if (this_frame->timestamp() == t // Test for an exact match
|| (i < cached_frames_.size() - 1 && cached_frames_.at(i+1)->timestamp() > t)) { // Or for this frame to be the "closest"
this_frame->access();
return this_frame;
}
}
}
return nullptr;
}
/*void FFmpegDecoder::RemoveFramesBefore(const qint64 &t)
{
while (!cached_frames_.isEmpty() && cached_frames_.first()->last_accessed() < t) {
RemoveFirstFrame();
}
}
int FFmpegDecoder::TruncateCacheRangeToTime(const qint64 &t)
{
int counter = 0;
// We keep one frame in memory as an identifier for what pts the decoder is up to
while (cached_frames_.size() > 1 && (RangeEnd() - RangeStart()) > t) {
RemoveFirstFrame();
counter++;
}
return counter;
}
int FFmpegDecoder::TruncateCacheRangeToFrames(int nb_frames)
{
int counter = 0;
// We keep one frame in memory as an identifier for what pts the decoder is up to
while (cached_frames_.size() > nb_frames) {
RemoveFirstFrame();
counter++;
}
return counter;
}*/
void FFmpegDecoder::RemoveFirstFrame()
{
cached_frames_.removeFirst();
cache_at_zero_ = false;
}
FFmpegDecoder::Instance::Instance() :
fmt_ctx_(nullptr),
codec_ctx_(nullptr),
opts_(nullptr)
{
}
bool FFmpegDecoder::Instance::Open(const char *filename, int stream_index)
{
// Open file in a format context
int error_code = avformat_open_input(&fmt_ctx_, filename, nullptr, nullptr);
// Handle format context error
if (error_code != 0) {
qCritical() << "Failed to open input:" << filename << FFmpegError(error_code);
return false;
}
// Get stream information from format
error_code = avformat_find_stream_info(fmt_ctx_, nullptr);
// Handle get stream information error
if (error_code < 0) {
qCritical() << "Failed to find stream info:" << FFmpegError(error_code);
return false;
}
// Get reference to correct AVStream
avstream_ = fmt_ctx_->streams[stream_index];
// Find decoder
AVCodec* codec = avcodec_find_decoder(avstream_->codecpar->codec_id);
// Handle failure to find decoder
if (codec == nullptr) {
qCritical() << "Failed to find appropriate decoder for this codec:"
<< filename
<< stream_index
<< avstream_->codecpar->codec_id;
return false;
}
// Allocate context for the decoder
codec_ctx_ = avcodec_alloc_context3(codec);
if (codec_ctx_ == nullptr) {
qCritical() << "Failed to allocate codec context";
return false;
}
// Copy parameters from the AVStream to the AVCodecContext
error_code = avcodec_parameters_to_context(codec_ctx_, avstream_->codecpar);
// Handle failure to copy parameters
if (error_code < 0) {
qCritical() << "Failed to copy parameters from AVStream to AVCodecContext";
return false;
}
// Set multithreading setting
error_code = av_dict_set(&opts_, "threads", "auto", 0);
// Handle failure to set multithreaded decoding
if (error_code < 0) {
qCritical() << "Failed to set codec options, performance may suffer";
}
// Open codec
error_code = avcodec_open2(codec_ctx_, codec, &opts_);
if (error_code < 0) {
char buf[50];
av_strerror(error_code, buf, 50);
qCritical() << "Failed to open codec" << codec->id << error_code << buf;
return false;
}
return true;
}
void FFmpegDecoder::Instance::Close()
{
if (opts_) {
av_dict_free(&opts_);
opts_ = nullptr;
}
if (codec_ctx_) {
avcodec_free_context(&codec_ctx_);
codec_ctx_ = nullptr;
}
if (fmt_ctx_) {
avformat_close_input(&fmt_ctx_);
fmt_ctx_ = nullptr;
}
}
int FFmpegDecoder::Instance::GetFrame(AVPacket *pkt, AVFrame *frame)
{
bool eof = false;
int ret;
// Clear any previous frames
av_frame_unref(frame);
while ((ret = avcodec_receive_frame(codec_ctx_, frame)) == AVERROR(EAGAIN) && !eof) {
// Find next packet in the correct stream index
do {
// Free buffer in packet if there is one
av_packet_unref(pkt);
// Read packet from file
ret = av_read_frame(fmt_ctx_, pkt);
} while (pkt->stream_index != avstream_->index && ret >= 0);
if (ret == AVERROR_EOF) {
// Don't break so that receive gets called again, but don't try to read again
eof = true;
// Send a null packet to signal end of
avcodec_send_packet(codec_ctx_, nullptr);
} else if (ret < 0) {
// Handle other error by breaking loop and returning the code we received
break;
} else {
// Successful read, send the packet
ret = avcodec_send_packet(codec_ctx_, pkt);
// We don't need the packet anymore, so free it
av_packet_unref(pkt);
if (ret < 0) {
break;
}
}
}
return ret;
}
void FFmpegDecoder::Instance::Seek(int64_t timestamp)
{
avcodec_flush_buffers(codec_ctx_);
av_seek_frame(fmt_ctx_, avstream_->index, timestamp, AVSEEK_FLAG_BACKWARD);
}
}