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oak-editor/app/render/video/videorenderer.cpp
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493 lines
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/***
Olive - Non-Linear Video Editor
Copyright (C) 2019 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 "videorenderer.h"
#include <OpenImageIO/imageio.h>
#include <QApplication>
#include <QCryptographicHash>
#include <QDateTime>
#include <QDebug>
#include <QDir>
#include <QtMath>
#include "common/filefunctions.h"
#include "render/gl/functions.h"
#include "render/gl/shadergenerators.h"
#include "render/pixelservice.h"
VideoRendererProcessor::VideoRendererProcessor(QObject *parent) :
QObject(parent),
started_(false),
caching_(false),
push_time_(-1),
starting_(false),
viewer_node_(nullptr)
{
// FIXME: Cache name should actually be the name of the sequence
SetCacheName("Test");
}
VideoRendererProcessor::~VideoRendererProcessor()
{
Stop();
}
void VideoRendererProcessor::SetCacheName(const QString &s)
{
cache_name_ = s;
cache_time_ = QDateTime::currentMSecsSinceEpoch();
GenerateCacheIDInternal();
}
void VideoRendererProcessor::InvalidateCache(const rational &start_range, const rational &end_range)
{
if (!params_.is_valid()) {
return;
}
// Adjust range to min/max values
rational start_range_adj = qMax(rational(0), start_range);
rational end_range_adj = qMin(viewer_node_->Length(), end_range);
qDebug() << "Cache invalidated between"
<< start_range_adj.toDouble()
<< "and"
<< end_range_adj.toDouble();
// Snap start_range to timebase
double start_range_dbl = start_range_adj.toDouble();
double start_range_numf = start_range_dbl * static_cast<double>(params_.time_base().denominator());
int64_t start_range_numround = qFloor(start_range_numf/static_cast<double>(params_.time_base().numerator())) * params_.time_base().numerator();
rational true_start_range(start_range_numround, params_.time_base().denominator());
for (rational r=true_start_range;r<=end_range_adj;r+=params_.time_base()) {
// Try to order the queue from closest to the playhead to furthest
rational last_time = last_time_requested_;
rational diff = r - last_time;
if (diff < 0) {
// FIXME: Hardcoded number
// If the number is before the playhead, we still prioritize its closeness but not nearly as much (5:1 in this
// example)
diff = qAbs(diff) * 5;
}
bool contains = false;
bool added = false;
QLinkedList<rational>::iterator insert_iterator;
for (QLinkedList<rational>::iterator i = cache_queue_.begin();i != cache_queue_.end();i++) {
rational compare = *i;
if (!added) {
rational compare_diff = compare - last_time;
if (compare_diff > diff) {
insert_iterator = i;
added = true;
}
}
if (compare == r) {
contains = true;
break;
}
}
if (!contains) {
if (added) {
cache_queue_.insert(insert_iterator, r);
} else {
cache_queue_.append(r);
}
}
}
CacheNext();
}
void VideoRendererProcessor::SetParameters(const VideoRenderingParams& params)
{
// Since we're changing parameters, all the existing threads are invalid and must be removed. They will start again
// next time this Node has to process anything.
Stop();
// Set new parameters
params_ = params;
// Regenerate the cache ID
GenerateCacheIDInternal();
}
void VideoRendererProcessor::Start()
{
if (started_) {
return;
}
QOpenGLContext* ctx = QOpenGLContext::currentContext();
int background_thread_count = QThread::idealThreadCount();
// Some OpenGL implementations (notably wgl) require the context not to be current before sharing
QSurface* old_surface = ctx->surface();
ctx->doneCurrent();
threads_.resize(background_thread_count);
for (int i=0;i<threads_.size();i++) {
threads_[i] = std::make_shared<RendererProcessThread>(this, ctx, params_);
threads_[i]->StartThread(QThread::LowPriority);
// Ensure this connection is "Queued" so that it always runs in this object's threaded rather than any of the
// other threads
connect(threads_.at(i).get(),
SIGNAL(RequestSibling(NodeDependency)),
this,
SLOT(ThreadRequestSibling(NodeDependency)),
Qt::QueuedConnection);
}
// Connect first thread (master thread) to the callback
connect(threads_.first().get(),
SIGNAL(CachedFrame(RenderTexturePtr, const rational&, const QByteArray&)),
this,
SLOT(ThreadCallback(RenderTexturePtr, const rational&, const QByteArray&)),
Qt::QueuedConnection);
connect(threads_.first().get(),
SIGNAL(FrameSkipped(const rational&, const QByteArray&)),
this,
SLOT(ThreadSkippedFrame(const rational&, const QByteArray&)),
Qt::QueuedConnection);
download_threads_.resize(background_thread_count);
for (int i=0;i<download_threads_.size();i++) {
// Create download thread
download_threads_[i] = std::make_shared<VideoRendererDownloadThread>(ctx, params_);
download_threads_[i]->StartThread(QThread::LowPriority);
connect(download_threads_[i].get(),
SIGNAL(Downloaded(const QByteArray&)),
this,
SLOT(DownloadThreadComplete(const QByteArray&)),
Qt::QueuedConnection);
}
last_download_thread_ = 0;
// Restore context now that thread creation is complete
ctx->makeCurrent(old_surface);
// Create master texture (the one sent to the viewer)
master_texture_ = std::make_shared<RenderTexture>();
master_texture_->Create(ctx, params_.effective_width(), params_.effective_height(), params_.format());
// Create internal FBO for copying textures
copy_buffer_.Create(ctx);
copy_buffer_.Attach(master_texture_);
copy_pipeline_ = olive::ShaderGenerator::DefaultPipeline();
cache_frame_load_buffer_.resize(PixelService::GetBufferSize(params_.format(), params_.effective_width(), params_.effective_height()));
started_ = true;
}
void VideoRendererProcessor::Stop()
{
if (!started_) {
return;
}
started_ = false;
foreach (RendererDownloadThreadPtr download_thread_, download_threads_) {
download_thread_->Cancel();
}
download_threads_.clear();
foreach (RendererProcessThreadPtr process_thread, threads_) {
process_thread->Cancel();
}
threads_.clear();
copy_buffer_.Destroy();
master_texture_ = nullptr;
copy_pipeline_ = nullptr;
cache_frame_load_buffer_.clear();
}
void VideoRendererProcessor::GenerateCacheIDInternal()
{
if (cache_name_.isEmpty() || !params_.is_valid()) {
return;
}
// Generate an ID that is more or less guaranteed to be unique to this Sequence
QCryptographicHash hash(QCryptographicHash::Sha1);
hash.addData(cache_name_.toUtf8());
hash.addData(QString::number(cache_time_).toUtf8());
hash.addData(QString::number(params_.width()).toUtf8());
hash.addData(QString::number(params_.height()).toUtf8());
hash.addData(QString::number(params_.format()).toUtf8());
hash.addData(QString::number(params_.divider()).toUtf8());
QByteArray bytes = hash.result();
cache_id_ = bytes.toHex();
}
void VideoRendererProcessor::CacheNext()
{
if (cache_queue_.isEmpty() || viewer_node_ == nullptr || caching_) {
return;
}
// Make sure cache has started
Start();
rational cache_frame = cache_queue_.takeFirst();
qDebug() << "Caching" << cache_frame.toDouble();
threads_.first()->Queue(NodeDependency(viewer_node_->texture_input()->get_connected_output(), cache_frame, cache_frame), true, false);
caching_ = true;
}
QString VideoRendererProcessor::CachePathName(const QByteArray &hash)
{
QDir this_cache_dir = QDir(GetMediaCacheLocation()).filePath(cache_id_);
this_cache_dir.mkpath(".");
QString filename = QString("%1.exr").arg(QString(hash.toHex()));
return this_cache_dir.filePath(filename);
}
void VideoRendererProcessor::DeferMap(const rational &time, const QByteArray &hash)
{
deferred_maps_.append({time, hash});
}
bool VideoRendererProcessor::HasHash(const QByteArray &hash)
{
return QFileInfo::exists(CachePathName(hash));
}
bool VideoRendererProcessor::IsCaching(const QByteArray &hash)
{
cache_hash_list_mutex_.lock();
bool is_caching = cache_hash_list_.contains(hash);
cache_hash_list_mutex_.unlock();
return is_caching;
}
bool VideoRendererProcessor::TryCache(const QByteArray &hash)
{
cache_hash_list_mutex_.lock();
bool is_caching = cache_hash_list_.contains(hash);
if (!is_caching) {
cache_hash_list_.append(hash);
}
cache_hash_list_mutex_.unlock();
return !is_caching;
}
void VideoRendererProcessor::ThreadCallback(RenderTexturePtr texture, const rational& time, const QByteArray& hash)
{
// Threads are all done now, time to proceed
caching_ = false;
DeferMap(time, hash);
if (texture != nullptr) {
// We received a texture, time to start downloading it
QString fn = CachePathName(hash);
download_threads_[last_download_thread_%download_threads_.size()]->Queue(texture,
fn,
hash);
last_download_thread_++;
} else {
// There was no texture here, we must update the viewer
DownloadThreadComplete(hash);
}
// If the connected output is using this time, signal it to update
if (last_time_requested_ == time) {
copy_buffer_.Bind();
texture->Bind();
QOpenGLContext::currentContext()->functions()->glViewport(0, 0, master_texture_->width(), master_texture_->height());
olive::gl::Blit(copy_pipeline_);
texture->Release();
copy_buffer_.Release();
push_time_ = time;
emit CachedFrameReady(time);
}
CacheNext();
}
void VideoRendererProcessor::ThreadRequestSibling(NodeDependency dep)
{
// Try to queue another thread to run this dep in advance
for (int i=1;i<threads_.size();i++) {
if (threads_.at(i)->Queue(dep, false, true)) {
return;
}
}
}
void VideoRendererProcessor::ThreadSkippedFrame(const rational& time, const QByteArray& hash)
{
caching_ = false;
DeferMap(time, hash);
if (!IsCaching(hash)) {
DownloadThreadComplete(hash);
// Signal output to update value
emit CachedFrameReady(time);
}
CacheNext();
}
void VideoRendererProcessor::DownloadThreadComplete(const QByteArray &hash)
{
cache_hash_list_mutex_.lock();
cache_hash_list_.removeAll(hash);
cache_hash_list_mutex_.unlock();
for (int i=0;i<deferred_maps_.size();i++) {
const HashTimeMapping& deferred = deferred_maps_.at(i);
if (deferred_maps_.at(i).hash == hash) {
// Insert into hash map
time_hash_map_.insert(deferred.time, deferred.hash);
deferred_maps_.removeAt(i);
i--;
}
}
}
VideoRendererThreadBase* VideoRendererProcessor::CurrentThread()
{
return dynamic_cast<VideoRendererThreadBase*>(QThread::currentThread());
}
RenderInstance *VideoRendererProcessor::CurrentInstance()
{
VideoRendererThreadBase* thread = CurrentThread();
if (thread != nullptr) {
return thread->render_instance();
}
return nullptr;
}
RenderTexturePtr VideoRendererProcessor::GetCachedFrame(const rational &time)
{
last_time_requested_ = time;
if (push_time_ >= 0) {
rational temp_push_time = push_time_;
push_time_ = -1;
if (time == temp_push_time) {
return master_texture_;
}
}
if (viewer_node_ == nullptr) {
// Nothing is connected - nothing to show or render
return nullptr;
}
if (cache_id_.isEmpty()) {
qWarning() << "No cache ID";
return nullptr;
}
if (!params_.is_valid()) {
qWarning() << "Invalid parameters";
return nullptr;
}
// Find frame in map
if (time_hash_map_.contains(time)) {
QString fn = CachePathName(time_hash_map_[time]);
if (QFileInfo::exists(fn)) {
auto in = OIIO::ImageInput::open(fn.toStdString());
if (in) {
in->read_image(PixelService::GetPixelFormatInfo(params_.format()).oiio_desc, cache_frame_load_buffer_.data());
in->close();
master_texture_->Upload(cache_frame_load_buffer_.data());
return master_texture_;
} else {
qWarning() << "OIIO Error:" << OIIO::geterror().c_str();
}
}
}
return nullptr;
}
void VideoRendererProcessor::SetViewerNode(ViewerOutput *viewer)
{
if (viewer_node_ != nullptr) {
disconnect(viewer_node_, SIGNAL(TextureChangedBetween(const rational&, const rational&)), this, SLOT(InvalidateCache(const rational&, const rational&)));
}
viewer_node_ = viewer;
if (viewer_node_ != nullptr) {
connect(viewer_node_, SIGNAL(TextureChangedBetween(const rational&, const rational&)), this, SLOT(InvalidateCache(const rational&, const rational&)));
// FIXME: Hardcoded format, mode, and divider
SetParameters(VideoRenderingParams(viewer_node_->video_params(), olive::PIX_FMT_RGBA16F, olive::kOffline, 2));
}
}