/*** 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 . ***/ #include "videorenderbackend.h" #include #include #include #include #include #include #include "common/timecodefunctions.h" #include "render/pixelservice.h" #include "videorenderworker.h" VideoRenderBackend::VideoRenderBackend(QObject *parent) : RenderBackend(parent), export_mode_(false) { } void VideoRenderBackend::InvalidateCache(const rational &start_range, const rational &end_range) { if (!params_.is_valid()) { return; } RenderBackend::InvalidateCache(start_range, end_range); // Adjust range to min/max values rational start_range_adj = qMax(rational(0), start_range); rational end_range_adj = qMin(GetSequenceLength(), end_range); qDebug() << "Cache invalidated between" << start_range_adj.toDouble() << "and" << end_range_adj.toDouble(); // Snap start_range to timebase int64_t timestamp = Timecode::time_to_timestamp(start_range_adj, params_.time_base()); rational true_start = Timecode::timestamp_to_time(timestamp, params_.time_base()); if (true_start == end_range_adj) { // Ensure that a single frame is always rendered end_range_adj += params_.time_base(); } for (rational r=true_start;r diff) { cache_queue_.insert(i, new_range); added = true; break; } } if (!added) { cache_queue_.append(new_range); } } // Remove frames after this time code if it's changed frame_cache_.Truncate(GetSequenceLength()); // Queue value update QueueValueUpdate(); CacheNext(); } bool VideoRenderBackend::InitInternal() { cache_frame_load_buffer_.resize(PixelService::GetBufferSize(params_.format(), params_.effective_width(), params_.effective_height())); return true; } void VideoRenderBackend::CloseInternal() { cache_frame_load_buffer_.clear(); } void VideoRenderBackend::ConnectViewer(ViewerOutput *node) { connect(node, SIGNAL(VideoChangedBetween(const rational&, const rational&)), this, SLOT(InvalidateCache(const rational&, const rational&))); connect(node, SIGNAL(VideoGraphChanged()), this, SLOT(QueueRecompile())); } void VideoRenderBackend::DisconnectViewer(ViewerOutput *node) { disconnect(node, SIGNAL(VideoChangedBetween(const rational&, const rational&)), this, SLOT(InvalidateCache(const rational&, const rational&))); disconnect(node, SIGNAL(VideoGraphChanged()), this, SLOT(QueueRecompile())); } const VideoRenderingParams &VideoRenderBackend::params() const { return params_; } void VideoRenderBackend::SetParameters(const VideoRenderingParams& params) { // Set new parameters params_ = params; // Set params on all processors // FIXME: Undefined behavior if the processors are currently working, this may need to be delayed like the // recompile signal foreach (RenderWorker* worker, processors_) { static_cast(worker)->SetParameters(params_); } // Regenerate the cache ID RegenerateCacheID(); } void VideoRenderBackend::SetExportMode(bool enabled) { export_mode_ = enabled; } bool VideoRenderBackend::GenerateCacheIDInternal(QCryptographicHash& hash) { if (!params_.is_valid()) { return false; } // Generate an ID that is more or less guaranteed to be unique to this Sequence 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()); return true; } void VideoRenderBackend::CacheIDChangedEvent(const QString &id) { frame_cache_.SetCacheID(id); } void VideoRenderBackend::ConnectWorkerToThis(RenderWorker *processor) { VideoRenderWorker* video_processor = static_cast(processor); connect(video_processor, &VideoRenderWorker::CompletedFrame, this, &VideoRenderBackend::ThreadCompletedFrame); connect(video_processor, &VideoRenderWorker::HashAlreadyBeingCached, this, &VideoRenderBackend::ThreadSkippedFrame); connect(video_processor, &VideoRenderWorker::CompletedDownload, this, &VideoRenderBackend::ThreadCompletedDownload); connect(video_processor, &VideoRenderWorker::HashAlreadyExists, this, &VideoRenderBackend::ThreadHashAlreadyExists); } VideoRenderFrameCache *VideoRenderBackend::frame_cache() { return &frame_cache_; } const char *VideoRenderBackend::GetCachedFrame(const rational &time) { last_time_requested_ = time; 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 QByteArray frame_hash = frame_cache_.TimeToHash(time); if (!frame_hash.isEmpty()) { QString fn = frame_cache_.CachePathName(frame_hash); 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(); return cache_frame_load_buffer_.constData(); } else { qWarning() << "OIIO Error:" << OIIO::geterror().c_str(); } } } return nullptr; } NodeInput *VideoRenderBackend::GetDependentInput() { return viewer_node()->texture_input(); } bool VideoRenderBackend::CanRender() { return params_.is_valid(); } void VideoRenderBackend::ThreadCompletedFrame(NodeDependency path, qint64 job_time, QByteArray hash, QVariant value) { if (last_time_requested_ == path.in() || frame_cache_.TimeToHash(last_time_requested_) == hash) { EmitCachedFrameReady({last_time_requested_}, value); } } void VideoRenderBackend::ThreadCompletedDownload(NodeDependency dep, qint64 job_time, QByteArray hash) { SetWorkerBusyState(static_cast(sender()), false); SetFrameHash(dep, hash, job_time); // Queue up a new frame for this worker CacheNext(); } void VideoRenderBackend::ThreadSkippedFrame(NodeDependency dep, qint64 job_time, QByteArray hash) { SetWorkerBusyState(static_cast(sender()), false); if (SetFrameHash(dep, hash, job_time) && last_time_requested_ == dep.in() && frame_cache_.HasHash(hash)) { emit CachedTimeReady(dep.in()); } // Queue up a new frame for this worker CacheNext(); } void VideoRenderBackend::ThreadHashAlreadyExists(NodeDependency dep, qint64 job_time, QByteArray hash) { SetWorkerBusyState(static_cast(sender()), false); if (SetFrameHash(dep, hash, job_time) && dep.in() == last_time_requested_) { emit CachedTimeReady(dep.in()); } // Queue up a new frame for this worker CacheNext(); } bool VideoRenderBackend::TimeIsQueued(const TimeRange &time) const { return cache_queue_.contains(time); } bool VideoRenderBackend::JobIsCurrent(const NodeDependency &dep, const qint64& job_time) const { return (render_job_info_.value(dep.range()) == job_time && !TimeIsQueued(dep.range())); } bool VideoRenderBackend::SetFrameHash(const NodeDependency &dep, const QByteArray &hash, const qint64& job_time) { if (JobIsCurrent(dep, job_time)) { frame_cache_.SetHash(dep.in(), hash); render_job_info_.remove(dep.range()); return true; } return false; }