#include "playback.h" #include "project/clip.h" #include "project/sequence.h" #include "io/media.h" #include "playback/audio.h" #include "playback/cacher.h" #include "panels/panels.h" #include "panels/timeline.h" #include "panels/viewer.h" #include "effects/effect.h" extern "C" { #include #include #include #include } #include #include #include #include #include #include bool texture_failed = false; void open_clip(Clip* clip, bool multithreaded) { switch (clip->media_type) { case MEDIA_TYPE_FOOTAGE: case MEDIA_TYPE_TONE: clip->multithreaded = multithreaded; if (multithreaded) { if (clip->open_lock.tryLock()) { // maybe keep cacher instance in memory while clip exists for performance? clip->cacher = new Cacher(clip); QObject::connect(clip->cacher, SIGNAL(finished()), clip->cacher, SLOT(deleteLater())); if (clip->track < 0) { clip->cacher->start(QThread::LowPriority); } else { clip->cacher->start(QThread::TimeCriticalPriority); } } } else { clip->finished_opening = false; clip->open = true; open_clip_worker(clip); } break; case MEDIA_TYPE_SEQUENCE: case MEDIA_TYPE_SOLID: clip->open = true; break; } } void close_clip(Clip* clip) { // destroy opengl texture in main thread if (clip->texture != NULL) { delete clip->texture; clip->texture = NULL; } for (int i=0;ieffects.size();i++) { clip->effects.at(i)->close(); } if (clip->fbo != NULL) { delete clip->fbo[0]; delete clip->fbo[1]; delete [] clip->fbo; clip->fbo = NULL; } switch (clip->media_type) { case MEDIA_TYPE_FOOTAGE: case MEDIA_TYPE_TONE: if (clip->multithreaded) { clip->cacher->caching = false; clip->can_cache.wakeAll(); } else { close_clip_worker(clip); } break; case MEDIA_TYPE_SEQUENCE: closeActiveClips(static_cast(clip->media), false); case MEDIA_TYPE_SOLID: clip->open = false; break; } } void cache_clip(Clip* clip, long playhead, bool write_A, bool write_B, bool reset, Clip* nest) { if (clip->media_type == MEDIA_TYPE_FOOTAGE || clip->media_type == MEDIA_TYPE_TONE) { if (clip->multithreaded) { clip->cacher->playhead = playhead; clip->cacher->write_A = write_A; clip->cacher->write_B = write_B; clip->cacher->reset = reset; clip->cacher->nest = nest; clip->can_cache.wakeAll(); } else { cache_clip_worker(clip, playhead, write_A, write_B, reset, nest); } } } bool get_clip_frame(Clip* c, long playhead) { if (c->finished_opening) { // do we need to update the texture? MediaStream* ms = static_cast(c->media)->get_stream_from_file_index(c->track < 0, c->media_stream); // backwards compatibilty code if (c->frame_rate == 0) { c->frame_rate = ms->video_frame_rate; } long sequence_clip_time = playhead - c->timeline_in + c->clip_in; long clip_time = refactor_frame_number(sequence_clip_time, c->sequence->frame_rate, c->frame_rate); AVFrame* current_frame = NULL; bool no_frame = false; // get frame data if (ms->infinite_length) { // if clip is a still frame, we only need one if (c->cache_A.written) { // retrieve cached frame current_frame = c->cache_A.frames[0]; } else if (c->lock.tryLock()) { // grab image cache_clip(c, 0, true, false, false, NULL); c->lock.unlock(); } } else { // keeping a RAM cache improves performance, however it's detrimental when rendering // determine which cache contains the requested frame bool using_cache_A = false; bool using_cache_B = false; AVFrame** cache = NULL; long cache_offset = 0; bool cache_needs_reset = false; if (c->cache_A.written && clip_time >= c->cache_A.offset && clip_time < c->cache_A.offset + c->cache_size) { if (clip_time < c->cache_A.offset + c->cache_A.write_count) { if (c->cache_A.mutex.tryLock()) { // lock in case cacher is still writing to it using_cache_A = true; c->cache_A.unread = false; cache = c->cache_A.frames; cache_offset = c->cache_A.offset; c->cache_A.mutex.unlock(); } } else { // frame is coming but isn't here yet, no need to reset cache no_frame = true; } } else if (c->cache_B.written && clip_time >= c->cache_B.offset && clip_time < c->cache_B.offset + c->cache_size) { if (clip_time < c->cache_B.offset + c->cache_B.write_count) { if (c->cache_B.mutex.tryLock()) { // lock in case cacher is still writing to it using_cache_B = true; c->cache_B.unread = false; cache = c->cache_B.frames; cache_offset = c->cache_B.offset; c->cache_B.mutex.unlock(); } } else { // frame is coming but isn't here yet, no need to reset cache no_frame = true; } } else { // this is technically bad, unless we just seeked c->cache_A.unread = c->cache_B.unread = false; cache_needs_reset = true; } if (!no_frame) { if (cache != NULL) { current_frame = cache[clip_time - cache_offset]; } // determine whether we should s1tart filling the other cache if (!using_cache_A || !using_cache_B) { if (c->lock.tryLock()) { bool write_A = (!using_cache_A && !c->cache_A.unread); bool write_B = (!using_cache_B && !c->cache_B.unread); if (write_A || write_B) { // if we have no cache and need to seek, start us at the current playhead, otherwise start at the end of the current cache cache_clip(c, (cache_needs_reset) ? qMax(clip_time, 0L) : cache_offset + c->cache_size, write_A, write_B, cache_needs_reset, NULL); } c->lock.unlock(); } } } } if (current_frame != NULL) { // set up opengl texture if (c->texture == NULL) { c->texture = new QOpenGLTexture(QOpenGLTexture::Target2D); c->texture->setSize(current_frame->width, current_frame->height); c->texture->setFormat(QOpenGLTexture::RGBA8_UNorm); c->texture->setMipLevels(c->texture->maximumMipLevels()); c->texture->setMinMagFilters(QOpenGLTexture::Linear, QOpenGLTexture::Linear); c->texture->allocateStorage(QOpenGLTexture::RGBA, QOpenGLTexture::UInt8); } glPixelStorei(GL_UNPACK_ROW_LENGTH, current_frame->linesize[0]/4); c->texture->setData(0, QOpenGLTexture::RGBA, QOpenGLTexture::UInt8, current_frame->data[0]); glPixelStorei(GL_UNPACK_ROW_LENGTH, 0); c->texture_frame = clip_time; return true; } else if (!no_frame) { texture_failed = true; qDebug() << "[ERROR] Failed to retrieve frame from cache (R:" << clip_time << "| A:" << c->cache_A.offset << "-" << c->cache_A.offset+c->cache_size-1 << "| B:" << c->cache_B.offset << "-" << c->cache_B.offset+c->cache_size-1 << "| WA:" << c->cache_A.written << "| WB:" << c->cache_B.written << ")"; } } return false; } double playhead_to_seconds(Clip* c, long playhead) { // returns time in seconds return (qMax((long) 0, playhead - c->timeline_in) + c->clip_in)/c->sequence->frame_rate; } long seconds_to_clip_frame(Clip* c, double seconds) { // returns time as frame number (according to clip's frame rate) if (c->stream->codecpar->codec_type == AVMEDIA_TYPE_VIDEO) { return floor(seconds*av_q2d(c->stream->avg_frame_rate)); } else { qDebug() << "[ERROR] seconds_to_clip_frame only works on video streams"; return 0; } } double clip_frame_to_seconds(Clip* c, long clip_frame) { // returns frame number in decimal seconds return (double) clip_frame / av_q2d(c->stream->avg_frame_rate); } int retrieve_next_frame(Clip* c, AVFrame* f) { int result = 0; int receive_ret; // do we need to retrieve a new packet for a new frame? while ((receive_ret = avcodec_receive_frame(c->codecCtx, f)) == AVERROR(EAGAIN)) { int read_ret = 0; do { if (c->pkt_written) { av_packet_unref(c->pkt); } read_ret = av_read_frame(c->formatCtx, c->pkt); c->pkt_written = true; } while (read_ret >= 0 && c->pkt->stream_index != c->media_stream); if (read_ret >= 0) { int send_ret = avcodec_send_packet(c->codecCtx, c->pkt); if (send_ret < 0) { qDebug() << "[ERROR] Failed to send packet to decoder." << send_ret; return send_ret; } } else { if (read_ret != AVERROR_EOF) qDebug() << "[ERROR] Could not read frame." << read_ret; return read_ret; // skips trying to find a frame at all } } if (receive_ret < 0) { qDebug() << "[ERROR] Failed to receive packet from decoder." << receive_ret; result = receive_ret; } return result; } void retrieve_next_frame_raw_data(Clip* c, AVFrame* output) { if (c->reached_end) { qDebug() << "[WARNING] Attempted to retrieve frame of stream with no frames left"; } else { int ret = retrieve_next_frame(c, c->frame); if (ret >= 0) { if (c->stream->codecpar->codec_type == AVMEDIA_TYPE_VIDEO) { // sws_scale(c->sws_ctx, c->frame->data, c->frame->linesize, 0, c->stream->codecpar->height, output->data, output->linesize); // output->pts = c->frame->best_effort_timestamp; } else if (c->stream->codecpar->codec_type == AVMEDIA_TYPE_AUDIO) { output->pts = c->frame->pts; ret = swr_convert_frame(c->swr_ctx, output, c->frame); if (ret < 0) { qDebug() << "[ERROR] Failed to resample audio." << ret; } } } else if (ret == AVERROR_EOF) { c->reached_end = true; } else { qDebug() << "[WARNING] Raw frame data could not be retrieved." << ret; } } } bool is_clip_active(Clip* c, long playhead) { return c->enabled && c->timeline_in < playhead + ceil(c->sequence->frame_rate) && c->timeline_out > playhead && playhead - c->timeline_in + c->clip_in < c->getMediaLength(c->sequence->frame_rate); } void set_sequence(Sequence* s) { closeActiveClips(sequence, true); sequence = s; panel_timeline->update_sequence(); panel_viewer->update_sequence(); panel_timeline->setFocus(); } void closeActiveClips(Sequence *s, bool wait) { if (s != NULL) { for (int i=0;iclips.size();i++) { Clip* c = s->clips.at(i); if (c != NULL) { if (c->media_type == MEDIA_TYPE_SEQUENCE) { closeActiveClips(static_cast(c->media), wait); close_clip(c); } else if (c->media_type == MEDIA_TYPE_FOOTAGE && c->open) { close_clip(c); if (c->multithreaded && wait) c->cacher->wait(); } } } } }