Files
oak-editor/app/render/backend/opengl/openglworker.cpp
T
itsmattkc 46855adea7 use a system of deferred maps to keep track of frames that don't need to be rendered twice
Mostly used for exporting to ensure all frames get accounted for when being
sent from the renderer to the exporter through signals/slots.
2019-12-22 03:03:08 +11:00

390 lines
13 KiB
C++

#include "openglworker.h"
#include "common/clamp.h"
#include "core.h"
#include "functions.h"
#include "node/block/transition/transition.h"
#include "node/node.h"
#include "openglcolorprocessor.h"
#include "render/colormanager.h"
#include "render/pixelservice.h"
OpenGLWorker::OpenGLWorker(QOpenGLContext *share_ctx, OpenGLShaderCache *shader_cache, OpenGLTextureCache *texture_cache, VideoRenderFrameCache *frame_cache, QObject *parent) :
VideoRenderWorker(frame_cache, parent),
share_ctx_(share_ctx),
ctx_(nullptr),
functions_(nullptr),
shader_cache_(shader_cache),
texture_cache_(texture_cache)
{
surface_.create();
}
OpenGLWorker::~OpenGLWorker()
{
surface_.destroy();
}
bool OpenGLWorker::InitInternal()
{
if (!VideoRenderWorker::InitInternal()) {
return false;
}
// Create context object
ctx_ = new QOpenGLContext();
// Set share context
ctx_->setShareContext(share_ctx_);
// Create OpenGL context (automatically destroys any existing if there is one)
if (!ctx_->create()) {
qWarning() << "Failed to create OpenGL context in thread" << thread();
return false;
}
ctx_->moveToThread(this->thread());
// The rest of the initialization needs to occur in the other thread, so we signal for it to start
QMetaObject::invokeMethod(this, "FinishInit", Qt::QueuedConnection);
return true;
}
void OpenGLWorker::FrameToValue(StreamPtr stream, FramePtr frame, NodeValueTable *table)
{
// Ensure stream is video or image type
if (stream->type() != Stream::kVideo && stream->type() != Stream::kImage) {
return;
}
ImageStreamPtr video_stream = std::static_pointer_cast<ImageStream>(stream);
// Set up OCIO context
OpenGLColorProcessorPtr color_processor = std::static_pointer_cast<OpenGLColorProcessor>(color_cache()->Get(video_stream->colorspace()));
if (!color_processor) {
// FIXME: We match with the colorspace string, but this won't change if the user sets a new config with a colorspace with the same string
color_processor = OpenGLColorProcessor::CreateOpenGL(video_stream->footage()->project()->color_manager()->GetConfig(),
video_stream->colorspace(),
OCIO::ROLE_SCENE_LINEAR);
color_cache()->Add(video_stream->colorspace(), color_processor);
}
// OCIO's CPU conversion is more accurate, so for online we render on CPU but offline we render GPU
if (video_params().mode() == olive::kOnline) {
// If alpha is associated, disassociate for the color transform
if (video_stream->premultiplied_alpha()) {
ColorManager::DisassociateAlpha(frame);
}
// Convert frame to float for OCIO
frame = PixelService::ConvertPixelFormat(frame, olive::PIX_FMT_RGBA32F);
// Perform color transform
color_processor->ConvertFrame(frame);
// Associate alpha
if (video_stream->premultiplied_alpha()) {
ColorManager::ReassociateAlpha(frame);
} else {
ColorManager::AssociateAlpha(frame);
}
}
VideoRenderingParams footage_params(frame->width(), frame->height(), stream->timebase(), frame->format(), video_params().mode());
OpenGLTextureCache::ReferencePtr footage_tex_ref = texture_cache_->Get(ctx_, footage_params, frame->data());
if (video_params().mode() == olive::kOffline) {
if (!color_processor->IsEnabled()) {
color_processor->Enable(ctx_, video_stream->premultiplied_alpha());
}
// Create destination texture
OpenGLTextureCache::ReferencePtr associated_tex_ref = texture_cache_->Get(ctx_, footage_params);
buffer_.Attach(associated_tex_ref->texture(), true);
buffer_.Bind();
footage_tex_ref->texture()->Bind();
// Set viewport for texture size
functions_->glViewport(0, 0, footage_tex_ref->texture()->width(), footage_tex_ref->texture()->height());
// Blit old texture to new texture through OCIO shader
color_processor->ProcessOpenGL();
footage_tex_ref->texture()->Release();
buffer_.Release();
buffer_.Detach();
footage_tex_ref = associated_tex_ref;
}
table->Push(NodeParam::kTexture, QVariant::fromValue(footage_tex_ref));
}
void OpenGLWorker::CloseInternal()
{
buffer_.Destroy();
functions_ = nullptr;
delete ctx_;
}
void OpenGLWorker::ParametersChangedEvent()
{
if (functions_ != nullptr && video_params().is_valid()) {
functions_->glViewport(0, 0, video_params().effective_width(), video_params().effective_height());
}
}
void OpenGLWorker::RunNodeAccelerated(const Node *node, const TimeRange &range, const NodeValueDatabase *input_params, NodeValueTable *output_params)
{
OpenGLShaderPtr shader = shader_cache_->Get(node->id());
if (!shader) {
return;
}
// Create the output textures
QList<OpenGLTextureCache::ReferencePtr> dst_refs;
dst_refs.append(texture_cache_->Get(ctx_, video_params()));
GLuint iterative_input = 0;
// If this node requires multiple iterations, get a texture for it too
if (node->AcceleratedCodeIterations() > 1 && node->AcceleratedCodeIterativeInput()) {
dst_refs.append(texture_cache_->Get(ctx_, video_params()));
}
// Lock the shader so no other thread interferes as we set parameters and draw (and we don't interfere with any others)
shader->Lock();
shader->bind();
unsigned int input_texture_count = 0;
foreach (NodeParam* param, node->parameters()) {
if (param->type() == NodeParam::kInput) {
// See if the shader has takes this parameter as an input
int variable_location = shader->uniformLocation(param->id());
if (variable_location > -1) {
// This variable is used in the shader, let's set it to our value
NodeInput* input = static_cast<NodeInput*>(param);
// Get value from database at this input
const NodeValueTable& input_data = (*input_params)[input];
QVariant value = node->InputValueFromTable(input, input_data);
switch (input->data_type()) {
case NodeInput::kInt:
shader->setUniformValue(variable_location, value.toInt());
break;
case NodeInput::kFloat:
shader->setUniformValue(variable_location, value.toFloat());
break;
case NodeInput::kVec2:
shader->setUniformValue(variable_location, value.value<QVector2D>());
break;
case NodeInput::kVec3:
shader->setUniformValue(variable_location, value.value<QVector3D>());
break;
case NodeInput::kVec4:
shader->setUniformValue(variable_location, value.value<QVector4D>());
break;
case NodeInput::kMatrix:
shader->setUniformValue(variable_location, value.value<QMatrix4x4>());
break;
case NodeInput::kColor:
shader->setUniformValue(variable_location, value.value<QColor>());
break;
case NodeInput::kBoolean:
shader->setUniformValue(variable_location, value.toBool());
break;
case NodeInput::kFootage:
case NodeInput::kTexture:
case NodeInput::kBuffer:
{
OpenGLTextureCache::ReferencePtr texture = value.value<OpenGLTextureCache::ReferencePtr>();
functions_->glActiveTexture(GL_TEXTURE0 + input_texture_count);
GLuint tex_id = texture ? texture->texture()->texture() : 0;
functions_->glBindTexture(GL_TEXTURE_2D, tex_id);
// Set value to bound texture
shader->setUniformValue(variable_location, input_texture_count);
// Set enable flag if shader wants it
int enable_param_location = shader->uniformLocation(QStringLiteral("%1_enabled").arg(input->id()));
if (enable_param_location > -1) {
shader->setUniformValue(enable_param_location,
tex_id > 0);
}
if (tex_id > 0) {
// Set texture resolution if shader wants it
int res_param_location = shader->uniformLocation(QStringLiteral("%1_resolution").arg(input->id()));
if (res_param_location > -1) {
shader->setUniformValue(res_param_location,
static_cast<GLfloat>(texture->texture()->width()),
static_cast<GLfloat>(texture->texture()->height()));
}
}
// If this texture binding is the iterative input, set it here
if (input == node->AcceleratedCodeIterativeInput()) {
iterative_input = input_texture_count;
}
olive::gl::PrepareToDraw(functions_);
input_texture_count++;
break;
}
case NodeInput::kSamples:
case NodeInput::kText:
case NodeInput::kRational:
case NodeInput::kFont:
case NodeInput::kFile:
case NodeInput::kDecimal:
case NodeInput::kWholeNumber:
case NodeInput::kNumber:
case NodeInput::kString:
case NodeInput::kVector:
case NodeInput::kNone:
case NodeInput::kAny:
break;
}
}
}
}
// Set up OpenGL parameters as necessary
functions_->glViewport(0, 0, video_params().effective_width(), video_params().effective_height());
// Provide some standard args
shader->setUniformValue("ove_resolution",
static_cast<GLfloat>(video_params().width()),
static_cast<GLfloat>(video_params().height()));
if (node->IsBlock()) {
const Block* block_node = static_cast<const Block*>(node);
if (block_node->type() == Block::kTransition) {
const TransitionBlock* transition_node = static_cast<const TransitionBlock*>(node);
// Provide transition information
double internal_time = (range.in() - block_node->in()).toDouble();
GLfloat all_prog = static_cast<GLfloat>(internal_time / block_node->length().toDouble());
GLfloat out_prog = 0;
GLfloat in_prog = 0;
if (transition_node->out_offset() != 0) {
out_prog = static_cast<GLfloat>(clamp(1.0 - (internal_time / transition_node->out_offset().toDouble()), 0.0, 1.0));
}
if (transition_node->in_offset() != 0) {
in_prog = static_cast<GLfloat>(clamp((internal_time - transition_node->out_offset().toDouble()) / transition_node->in_offset().toDouble(), 0.0, 1.0));
}
// Provides total transition progress from 0.0 (start) - 1.0 (end)
shader->setUniformValue("ove_tprog_all", all_prog);
// Provides progress of out section from 1.0 (start) - 0.0 (end)
shader->setUniformValue("ove_tprog_out", out_prog);
// Provides progress of in section from 0.0 (start) - 1.0 (end)
shader->setUniformValue("ove_tprog_in", in_prog);
}
}
// Some nodes use multiple iterations for optimization
OpenGLTextureCache::ReferencePtr output_tex;
for (int iteration=0;iteration<node->AcceleratedCodeIterations();iteration++) {
// Set iteration number
shader->bind();
shader->setUniformValue("ove_iteration", iteration);
shader->release();
// If this is not the first iteration, set the parameter that will receive the last iteration's texture
OpenGLTextureCache::ReferencePtr source_tex = dst_refs.at((iteration+1)%dst_refs.size());
OpenGLTextureCache::ReferencePtr destination_tex = dst_refs.at(iteration%dst_refs.size());
if (iteration > 0) {
functions_->glActiveTexture(GL_TEXTURE0 + iterative_input);
functions_->glBindTexture(GL_TEXTURE_2D, source_tex->texture()->texture());
}
buffer_.Attach(destination_tex->texture(), true);
buffer_.Bind();
// Blit this texture through this shader
olive::gl::Blit(shader);
buffer_.Release();
buffer_.Detach();
// Update output reference to the last texture we wrote to
output_tex = destination_tex;
}
// Make sure all OpenGL functions are complete by this point before unlocking the shader (or another thread may
// change its parameters before our drawing in this thread is done)
shader->Unlock();
// Release any textures we bound before
while (input_texture_count > 0) {
input_texture_count--;
// Release texture here
functions_->glActiveTexture(GL_TEXTURE0 + input_texture_count);
functions_->glBindTexture(GL_TEXTURE_2D, 0);
}
shader->release();
output_params->Push(NodeParam::kTexture, QVariant::fromValue(output_tex));
}
void OpenGLWorker::TextureToBuffer(const QVariant &tex_in, QByteArray &buffer)
{
OpenGLTextureCache::ReferencePtr texture = tex_in.value<OpenGLTextureCache::ReferencePtr>();
PixelFormatInfo format_info = PixelService::GetPixelFormatInfo(video_params().format());
QOpenGLFunctions* f = QOpenGLContext::currentContext()->functions();
buffer_.Attach(texture->texture());
buffer_.Bind();
f->glReadPixels(0,
0,
texture->texture()->width(),
texture->texture()->height(),
format_info.pixel_format,
format_info.gl_pixel_type,
buffer.data());
buffer_.Release();
buffer_.Detach();
}
void OpenGLWorker::FinishInit()
{
// Make context current on that surface
if (!ctx_->makeCurrent(&surface_)) {
qWarning() << "Failed to makeCurrent() on offscreen surface in thread" << thread();
return;
}
// Store OpenGL functions instance
functions_ = ctx_->functions();
functions_->glBlendFunc(GL_ONE, GL_ZERO);
ParametersChangedEvent();
buffer_.Create(ctx_);
}