Sometimes we'll be copying nodes without wanting to copy their connections, since we'll want to connect them to equivalent copies rather than connecting them to the same nodes the originals were connected to. We now have an extra parameter to distinguish such operations.
465 lines
11 KiB
C++
465 lines
11 KiB
C++
/***
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Olive - Non-Linear Video Editor
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Copyright (C) 2019 Olive Team
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This program is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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***/
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#include "node.h"
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#include <QDebug>
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Node::Node() :
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last_processed_time_(-1),
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can_be_deleted_(true)
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{
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}
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QString Node::Category()
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{
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// Return an empty category for any nodes that don't use one
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return QString();
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}
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QString Node::Description()
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{
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// Return an empty string by default
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return QString();
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}
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void Node::Release()
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{
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}
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void Node::Retranslate()
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{
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}
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void Node::AddParameter(NodeParam *param)
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{
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// Ensure no other param with this ID has been added to this Node (since that defeats the purpose)
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Q_ASSERT(!HasParamWithID(param->id()));
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param->setParent(this);
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params_.append(param);
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connect(param, SIGNAL(EdgeAdded(NodeEdgePtr)), this, SIGNAL(EdgeAdded(NodeEdgePtr)));
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connect(param, SIGNAL(EdgeRemoved(NodeEdgePtr)), this, SIGNAL(EdgeRemoved(NodeEdgePtr)));
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if (param->type() == NodeParam::kInput) {
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connect(param, SIGNAL(ValueChanged(rational, rational)), this, SLOT(InputChanged(rational, rational)));
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connect(param, SIGNAL(EdgeAdded(NodeEdgePtr)), this, SLOT(InputConnectionChanged(NodeEdgePtr)));
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connect(param, SIGNAL(EdgeRemoved(NodeEdgePtr)), this, SLOT(InputConnectionChanged(NodeEdgePtr)));
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}
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}
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void Node::RemoveParameter(NodeParam *param)
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{
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params_.removeAll(param);
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delete param;
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}
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QVariant Node::Value(NodeOutput *output)
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{
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Q_UNUSED(output)
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return QVariant();
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}
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void Node::InvalidateCache(const rational &start_range, const rational &end_range, NodeInput *from)
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{
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Q_UNUSED(from)
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foreach (NodeParam* param, params_) {
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if (param->type() == NodeParam::kOutput) {
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NodeOutput* output = static_cast<NodeOutput*>(param);
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output->drop_cached_values_overlapping(TimeRange(start_range, end_range));
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}
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}
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SendInvalidateCache(start_range, end_range);
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}
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TimeRange Node::InputTimeAdjustment(NodeInput *input, const TimeRange &input_time)
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{
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Q_UNUSED(input)
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// Default behavior is no time adjustment at all
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return input_time;
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}
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void Node::SendInvalidateCache(const rational &start_range, const rational &end_range)
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{
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// Loop through all parameters (there should be no children that are not NodeParams)
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foreach (NodeParam* param, params_) {
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// If the Node is an output, relay the signal to any Nodes that are connected to it
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if (param->type() == NodeParam::kOutput) {
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QVector<NodeEdgePtr> edges = param->edges();
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foreach (NodeEdgePtr edge, edges) {
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NodeInput* connected_input = edge->input();
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Node* connected_node = connected_input->parent();
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// Send clear cache signal to the Node
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connected_node->InvalidateCache(start_range, end_range, connected_input);
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}
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}
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}
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}
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void Node::LockUserInput()
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{
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user_input_lock_.lock();
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}
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void Node::UnlockUserInput()
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{
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user_input_lock_.unlock();
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}
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void Node::LockProcessing()
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{
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processing_lock_.lock();
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}
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void Node::UnlockProcessing()
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{
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processing_lock_.unlock();
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}
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bool Node::IsProcessingLocked()
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{
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if (processing_lock_.tryLock()) {
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processing_lock_.unlock();
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return false;
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} else {
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return true;
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}
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}
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void Node::CopyInputs(Node *source, Node *destination, bool include_connections)
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{
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Q_ASSERT(source->id() == destination->id());
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const QList<NodeParam*>& src_param = source->params_;
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const QList<NodeParam*>& dst_param = destination->params_;
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for (int i=0;i<src_param.size();i++) {
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if (src_param.at(i)->type() == NodeParam::kInput) {
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NodeInput* src = static_cast<NodeInput*>(src_param.at(i));
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if (src->dependent()) {
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NodeInput* dst = static_cast<NodeInput*>(dst_param.at(i));
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NodeInput::CopyValues(src, dst, include_connections);
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}
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}
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}
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}
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void Node::DuplicateConnectionsBetweenLists(const QList<Node *> &source, const QList<Node *> &destination)
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{
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Q_ASSERT(source.size() == destination.size());
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for (int i=0;i<source.size();i++) {
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Node* source_node = source.at(i);
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Node* dest_node = destination.at(i);
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for (int j=0;j<source_node->params_.size();j++) {
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NodeParam* source_param = source_node->params_.at(j);
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if (source_param->type() == NodeInput::kInput && source_param->IsConnected()) {
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NodeInput* source_input = static_cast<NodeInput*>(source_param);
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NodeInput* dest_input = static_cast<NodeInput*>(dest_node->params_.at(j));
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// Get this input's connected outputs
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NodeOutput* connected_output = source_input->get_connected_output();
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Node* connected_node = connected_output->parent();
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// Find index of connected output in source list
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int connection_index = source.indexOf(connected_node);
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// Find equivalent in destination list
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Node* dest_output_node = destination.at(connection_index);
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NodeOutput* dest_output = static_cast<NodeOutput*>(dest_output_node->params_.at(connected_output->index()));
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NodeParam::ConnectEdge(dest_output, dest_input);
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}
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}
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}
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}
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bool Node::CanBeDeleted()
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{
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return can_be_deleted_;
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}
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void Node::SetCanBeDeleted(bool s)
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{
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can_be_deleted_ = s;
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}
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bool Node::IsBlock()
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{
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return false;
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}
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rational Node::LastProcessedTime()
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{
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rational t;
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LockUserInput();
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t = last_processed_time_;
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UnlockUserInput();
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return t;
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}
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NodeOutput *Node::LastProcessedOutput()
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{
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NodeOutput* o;
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LockUserInput();
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o = last_processed_parameter_;
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UnlockUserInput();
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return o;
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}
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const QList<NodeParam *>& Node::parameters()
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{
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return params_;
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}
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int Node::IndexOfParameter(NodeParam *param)
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{
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return children().indexOf(param);
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}
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/**
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* @brief Recursively collects dependencies of Node `n` and appends them to QList `list`
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*
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* @param traverse
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*
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* TRUE to recursively traverse each node for a complete dependency graph. FALSE to return only the immediate
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* dependencies.
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*/
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void GetDependenciesInternal(Node* n, QList<Node*>& list, bool traverse) {
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foreach (NodeParam* p, n->parameters()) {
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if (p->type() == NodeParam::kInput) {
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Node* connected = static_cast<NodeInput*>(p)->get_connected_node();
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if (connected != nullptr && !list.contains(connected)) {
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list.append(connected);
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if (traverse) {
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GetDependenciesInternal(connected, list, traverse);
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}
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}
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}
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}
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}
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QList<Node *> Node::GetDependencies()
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{
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QList<Node *> node_list;
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GetDependenciesInternal(this, node_list, true);
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return node_list;
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}
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QList<Node *> Node::GetExclusiveDependencies()
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{
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QList<Node*> deps = GetDependencies();
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// Filter out any dependencies that are used elsewhere
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for (int i=0;i<deps.size();i++) {
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QList<NodeParam*> params = deps.at(i)->params_;
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// See if any of this Node's outputs are used outside of this dep list
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for (int j=0;j<params.size();j++) {
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NodeParam* p = params.at(j);
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if (p->type() == NodeParam::kOutput) {
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QVector<NodeEdgePtr> edges = p->edges();
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for (int k=0;k<edges.size();k++) {
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NodeEdgePtr edge = edges.at(k);
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// If any edge goes to from an output here to an input of a Node that isn't in this dep list, it's NOT an
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// exclusive dependency
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if (deps.contains(edge->input()->parent())) {
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deps.removeAt(i);
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i--; // -1 since we just removed a Node in this list
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j = params.size(); // No need to keep looking at this Node's params
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break; // Or this param's edges
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}
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}
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}
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}
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}
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return deps;
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}
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QList<Node *> Node::GetImmediateDependencies()
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{
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QList<Node *> node_list;
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GetDependenciesInternal(this, node_list, false);
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return node_list;
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}
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QString Node::Code(NodeOutput *output)
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{
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Q_UNUSED(output)
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return QString();
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}
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NodeParam *Node::GetParameterWithID(const QString &id)
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{
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foreach (NodeParam* param, params_) {
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if (param->id() == id) {
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return param;
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}
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}
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return nullptr;
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}
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bool Node::OutputsTo(Node *n)
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{
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foreach (NodeParam* param, params_) {
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if (param->type() == NodeParam::kOutput) {
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QVector<NodeEdgePtr> edges = param->edges();
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foreach (NodeEdgePtr edge, edges) {
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if (edge->input()->parent() == n) {
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return true;
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}
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}
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}
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}
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return false;
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}
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bool Node::HasInputs()
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{
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return HasParamOfType(NodeParam::kInput, false);
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}
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bool Node::HasOutputs()
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{
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return HasParamOfType(NodeParam::kOutput, false);
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}
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bool Node::HasConnectedInputs()
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{
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return HasParamOfType(NodeParam::kInput, true);
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}
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bool Node::HasConnectedOutputs()
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{
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return HasParamOfType(NodeParam::kOutput, true);
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}
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void Node::DisconnectAll()
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{
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foreach (NodeParam* param, params_) {
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param->DisconnectAll();
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}
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}
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/*void Node::Hash(QCryptographicHash *hash, NodeOutput* from, const rational &time)
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{
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// Add this Node's ID
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hash->addData(id().toUtf8());
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// Add each value
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foreach (NodeParam* param, params_) {
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if (param->type() == NodeParam::kInput
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&& !param->IsConnected()
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&& static_cast<NodeInput*>(param)->dependent()) {
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// Get the value at this time
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NodeInput* input = static_cast<NodeInput*>(param);
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QVariant v = input->value(time);
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hash->addData(NodeParam::ValueToBytes(input->data_type(), v));
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}
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}
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// Add each dependency node
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QList<NodeDependency> deps = RunDependencies(from, time);
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foreach (const NodeDependency& dep, deps) {
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// Hash the connected node
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dep.node()->parent()->Hash(hash, dep.node(), dep.in());
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}
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}*/
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QVariant Node::PtrToValue(void *ptr)
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{
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return reinterpret_cast<quintptr>(ptr);
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}
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bool Node::HasParamWithID(const QString &id)
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{
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foreach (NodeParam* p, params_)
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{
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if (p->id() == id)
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{
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return true;
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}
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}
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return false;
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}
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bool Node::HasParamOfType(NodeParam::Type type, bool must_be_connected)
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{
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foreach (NodeParam* p, params_) {
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if (p->type() == type
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&& (p->IsConnected() || !must_be_connected)) {
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return true;
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}
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}
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return false;
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}
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void Node::InputChanged(rational start, rational end)
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{
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InvalidateCache(start, end, static_cast<NodeInput*>(sender()));
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}
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void Node::InputConnectionChanged(NodeEdgePtr edge)
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{
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Q_UNUSED(edge)
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InvalidateCache(RATIONAL_MIN, RATIONAL_MAX, static_cast<NodeInput*>(sender()));
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}
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