/*** Olive - Non-Linear Video Editor Copyright (C) 2022 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 "node.h" #include #include #include #include #include "common/bezier.h" #include "common/lerp.h" #include "common/timecodefunctions.h" #include "common/xmlutils.h" #include "core.h" #include "config/config.h" #include "node/project/footage/footage.h" #include "project/project.h" #include "ui/colorcoding.h" #include "ui/icons/icons.h" #include "widget/nodeparamview/nodeparamviewundo.h" #include "widget/nodeview/nodeviewundo.h" namespace olive { #define super QObject const QString Node::kEnabledInput = QStringLiteral("enabled_in"); Node::Node() : can_be_deleted_(true), override_color_(-1), folder_(nullptr), cache_result_(false), flags_(kNone) { AddInput(kEnabledInput, NodeValue::kBoolean, true); video_cache_ = new FrameHashCache(this); audio_cache_ = new AudioPlaybackCache(this); } Node::~Node() { // Disconnect all edges DisconnectAll(); // Remove self from anything while we're still a node rather than a base QObject setParent(nullptr); // Remove all immediates foreach (NodeInputImmediate* i, standard_immediates_) { delete i; } for (auto it=array_immediates_.cbegin(); it!=array_immediates_.cend(); it++) { foreach (NodeInputImmediate* i, it.value()) { delete i; } } } NodeGraph *Node::parent() const { return static_cast(QObject::parent()); } Project *Node::project() const { return Project::GetProjectFromObject(this); } QString Node::ShortName() const { return Name(); } QString Node::Description() const { // Return an empty string by default return QString(); } void Node::Retranslate() { SetInputName(kEnabledInput, tr("Enabled")); } QIcon Node::icon() const { // Just a meaningless default icon to be used where necessary return icon::New; } bool Node::SetNodePositionInContext(Node *node, const QPointF &pos) { Position p = context_positions_.value(node); p.position = pos; return SetNodePositionInContext(node, p); } bool Node::SetNodePositionInContext(Node *node, const Position &pos) { bool added = !ContextContainsNode(node); context_positions_.insert(node, pos); if (added) { emit NodeAddedToContext(node); } emit NodePositionInContextChanged(node, pos.position); return added; } bool Node::RemoveNodeFromContext(Node *node) { if (ContextContainsNode(node)) { context_positions_.remove(node); emit NodeRemovedFromContext(node); return true; } else { return false; } } Color Node::color() const { int c; if (override_color_ >= 0) { c = override_color_; } else { c = OLIVE_CONFIG_STR(QStringLiteral("CatColor%1").arg(this->Category().first())).toInt(); } return ColorCoding::GetColor(c); } QLinearGradient Node::gradient_color(qreal top, qreal bottom) const { QLinearGradient grad; grad.setStart(0, top); grad.setFinalStop(0, bottom); QColor c = color().toQColor(); grad.setColorAt(0.0, c.lighter()); grad.setColorAt(1.0, c); return grad; } QBrush Node::brush(qreal top, qreal bottom) const { if (OLIVE_CONFIG("UseGradients").toBool()) { return gradient_color(top, bottom); } else { return color().toQColor(); } } void Node::ConnectEdge(Node *output, const NodeInput &input) { // Ensure graph is the same Q_ASSERT(input.node()->parent() == output->parent()); // Ensure a connection isn't getting overwritten Q_ASSERT(input.node()->input_connections().find(input) == input.node()->input_connections().end()); // Insert connection on both sides input.node()->input_connections_[input] = output; output->output_connections_.push_back(std::pair({output, input})); // Call internal events input.node()->InputConnectedEvent(input.input(), input.element(), output); output->OutputConnectedEvent(input); // Emit signals emit input.node()->InputConnected(output, input); emit output->OutputConnected(output, input); // Invalidate all if this node isn't ignoring this input if (!input.node()->ignore_connections_.contains(input.input())) { input.node()->InvalidateAll(input.input(), input.element()); } } void Node::DisconnectEdge(Node *output, const NodeInput &input) { // Ensure graph is the same Q_ASSERT(input.node()->parent() == output->parent()); // Ensure connection exists Q_ASSERT(input.node()->input_connections().at(input) == output); // Remove connection from both sides InputConnections& inputs = input.node()->input_connections_; inputs.erase(inputs.find(input)); OutputConnections& outputs = output->output_connections_; outputs.erase(std::find(outputs.begin(), outputs.end(), std::pair({output, input}))); // Call internal events input.node()->InputDisconnectedEvent(input.input(), input.element(), output); output->OutputDisconnectedEvent(input); emit input.node()->InputDisconnected(output, input); emit output->OutputDisconnected(output, input); if (!input.node()->ignore_connections_.contains(input.input())) { input.node()->InvalidateAll(input.input(), input.element()); } } QString Node::GetInputName(const QString &id) const { const Input* i = GetInternalInputData(id); if (i) { return i->human_name; } else { ReportInvalidInput("get name of", id); return QString(); } } bool Node::IsInputHidden(const QString &input) const { return (GetInputFlags(input) & kInputFlagHidden); } bool Node::IsInputConnectable(const QString &input) const { return !(GetInputFlags(input) & kInputFlagNotConnectable); } bool Node::IsInputKeyframable(const QString &input) const { return !(GetInputFlags(input) & kInputFlagNotKeyframable); } bool Node::IsInputKeyframing(const QString &input, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->is_keyframing(); } else { ReportInvalidInput("get keyframing state of", input); return false; } } void Node::SetInputIsKeyframing(const QString &input, bool e, int element) { if (!IsInputKeyframable(input)) { qDebug() << "Ignored set keyframing of" << input << "because this input is not keyframable"; return; } NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { imm->set_is_keyframing(e); emit KeyframeEnableChanged(NodeInput(this, input, element), e); } else { ReportInvalidInput("set keyframing state of", input); } } bool Node::IsInputConnected(const QString &input, int element) const { return GetConnectedOutput(input, element); } Node *Node::GetConnectedOutput(const QString &input, int element) const { for (auto it=input_connections_.cbegin(); it!=input_connections_.cend(); it++) { if (it->first.input() == input && it->first.element() == element) { return it->second; } } return nullptr; } bool Node::IsUsingStandardValue(const QString &input, int track, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->is_using_standard_value(track); } else { ReportInvalidInput("determine whether using standard value in", input); return true; } } NodeValue::Type Node::GetInputDataType(const QString &id) const { const Input* i = GetInternalInputData(id); if (i) { return i->type; } else { ReportInvalidInput("get data type of", id); return NodeValue::kNone; } } void Node::SetInputDataType(const QString &id, const NodeValue::Type &type) { Input* input_meta = GetInternalInputData(id); if (input_meta) { input_meta->type = type; int array_sz = InputArraySize(id); for (int i=-1; iset_data_type(type); } emit InputDataTypeChanged(id, type); } else { ReportInvalidInput("set data type of", id); } } bool Node::HasInputProperty(const QString &id, const QString &name) const { const Input* i = GetInternalInputData(id); if (i) { return i->properties.contains(name); } else { ReportInvalidInput("get property of", id); return false; } } QHash Node::GetInputProperties(const QString &id) const { const Input* i = GetInternalInputData(id); if (i) { return i->properties; } else { ReportInvalidInput("get property table of", id); return QHash(); } } QVariant Node::GetInputProperty(const QString &id, const QString &name) const { const Input* i = GetInternalInputData(id); if (i) { return i->properties.value(name); } else { ReportInvalidInput("get property of", id); return QVariant(); } } void Node::SetInputProperty(const QString &id, const QString &name, const QVariant &value) { Input* i = GetInternalInputData(id); if (i) { i->properties.insert(name, value); emit InputPropertyChanged(id, name, value); } else { ReportInvalidInput("set property of", id); } } SplitValue Node::GetSplitValueAtTime(const QString &input, const rational &time, int element) const { SplitValue vals; int nb_tracks = GetNumberOfKeyframeTracks(input); for (int i=0;itime() >= time) { // This time precedes any keyframe, so we just return the first value return key_track.first()->value(); } if (key_track.last()->time() <= time) { // This time is after any keyframes so we return the last value return key_track.last()->value(); } NodeValue::Type type = GetInputDataType(input); // If we're here, the time must be somewhere in between the keyframes NodeKeyframe *before = nullptr, *after = nullptr; int low = 0; int high = key_track.size()-1; while (low <= high) { int mid = low + (high - low) / 2; NodeKeyframe *mid_key = key_track.at(mid); NodeKeyframe *next_key = key_track.at(mid + 1); if (mid_key->time() <= time && next_key->time() > time) { before = mid_key; after = next_key; break; } else if (mid_key->time() < time) { low = mid + 1; } else { high = mid - 1; } } if (before) { if (before->time() == time || ((!NodeValue::type_can_be_interpolated(type) || before->type() == NodeKeyframe::kHold) && after->time() > time)) { // Time == keyframe time, so value is precise return before->value(); } else if (after->time() == time) { // Time == keyframe time, so value is precise return after->value(); } else if (before->time() < time && after->time() > time) { // We must interpolate between these keyframes double before_val, after_val, interpolated; if (type == NodeValue::kRational) { before_val = before->value().value().toDouble(); after_val = after->value().value().toDouble(); } else { before_val = before->value().toDouble(); after_val = after->value().toDouble(); } if (before->type() == NodeKeyframe::kBezier && after->type() == NodeKeyframe::kBezier) { // Perform a cubic bezier with two control points interpolated = Bezier::CubicXtoY(time.toDouble(), QPointF(before->time().toDouble(), before_val), QPointF(before->time().toDouble() + before->valid_bezier_control_out().x(), before_val + before->valid_bezier_control_out().y()), QPointF(after->time().toDouble() + after->valid_bezier_control_in().x(), after_val + after->valid_bezier_control_in().y()), QPointF(after->time().toDouble(), after_val)); } else if (before->type() == NodeKeyframe::kBezier || after->type() == NodeKeyframe::kBezier) { // Perform a quadratic bezier with only one control point QPointF control_point; if (before->type() == NodeKeyframe::kBezier) { control_point = before->valid_bezier_control_out(); control_point.setX(control_point.x() + before->time().toDouble()); control_point.setY(control_point.y() + before_val); } else { control_point = after->valid_bezier_control_in(); control_point.setX(control_point.x() + after->time().toDouble()); control_point.setY(control_point.y() + after_val); } // Interpolate value using quadratic beziers interpolated = Bezier::QuadraticXtoY(time.toDouble(), QPointF(before->time().toDouble(), before_val), control_point, QPointF(after->time().toDouble(), after_val)); } else { // To have arrived here, the keyframes must both be linear qreal period_progress = (time.toDouble() - before->time().toDouble()) / (after->time().toDouble() - before->time().toDouble()); interpolated = lerp(before_val, after_val, period_progress); } if (type == NodeValue::kRational) { return QVariant::fromValue(rational::fromDouble(interpolated)); } else { return interpolated; } } } else { qWarning() << "Binary search for keyframes failed"; } } return GetSplitStandardValueOnTrack(input, track, element); } QVariant Node::GetDefaultValue(const QString &input) const { NodeValue::Type type = GetInputDataType(input); return NodeValue::combine_track_values_into_normal_value(type, GetSplitDefaultValue(input)); } SplitValue Node::GetSplitDefaultValue(const QString &input) const { const Input* i = GetInternalInputData(input); if (i) { return i->default_value; } else { ReportInvalidInput("retrieve default value of", input); return SplitValue(); } } QVariant Node::GetSplitDefaultValueOnTrack(const QString &input, int track) const { SplitValue val = GetSplitDefaultValue(input); if (track < val.size()) { return val.at(track); } else { return QVariant(); } } void Node::SetDefaultValue(const QString &input, const QVariant &val) { NodeValue::Type type = GetInputDataType(input); SetSplitDefaultValue(input, NodeValue::split_normal_value_into_track_values(type, val)); } void Node::SetSplitDefaultValue(const QString &input, const SplitValue &val) { Input* i = GetInternalInputData(input); if (i) { i->default_value = val; } else { ReportInvalidInput("set default value of", input); } } void Node::SetSplitDefaultValueOnTrack(const QString &input, const QVariant &val, int track) { Input* i = GetInternalInputData(input); if (i) { if (track < i->default_value.size()) { i->default_value[track] = val; } } else { ReportInvalidInput("set default value on track of", input); } } const QVector &Node::GetKeyframeTracks(const QString &input, int element) const { return GetImmediate(input, element)->keyframe_tracks(); } QVector Node::GetKeyframesAtTime(const QString &input, const rational &time, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->get_keyframe_at_time(time); } else { ReportInvalidInput("get keyframes at time from", input); return QVector(); } } NodeKeyframe *Node::GetKeyframeAtTimeOnTrack(const QString &input, const rational &time, int track, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->get_keyframe_at_time_on_track(time, track); } else { ReportInvalidInput("get keyframe at time on track from", input); return nullptr; } } NodeKeyframe::Type Node::GetBestKeyframeTypeForTimeOnTrack(const QString &input, const rational &time, int track, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->get_best_keyframe_type_for_time(time, track); } else { ReportInvalidInput("get closest keyframe before a time from", input); return NodeKeyframe::kDefaultType; } } int Node::GetNumberOfKeyframeTracks(const QString &id) const { return NodeValue::get_number_of_keyframe_tracks(GetInputDataType(id)); } NodeKeyframe *Node::GetEarliestKeyframe(const QString &id, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->get_earliest_keyframe(); } else { ReportInvalidInput("get earliest keyframe from", id); return nullptr; } } NodeKeyframe *Node::GetLatestKeyframe(const QString &id, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->get_latest_keyframe(); } else { ReportInvalidInput("get latest keyframe from", id); return nullptr; } } NodeKeyframe *Node::GetClosestKeyframeBeforeTime(const QString &id, const rational &time, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->get_closest_keyframe_before_time(time); } else { ReportInvalidInput("get closest keyframe before a time from", id); return nullptr; } } NodeKeyframe *Node::GetClosestKeyframeAfterTime(const QString &id, const rational &time, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->get_closest_keyframe_after_time(time); } else { ReportInvalidInput("get closest keyframe after a time from", id); return nullptr; } } bool Node::HasKeyframeAtTime(const QString &id, const rational &time, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->has_keyframe_at_time(time); } else { ReportInvalidInput("determine if it has a keyframe at a time from", id); return false; } } QStringList Node::GetComboBoxStrings(const QString &id) const { return GetInputProperty(id, QStringLiteral("combo_str")).toStringList(); } QVariant Node::GetStandardValue(const QString &id, int element) const { NodeValue::Type type = GetInputDataType(id); return NodeValue::combine_track_values_into_normal_value(type, GetSplitStandardValue(id, element)); } SplitValue Node::GetSplitStandardValue(const QString &id, int element) const { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { return imm->get_split_standard_value(); } else { ReportInvalidInput("get standard value of", id); return SplitValue(); } } QVariant Node::GetSplitStandardValueOnTrack(const QString &input, int track, int element) const { NodeInputImmediate* imm = GetImmediate(input, element); if (imm) { return imm->get_split_standard_value_on_track(track); } else { ReportInvalidInput("get standard value of", input); return QVariant(); } } void Node::SetStandardValue(const QString &id, const QVariant &value, int element) { NodeValue::Type type = GetInputDataType(id); SetSplitStandardValue(id, NodeValue::split_normal_value_into_track_values(type, value), element); } void Node::SetSplitStandardValue(const QString &id, const SplitValue &value, int element) { NodeInputImmediate* imm = GetImmediate(id, element); if (imm) { imm->set_split_standard_value(value); for (int i=0; iset_standard_value_on_track(value, track); if (IsUsingStandardValue(id, track, element)) { // If this standard value is being used, we need to send a value changed signal ParameterValueChanged(id, element, TimeRange(RATIONAL_MIN, RATIONAL_MAX)); } } else { ReportInvalidInput("set standard value of", id); } } bool Node::InputIsArray(const QString &id) const { return GetInputFlags(id) & kInputFlagArray; } void Node::InputArrayInsert(const QString &id, int index, bool undoable) { if (undoable) { Core::instance()->undo_stack()->push(new ArrayInsertCommand(this, id, index)); } else { // Add new input ArrayResizeInternal(id, InputArraySize(id) + 1); // Move connections down InputConnections copied_edges = input_connections(); for (auto it=copied_edges.crbegin(); it!=copied_edges.crend(); it++) { if (it->first.input() == id && it->first.element() >= index) { // Disconnect this and reconnect it one element down NodeInput new_edge = it->first; new_edge.set_element(new_edge.element() + 1); DisconnectEdge(it->second, it->first); ConnectEdge(it->second, new_edge); } } // Shift values and keyframes up one element for (int i=InputArraySize(id)-1; i>index; i--) { CopyValuesOfElement(this, this, id, i-1, i); } // Reset value of element we just "inserted" ClearElement(id, index); } } void Node::InputArrayResize(const QString &id, int size, bool undoable) { if (InputArraySize(id) == size) { return; } ArrayResizeCommand* c = new ArrayResizeCommand(this, id, size); if (undoable) { Core::instance()->undo_stack()->push(c); } else { c->redo_now(); delete c; } } void Node::InputArrayRemove(const QString &id, int index, bool undoable) { if (undoable) { Core::instance()->undo_stack()->push(new ArrayRemoveCommand(this, id, index)); } else { // Remove input ArrayResizeInternal(id, InputArraySize(id) - 1); // Move connections up InputConnections copied_edges = input_connections(); for (auto it=copied_edges.cbegin(); it!=copied_edges.cend(); it++) { if (it->first.input() == id && it->first.element() >= index) { // Disconnect this and reconnect it one element up if it's not the element being removed DisconnectEdge(it->second, it->first); if (it->first.element() > index) { NodeInput new_edge = it->first; new_edge.set_element(new_edge.element() - 1); ConnectEdge(it->second, new_edge); } } } // Shift values and keyframes down one element int arr_sz = InputArraySize(id); for (int i=index; iarray_size; } else { ReportInvalidInput("retrieve array size of", id); return 0; } } void Node::SetValueHintForInput(const QString &input, const ValueHint &hint, int element) { value_hints_.insert({input, element}, hint); emit InputValueHintChanged(NodeInput(this, input, element)); InvalidateAll(input, element); } const NodeKeyframeTrack &Node::GetTrackFromKeyframe(NodeKeyframe *key) const { return GetImmediate(key->input(), key->element())->keyframe_tracks().at(key->track()); } NodeInputImmediate *Node::GetImmediate(const QString &input, int element) const { if (element == -1) { return standard_immediates_.value(input, nullptr); } else if (array_immediates_.contains(input)) { const QVector& imm_arr = array_immediates_.value(input); if (element >= 0 && element < imm_arr.size()) { return imm_arr.at(element); } } return nullptr; } InputFlags Node::GetInputFlags(const QString &input) const { const Input* i = GetInternalInputData(input); if (i) { return i->flags; } else { ReportInvalidInput("retrieve flags of", input); return InputFlags(kInputFlagNormal); } } void Node::SetInputFlags(const QString &input, const InputFlags &f) { Input* i = GetInternalInputData(input); if (i) { i->flags = f; emit InputFlagsChanged(input, i->flags); } else { ReportInvalidInput("set flags of", input); } } void Node::Value(const NodeValueRow& value, const NodeGlobals &globals, NodeValueTable *table) const { // Do nothing Q_UNUSED(value) Q_UNUSED(globals) Q_UNUSED(table) } void Node::InvalidateCache(const TimeRange &range, const QString &from, int element, InvalidateCacheOptions options) { Q_UNUSED(from) Q_UNUSED(element) if (range.in() != range.out()) { TimeRange vr = range.Intersected(GetVideoCacheRange()); if (vr.length() != 0) { video_frame_cache()->Invalidate(vr); } TimeRange ar = range.Intersected(GetAudioCacheRange()); if (ar.length() != 0) { audio_playback_cache()->Invalidate(ar); } } SendInvalidateCache(range, options); } TimeRange Node::InputTimeAdjustment(const QString &, int, const TimeRange &input_time) const { // Default behavior is no time adjustment at all return input_time; } TimeRange Node::OutputTimeAdjustment(const QString &, int, const TimeRange &input_time) const { // Default behavior is no time adjustment at all return input_time; } QVector Node::CopyDependencyGraph(const QVector &nodes, MultiUndoCommand *command) { int nb_nodes = nodes.size(); QVector copies(nb_nodes); for (int i=0; icopy(); // Copy the values, but NOT the connections, since we'll be connecting to our own clones later Node::CopyInputs(nodes.at(i), c, false); // Add to graph NodeGraph* graph = static_cast(nodes.at(i)->parent()); if (command) { command->add_child(new NodeAddCommand(graph, c)); } else { c->setParent(graph); } // Store in array at the same index as source copies[i] = c; } CopyDependencyGraph(nodes, copies, command); return copies; } void Node::CopyDependencyGraph(const QVector &src, const QVector &dst, MultiUndoCommand *command) { for (int i=0; iinput_connections_.cbegin(); it!=src_node->input_connections_.cend(); it++) { // Determine if the connected node is in our src list int connection_index = src.indexOf(it->second); if (connection_index > -1) { // Find the equivalent node in the dst list Node *copied_output = dst.at(connection_index); NodeInput copied_input = NodeInput(dst_node, it->first.input(), it->first.element()); if (command) { command->add_child(new NodeEdgeAddCommand(copied_output, copied_input)); command->add_child(new NodeSetValueHintCommand(copied_input, src_node->GetValueHintForInput(copied_input.input(), copied_input.element()))); } else { ConnectEdge(copied_output, copied_input); copied_input.node()->SetValueHintForInput(copied_input.input(), src_node->GetValueHintForInput(copied_input.input(), copied_input.element()), copied_input.element()); } } } } } Node *Node::CopyNodeAndDependencyGraphMinusItemsInternal(QMap& created, Node *node, MultiUndoCommand *command) { // Make a new node of the same type Node* copy = node->copy(); // Add to map created.insert(node, copy); // Add it to the same graph command->add_child(new NodeAddCommand(node->parent(), copy)); // Copy context children const PositionMap &map = node->GetContextPositions(); for (auto it=map.cbegin(); it!=map.cend(); it++) { // Add either the copy (if it exists) or the original node to the context Node *child; if (it.key()->IsItem()) { child = it.key(); } else { child = created.value(it.key()); if (!child) { child = CopyNodeAndDependencyGraphMinusItemsInternal(created, it.key(), command); } } command->add_child(new NodeSetPositionCommand(child, copy, it.value())); } // If this is a group, copy input and output passthroughs if (NodeGroup *src_group = dynamic_cast(node)) { NodeGroup *dst_group = static_cast(copy); for (auto it=src_group->GetInputPassthroughs().cbegin(); it!=src_group->GetInputPassthroughs().cend(); it++) { // This node should have been created by the context loop above NodeInput input = it->second; input.set_node(created.value(input.node())); command->add_child(new NodeGroupAddInputPassthrough(dst_group, input, it->first)); } command->add_child(new NodeGroupSetOutputPassthrough(dst_group, created.value(src_group->GetOutputPassthrough()))); } // Copy values to the clone CopyInputs(node, copy, false, command); // Go through input connections and copy if non-item and connect if item for (auto it=node->input_connections_.cbegin(); it!=node->input_connections_.cend(); it++) { NodeInput input = it->first; Node* connected = it->second; Node* connected_copy; if (connected->IsItem()) { // This is an item and we avoid copying those and just connect to them directly connected_copy = connected; } else { // Non-item, we want to clone this too connected_copy = created.value(connected, nullptr); if (!connected_copy) { connected_copy = CopyNodeAndDependencyGraphMinusItemsInternal(created, connected, command); } } NodeInput copied_input = input; copied_input.set_node(copy); command->add_child(new NodeEdgeAddCommand(connected_copy, copied_input)); command->add_child(new NodeSetValueHintCommand(copied_input, node->GetValueHintForInput(input.input(), input.element()))); } return copy; } Node *Node::CopyNodeAndDependencyGraphMinusItems(Node *node, MultiUndoCommand *command) { QMap created; return CopyNodeAndDependencyGraphMinusItemsInternal(created, node, command); } Node *Node::CopyNodeInGraph(Node *node, MultiUndoCommand *command) { Node* copy; if (OLIVE_CONFIG("SplitClipsCopyNodes").toBool()) { copy = Node::CopyNodeAndDependencyGraphMinusItems(node, command); } else { copy = node->copy(); command->add_child(new NodeAddCommand(static_cast(node->parent()), copy)); CopyInputs(node, copy, true, command); const PositionMap &map = node->GetContextPositions(); for (auto it=map.cbegin(); it!=map.cend(); it++) { // Add to the context command->add_child(new NodeSetPositionCommand(it.key(), copy, it.value())); } } return copy; } void Node::SendInvalidateCache(const TimeRange &range, const InvalidateCacheOptions &options) { for (const OutputConnection& conn : output_connections_) { // Send clear cache signal to the Node const NodeInput& in = conn.second; in.node()->InvalidateCache(range, in.input(), in.element(), options); } } void Node::InvalidateAll(const QString &input, int element) { InvalidateCache(TimeRange(RATIONAL_MIN, RATIONAL_MAX), input, element); } bool Node::Link(Node *a, Node *b) { if (a == b || !a || !b) { return false; } if (AreLinked(a, b)) { return false; } a->links_.append(b); b->links_.append(a); a->LinkChangeEvent(); b->LinkChangeEvent(); emit a->LinksChanged(); emit b->LinksChanged(); return true; } bool Node::Unlink(Node *a, Node *b) { if (!AreLinked(a, b)) { return false; } a->links_.removeOne(b); b->links_.removeOne(a); a->LinkChangeEvent(); b->LinkChangeEvent(); emit a->LinksChanged(); emit b->LinksChanged(); return true; } bool Node::AreLinked(Node *a, Node *b) { return a->links_.contains(b); } void Node::InsertInput(const QString &id, NodeValue::Type type, const QVariant &default_value, InputFlags flags, int index) { if (id.isEmpty()) { qWarning() << "Rejected adding input with an empty ID on node" << this->id(); return; } if (HasParamWithID(id)) { qWarning() << "Failed to add input to node" << this->id() << "- param with ID" << id << "already exists"; return; } Node::Input i; i.type = type; i.default_value = NodeValue::split_normal_value_into_track_values(type, default_value); i.flags = flags; i.array_size = 0; input_ids_.insert(index, id); input_data_.insert(index, i); if (!standard_immediates_.value(id, nullptr)) { standard_immediates_.insert(id, CreateImmediate(id)); } emit InputAdded(id); } void Node::RemoveInput(const QString &id) { int index = input_ids_.indexOf(id); if (index == -1) { ReportInvalidInput("remove", id); return; } input_ids_.removeAt(index); input_data_.removeAt(index); emit InputRemoved(id); } void Node::ReportInvalidInput(const char *attempted_action, const QString& id) const { qWarning() << "Failed to" << attempted_action << "parameter" << id << "in node" << this->id() << "- input doesn't exist"; } NodeInputImmediate *Node::CreateImmediate(const QString &input) { const Input* i = GetInternalInputData(input); if (i) { return new NodeInputImmediate(i->type, i->default_value); } else { ReportInvalidInput("create immediate", input); return nullptr; } } void Node::ArrayResizeInternal(const QString &id, int size) { Input* imm = GetInternalInputData(id); if (!imm) { ReportInvalidInput("set array size", id); return; } if (imm->array_size != size) { // Update array size if (imm->array_size < size) { // Size is larger, create any immediates that don't exist QVector& subinputs = array_immediates_[id]; for (int i=subinputs.size(); iarray_size; imm->array_size = size; emit InputArraySizeChanged(id, old_sz, size); ParameterValueChanged(id, -1, TimeRange(RATIONAL_MIN, RATIONAL_MAX)); } } int Node::GetInternalInputArraySize(const QString &input) { return array_immediates_.value(input).size(); } void Node::SetInputName(const QString &id, const QString &name) { Input* i = GetInternalInputData(id); if (i) { i->human_name = name; emit InputNameChanged(id, name); } else { ReportInvalidInput("set name of", id); } } void Node::IgnoreInvalidationsFrom(const QString& input_id) { ignore_connections_.append(input_id); } const QString &Node::GetLabel() const { return label_; } void Node::SetLabel(const QString &s) { if (label_ != s) { label_ = s; emit LabelChanged(label_); } } QString Node::GetLabelAndName() const { if (GetLabel().isEmpty()) { return Name(); } else { return tr("%1 (%2)").arg(GetLabel(), Name()); } } QString Node::GetLabelOrName() const { if (GetLabel().isEmpty()) { return Name(); } return GetLabel(); } void Node::CopyInputs(const Node *source, Node *destination, bool include_connections, MultiUndoCommand *command) { Q_ASSERT(source->id() == destination->id()); foreach (const QString& input, source->inputs()) { // NOTE: This assert is to ensure that inputs in the source also exist in the destination, which // they should. If they don't and you hit this assert, check if you're handling group // passthroughs correctly. Q_ASSERT(destination->HasInputWithID(input)); CopyInput(source, destination, input, include_connections, true, command); } if (command) { command->add_child(new NodeRenameCommand(destination, source->GetLabel())); } else { destination->SetLabel(source->GetLabel()); } if (command) { command->add_child(new NodeOverrideColorCommand(destination, source->GetOverrideColor())); } else { destination->SetOverrideColor(source->GetOverrideColor()); } } void Node::CopyInput(const Node *src, Node *dst, const QString &input, bool include_connections, bool traverse_arrays, MultiUndoCommand *command) { Q_ASSERT(src->id() == dst->id()); CopyValuesOfElement(src, dst, input, -1, command); // Copy array size if (src->InputIsArray(input) && traverse_arrays) { int src_array_sz = src->InputArraySize(input); for (int i=0; iinput_connections().cbegin(); it!=src->input_connections().cend(); it++) { if (!traverse_arrays && it->first.element() != -1) { continue; } auto conn_output = it->second; NodeInput conn_input(dst, input, it->first.element()); if (command) { command->add_child(new NodeEdgeAddCommand(conn_output, conn_input)); } else { ConnectEdge(conn_output, conn_input); } } } } void Node::CopyValuesOfElement(const Node *src, Node *dst, const QString &input, int src_element, int dst_element, MultiUndoCommand *command) { if (dst_element >= dst->GetInternalInputArraySize(input)) { qDebug() << "Ignored destination element that was out of array bounds"; return; } NodeInput dst_input(dst, input, dst_element); // Copy standard value SplitValue standard = src->GetSplitStandardValue(input, src_element); if (command) { command->add_child(new NodeParamSetSplitStandardValueCommand(dst_input, standard)); } else { dst->SetSplitStandardValue(input, standard, dst_element); } // Copy keyframes if (NodeInputImmediate *immediate = dst->GetImmediate(input, dst_element)) { if (command) { command->add_child(new ImmediateRemoveAllKeyframesCommand(immediate)); } else { immediate->delete_all_keyframes(); } } foreach (const NodeKeyframeTrack& track, src->GetImmediate(input, src_element)->keyframe_tracks()) { foreach (NodeKeyframe* key, track) { NodeKeyframe *copy = key->copy(dst_element, command ? nullptr : dst); if (command) { command->add_child(new NodeParamInsertKeyframeCommand(dst, copy)); } } } // Copy keyframing state if (src->IsInputKeyframable(input)) { bool is_keying = src->IsInputKeyframing(input, src_element); if (command) { command->add_child(new NodeParamSetKeyframingCommand(dst_input, is_keying)); } else { dst->SetInputIsKeyframing(input, is_keying, dst_element); } } // If this is the root of an array, copy the array size if (src_element == -1 && dst_element == -1) { int array_sz = src->InputArraySize(input); if (command) { command->add_child(new Node::ArrayResizeCommand(dst, input, array_sz)); } else { dst->ArrayResizeInternal(input, array_sz); } } // Copy value hint Node::ValueHint vh = src->GetValueHintForInput(input, src_element); if (command) { command->add_child(new NodeSetValueHintCommand(dst_input, vh)); } else { dst->SetValueHintForInput(input, vh, dst_element); } } bool Node::CanBeDeleted() const { return can_be_deleted_; } void Node::SetCanBeDeleted(bool s) { can_be_deleted_ = s; } void GetDependenciesRecursively(QVector& list, const Node* node, bool traverse, bool exclusive_only) { for (auto it=node->input_connections().cbegin(); it!=node->input_connections().cend(); it++) { Node* connected_node = it->second; if (!exclusive_only || !connected_node->IsItem()) { if (!list.contains(connected_node)) { list.append(connected_node); if (traverse) { GetDependenciesRecursively(list, connected_node, traverse, exclusive_only); } } } } } /** * @brief Recursively collects dependencies of Node `n` and appends them to QList `list` * * @param traverse * * TRUE to recursively traverse each node for a complete dependency graph. FALSE to return only the immediate * dependencies. */ QVector Node::GetDependenciesInternal(bool traverse, bool exclusive_only) const { QVector list; GetDependenciesRecursively(list, this, traverse, exclusive_only); return list; } QVector Node::GetDependencies() const { return GetDependenciesInternal(true, false); } QVector Node::GetExclusiveDependencies() const { return GetDependenciesInternal(true, true); } QVector Node::GetImmediateDependencies() const { return GetDependenciesInternal(false, false); } ShaderCode Node::GetShaderCode(const ShaderRequest &request) const { return ShaderCode(QString(), QString()); } void Node::ProcessSamples(const NodeValueRow &, const SampleBuffer &, SampleBuffer &, int) const { } void Node::GenerateFrame(FramePtr frame, const GenerateJob &job) const { Q_UNUSED(frame) Q_UNUSED(job) } bool Node::OutputsTo(Node *n, bool recursively, const OutputConnections &ignore_edges, const OutputConnection &added_edge) const { for (const OutputConnection& conn : output_connections_) { if (std::find(ignore_edges.cbegin(), ignore_edges.cend(), conn) != ignore_edges.cend()) { // If this edge is in the "ignore edges" list, skip it continue; } Node* connected = conn.second.node(); if (connected == n) { return true; } else if (recursively && connected->OutputsTo(n, recursively, ignore_edges, added_edge)) { return true; } else if (added_edge.first == this) { Node *proposed_connected = added_edge.second.node(); if (proposed_connected == n) { return true; } else if (recursively && proposed_connected->OutputsTo(n, recursively, ignore_edges, added_edge)) { return true; } } } return false; } bool Node::OutputsTo(const QString &id, bool recursively) const { for (const OutputConnection& conn : output_connections_) { Node* connected = conn.second.node(); if (connected->id() == id) { return true; } else if (recursively && connected->OutputsTo(id, recursively)) { return true; } } return false; } bool Node::OutputsTo(const NodeInput &input, bool recursively) const { for (const OutputConnection& conn : output_connections_) { const NodeInput& connected = conn.second; if (connected == input) { return true; } else if (recursively && connected.node()->OutputsTo(input, recursively)) { return true; } } return false; } bool Node::InputsFrom(Node *n, bool recursively) const { for (auto it=input_connections_.cbegin(); it!=input_connections_.cend(); it++) { Node *connected = it->second; if (connected == n) { return true; } else if (recursively && connected->InputsFrom(n, recursively)) { return true; } } return false; } bool Node::InputsFrom(const QString &id, bool recursively) const { for (auto it=input_connections_.cbegin(); it!=input_connections_.cend(); it++) { Node *connected = it->second; if (connected->id() == id) { return true; } else if (recursively && connected->InputsFrom(id, recursively)) { return true; } } return false; } int Node::GetNumberOfRoutesTo(Node *n) const { bool outputs_directly = false; int routes = 0; foreach (const OutputConnection& conn, output_connections_) { Node* connected_node = conn.second.node(); if (connected_node == n) { outputs_directly = true; } else { routes += connected_node->GetNumberOfRoutesTo(n); } } if (outputs_directly) { routes++; } return routes; } void Node::DisconnectAll() { // Disconnect inputs (copy map since internal map will change as we disconnect) InputConnections copy = input_connections_; for (auto it=copy.cbegin(); it!=copy.cend(); it++) { DisconnectEdge(it->second, it->first); } while (!output_connections_.empty()) { OutputConnection conn = output_connections_.back(); DisconnectEdge(conn.first, conn.second); } } QString Node::GetCategoryName(const CategoryID &c) { switch (c) { case kCategoryOutput: return tr("Output"); case kCategoryDistort: return tr("Distort"); case kCategoryMath: return tr("Math"); case kCategoryKeying: return tr("Keying"); case kCategoryColor: return tr("Color"); case kCategoryFilter: return tr("Filter"); case kCategoryTimeline: return tr("Timeline"); case kCategoryGenerator: return tr("Generator"); case kCategoryTransition: return tr("Transition"); case kCategoryProject: return tr("Project"); case kCategoryTime: return tr("Time"); case kCategoryUnknown: case kCategoryCount: break; } return tr("Uncategorized"); } QVector Node::TransformTimeTo(const TimeRange &time, Node *target, bool input_dir) { QVector paths_found; if (input_dir) { // If this input is connected, traverse it to see if we stumble across the specified `node` for (auto it=input_connections_.cbegin(); it!=input_connections_.cend(); it++) { TimeRange input_adjustment = InputTimeAdjustment(it->first.input(), it->first.element(), time); Node* connected = it->second; if (connected == target) { // We found the target, no need to keep traversing if (!paths_found.contains(input_adjustment)) { paths_found.append(input_adjustment); } } else { // We did NOT find the target, traverse this paths_found.append(connected->TransformTimeTo(input_adjustment, target, input_dir)); } } } else { // If this input is connected, traverse it to see if we stumble across the specified `node` foreach (const OutputConnection& conn, output_connections_) { Node* connected_node = conn.second.node(); TimeRange output_adjustment = connected_node->OutputTimeAdjustment(conn.second.input(), conn.second.element(), time); if (connected_node == target) { paths_found.append(output_adjustment); } else { paths_found.append(connected_node->TransformTimeTo(output_adjustment, target, input_dir)); } } } return paths_found; } QVariant Node::PtrToValue(void *ptr) { return reinterpret_cast(ptr); } void Node::ParameterValueChanged(const QString& input, int element, const TimeRange& range) { InputValueChangedEvent(input, element); emit ValueChanged(NodeInput(this, input, element), range); if (ignore_connections_.contains(input)) { return; } InvalidateCache(range, input, element); } TimeRange Node::GetRangeAffectedByKeyframe(NodeKeyframe *key) const { const NodeKeyframeTrack& key_track = GetTrackFromKeyframe(key); int keyframe_index = key_track.indexOf(key); TimeRange range = GetRangeAroundIndex(key->input(), keyframe_index, key->track(), key->element()); // If a previous key exists and it's a hold, we don't need to invalidate those frames if (key_track.size() > 1 && keyframe_index > 0 && key_track.at(keyframe_index - 1)->type() == NodeKeyframe::kHold) { range.set_in(key->time()); } return range; } TimeRange Node::GetRangeAroundIndex(const QString &input, int index, int track, int element) const { rational range_begin = RATIONAL_MIN; rational range_end = RATIONAL_MAX; const NodeKeyframeTrack& key_track = GetImmediate(input, element)->keyframe_tracks().at(track); if (key_track.size() > 1) { if (index > 0) { // If this is not the first key, we'll need to limit it to the key just before range_begin = key_track.at(index - 1)->time(); } if (index < key_track.size() - 1) { // If this is not the last key, we'll need to limit it to the key just after range_end = key_track.at(index + 1)->time(); } } return TimeRange(range_begin, range_end); } void Node::ClearElement(const QString& input, int index) { GetImmediate(input, index)->delete_all_keyframes(); if (IsInputKeyframable(input)) { SetInputIsKeyframing(input, false, index); } SetSplitStandardValue(input, GetSplitDefaultValue(input), index); } void Node::InputValueChangedEvent(const QString &input, int element) { Q_UNUSED(input) Q_UNUSED(element) } void Node::InputConnectedEvent(const QString &input, int element, Node *output) { Q_UNUSED(input) Q_UNUSED(element) Q_UNUSED(output) } void Node::InputDisconnectedEvent(const QString &input, int element, Node *output) { Q_UNUSED(input) Q_UNUSED(element) Q_UNUSED(output) } void Node::OutputConnectedEvent(const NodeInput &input) { Q_UNUSED(input) } void Node::OutputDisconnectedEvent(const NodeInput &input) { Q_UNUSED(input) } void Node::childEvent(QChildEvent *event) { super::childEvent(event); if (NodeKeyframe* key = dynamic_cast(event->child())) { NodeInput i(this, key->input(), key->element()); if (event->type() == QEvent::ChildAdded) { GetImmediate(key->input(), key->element())->insert_keyframe(key); connect(key, &NodeKeyframe::TimeChanged, this, &Node::InvalidateFromKeyframeTimeChange); connect(key, &NodeKeyframe::ValueChanged, this, &Node::InvalidateFromKeyframeValueChange); connect(key, &NodeKeyframe::TypeChanged, this, &Node::InvalidateFromKeyframeTypeChanged); connect(key, &NodeKeyframe::BezierControlInChanged, this, &Node::InvalidateFromKeyframeBezierInChange); connect(key, &NodeKeyframe::BezierControlOutChanged, this, &Node::InvalidateFromKeyframeBezierOutChange); emit KeyframeAdded(key); ParameterValueChanged(i, GetRangeAffectedByKeyframe(key)); } else if (event->type() == QEvent::ChildRemoved) { TimeRange time_affected = GetRangeAffectedByKeyframe(key); disconnect(key, &NodeKeyframe::TimeChanged, this, &Node::InvalidateFromKeyframeTimeChange); disconnect(key, &NodeKeyframe::ValueChanged, this, &Node::InvalidateFromKeyframeValueChange); disconnect(key, &NodeKeyframe::TypeChanged, this, &Node::InvalidateFromKeyframeTypeChanged); disconnect(key, &NodeKeyframe::BezierControlInChanged, this, &Node::InvalidateFromKeyframeBezierInChange); disconnect(key, &NodeKeyframe::BezierControlOutChanged, this, &Node::InvalidateFromKeyframeBezierOutChange); emit KeyframeRemoved(key); GetImmediate(key->input(), key->element())->remove_keyframe(key); ParameterValueChanged(i, time_affected); } } else if (NodeGizmo *gizmo = dynamic_cast(event->child())) { if (event->type() == QEvent::ChildAdded) { gizmos_.append(gizmo); } else if (event->type() == QEvent::ChildRemoved) { gizmos_.removeOne(gizmo); } } } void Node::InvalidateFromKeyframeBezierInChange() { NodeKeyframe* key = static_cast(sender()); const NodeKeyframeTrack& track = GetTrackFromKeyframe(key); int keyframe_index = track.indexOf(key); rational start = RATIONAL_MIN; rational end = key->time(); if (keyframe_index > 0) { start = track.at(keyframe_index - 1)->time(); } ParameterValueChanged(key->key_track_ref().input(), TimeRange(start, end)); } void Node::InvalidateFromKeyframeBezierOutChange() { NodeKeyframe* key = static_cast(sender()); const NodeKeyframeTrack& track = GetTrackFromKeyframe(key); int keyframe_index = track.indexOf(key); rational start = key->time(); rational end = RATIONAL_MAX; if (keyframe_index < track.size() - 1) { end = track.at(keyframe_index + 1)->time(); } ParameterValueChanged(key->key_track_ref().input(), TimeRange(start, end)); } void Node::InvalidateFromKeyframeTimeChange() { NodeKeyframe* key = static_cast(sender()); NodeInputImmediate* immediate = GetImmediate(key->input(), key->element()); TimeRange original_range = GetRangeAffectedByKeyframe(key); TimeRangeList invalidate_range; invalidate_range.insert(original_range); if (!(original_range.in() < key->time() && original_range.out() > key->time())) { // This keyframe needs resorting, store it and remove it from the list immediate->remove_keyframe(key); // Automatically insertion sort immediate->insert_keyframe(key); // Invalidate new area that the keyframe has been moved to invalidate_range.insert(GetRangeAffectedByKeyframe(key)); } // Invalidate entire area surrounding the keyframe (either where it currently is, or where it used to be before it // was resorted in the if block above) foreach (const TimeRange& r, invalidate_range) { ParameterValueChanged(key->key_track_ref().input(), r); } emit KeyframeTimeChanged(key); } void Node::InvalidateFromKeyframeValueChange() { NodeKeyframe* key = static_cast(sender()); ParameterValueChanged(key->key_track_ref().input(), GetRangeAffectedByKeyframe(key)); emit KeyframeValueChanged(key); } void Node::InvalidateFromKeyframeTypeChanged() { NodeKeyframe* key = static_cast(sender()); const NodeKeyframeTrack& track = GetTrackFromKeyframe(key); if (track.size() == 1) { // If there are no other frames, the interpolation won't do anything return; } // Invalidate entire range ParameterValueChanged(key->key_track_ref().input(), GetRangeAroundIndex(key->input(), track.indexOf(key), key->track(), key->element())); emit KeyframeTypeChanged(key); } void Node::SetValueAtTime(const NodeInput &input, const rational &time, const QVariant &value, int track, MultiUndoCommand *command, bool insert_on_all_tracks_if_no_key) { if (input.IsKeyframing()) { rational node_time = time; NodeKeyframe* existing_key = input.GetKeyframeAtTimeOnTrack(node_time, track); if (existing_key) { command->add_child(new NodeParamSetKeyframeValueCommand(existing_key, value)); } else { // No existing key, create a new one int nb_tracks = NodeValue::get_number_of_keyframe_tracks(input.node()->GetInputDataType(input.input())); for (int i=0; iGetSplitValueAtTimeOnTrack(input.input(), node_time, i, input.element()); } NodeKeyframe* new_key = new NodeKeyframe(node_time, track_value, input.node()->GetBestKeyframeTypeForTimeOnTrack(NodeKeyframeTrackReference(input, i), node_time), i, input.element(), input.input()); command->add_child(new NodeParamInsertKeyframeCommand(input.node(), new_key)); } } } else { command->add_child(new NodeParamSetStandardValueCommand(NodeKeyframeTrackReference(input, track), value)); } } void FindPathInternal(std::list &vec, Node *to, int &path_index) { Node *from = vec.back(); for (auto it=from->input_connections().cbegin(); it!=from->input_connections().cend(); it++) { vec.push_back(it->second); if (it->second == to) { // Found a path, determine if it's the one we want if (path_index == 0) { // It is! break; } else { path_index--; } } // Recurse to see if we can find it here FindPathInternal(vec, to, path_index); if (vec.back() == to) { // Found through recursion break; } else { // Must not be available through this path vec.pop_back(); } } } std::list Node::FindPath(Node *from, Node *to, int path_index) { std::list v; v.push_back(from); FindPathInternal(v, to, path_index); if (v.size() == 1) { // Failed to find path, return empty list v.pop_back(); } return v; } Project *Node::ArrayInsertCommand::GetRelevantProject() const { return node_->project(); } Project *Node::ArrayRemoveCommand::GetRelevantProject() const { return node_->project(); } Project *Node::ArrayResizeCommand::GetRelevantProject() const { return node_->project(); } void NodeSetPositionCommand::redo() { added_ = !context_->ContextContainsNode(node_); if (!added_) { old_pos_ = context_->GetNodePositionDataInContext(node_); } context_->SetNodePositionInContext(node_, pos_); } void NodeSetPositionCommand::undo() { if (added_) { context_->RemoveNodeFromContext(node_); } else { context_->SetNodePositionInContext(node_, old_pos_); } } void NodeRemovePositionFromContextCommand::redo() { contained_ = context_->ContextContainsNode(node_); if (contained_) { old_pos_ = context_->GetNodePositionDataInContext(node_); context_->RemoveNodeFromContext(node_); } } void NodeRemovePositionFromContextCommand::undo() { if (contained_) { context_->SetNodePositionInContext(node_, old_pos_); } } void NodeRemovePositionFromAllContextsCommand::redo() { NodeGraph *graph = node_->parent(); foreach (Node* context, graph->nodes()) { if (context->ContextContainsNode(node_)) { contexts_.insert({context, context->GetNodePositionInContext(node_)}); context->RemoveNodeFromContext(node_); } } } void NodeRemovePositionFromAllContextsCommand::undo() { for (auto it = contexts_.crbegin(); it != contexts_.crend(); it++) { it->first->SetNodePositionInContext(node_, it->second); } contexts_.clear(); } void NodeSetPositionAndDependenciesRecursivelyCommand::prepare() { move_recursively(node_, pos_.position - context_->GetNodePositionDataInContext(node_).position); } void NodeSetPositionAndDependenciesRecursivelyCommand::redo() { for (auto it=commands_.cbegin(); it!=commands_.cend(); it++) { (*it)->redo_now(); } } void NodeSetPositionAndDependenciesRecursivelyCommand::undo() { for (auto it=commands_.crbegin(); it!=commands_.crend(); it++) { (*it)->undo_now(); } } void NodeSetPositionAndDependenciesRecursivelyCommand::move_recursively(Node *node, const QPointF &diff) { Node::Position pos = context_->GetNodePositionDataInContext(node); pos += diff; commands_.append(new NodeSetPositionCommand(node_, context_, pos)); for (auto it=node->input_connections().cbegin(); it!=node->input_connections().cend(); it++) { Node *output = it->second; if (context_->ContextContainsNode(output)) { move_recursively(output, diff); } } } void Node::ImmediateRemoveAllKeyframesCommand::prepare() { for (const NodeKeyframeTrack& track : immediate_->keyframe_tracks()) { keys_.append(track); } } void Node::ImmediateRemoveAllKeyframesCommand::redo() { for (auto it=keys_.cbegin(); it!=keys_.cend(); it++) { (*it)->setParent(&memory_manager_); } } void Node::ImmediateRemoveAllKeyframesCommand::undo() { for (auto it=keys_.crbegin(); it!=keys_.crend(); it++) { (*it)->setParent(&memory_manager_); } } }