/***
Olive - Non-Linear Video Editor
Copyright (C) 2022 Olive Team
Modifications Copyright (C) 2025 mikesolar
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 "curveview.h"
#include
#include
#include
#include
#include
#include
#include "oakutil/decibel.h"
#include "common/oakvaluehelper.h"
#include "oakutil/qtutils.h"
#include "oakengine/node.h"
#include "widget/keyframeview/keyframehandle.h"
namespace olive
{
#define super KeyframeView
namespace
{
// Map a keyframe track's scalar QVariant into the facade POD for the
// input's declared type (the curve view drags numeric tracks). `c_type`
// is the oak_node_value_type of the input (oakengine_node_input_get_type()).
void track_value_to_c(int c_type, const QVariant &value,
oak_node_value *out)
{
memset(out, 0, sizeof(*out));
switch (c_type) {
case OAK_NODE_VALUE_INT:
out->type = OAK_NODE_VALUE_INT;
out->num = value.toLongLong();
break;
case OAK_NODE_VALUE_COMBO:
out->type = OAK_NODE_VALUE_COMBO;
out->num = value.toLongLong();
break;
case OAK_NODE_VALUE_BOOL:
out->type = OAK_NODE_VALUE_BOOL;
out->num = value.toBool() ? 1 : 0;
break;
case OAK_NODE_VALUE_RATIONAL: {
const Rational r = value.value();
out->type = OAK_NODE_VALUE_RATIONAL;
out->num = r.numerator();
out->den = r.denominator();
break;
}
case OAK_NODE_VALUE_COLOR:
out->type = OAK_NODE_VALUE_COLOR;
out->f[0] = value.toDouble();
break;
case OAK_NODE_VALUE_VEC2:
out->type = OAK_NODE_VALUE_VEC2;
out->f[0] = value.toDouble();
break;
case OAK_NODE_VALUE_VEC3:
out->type = OAK_NODE_VALUE_VEC3;
out->f[0] = value.toDouble();
break;
case OAK_NODE_VALUE_VEC4:
out->type = OAK_NODE_VALUE_VEC4;
out->f[0] = value.toDouble();
break;
default:
out->type = OAK_NODE_VALUE_FLOAT;
out->f[0] = value.toDouble();
break;
}
}
// The oak_node_value_type of the input that owns `key`.
int key_input_c_type(OakEngineKeyframe *key)
{
const QByteArray input = key_input_id(key).toUtf8();
return oakengine_node_input_get_type(oakengine_keyframe_get_node(key),
input.constData());
}
} // namespace
CurveView::CurveView(QWidget *parent)
: KeyframeView(parent)
, dragging_bezier_pt_(nullptr)
{
setAlignment(Qt::AlignLeft | Qt::AlignVCenter);
set_y_axis_enabled(true);
set_auto_select_siblings(false);
text_padding_ =
QtUtils::q_font_metrics_width(fontMetrics(), QStringLiteral("i"));
minimum_grid_space_ =
QtUtils::q_font_metrics_width(fontMetrics(), QStringLiteral("00000"));
}
void CurveView::connect_input(const oak::KeyframeTrackRef &ref)
{
if (connected_inputs_.contains(ref)) {
// Input wasn't connected, do nothing
return;
}
// Add keyframes from track
KeyframeViewInputConnection *track_con = add_keyframes_of_track(ref);
track_con->set_brush(keyframe_colors_.value(ref));
track_connections_.insert(ref, track_con);
// Signal to CurveWidget to update its bezier/linear/hold buttons if a key type changes
connect(track_con, &KeyframeViewInputConnection::type_changed, this,
&CurveView::selection_changed);
// Append to the list
connected_inputs_.append(ref);
}
void CurveView::disconnect_input(const oak::KeyframeTrackRef &ref)
{
if (!connected_inputs_.contains(ref)) {
// Input wasn't connected, do nothing
return;
}
// Remove keyframes belonging to this element and track
remove_keyframes_of_track(track_connections_.take(ref));
// Remove from the list
connected_inputs_.removeOne(ref);
}
void CurveView::select_keyframes_of_input(const oak::KeyframeTrackRef &ref)
{
deselect_all();
if (KeyframeViewInputConnection *con = track_connections_.value(ref)) {
foreach (const oak::Keyframe &key, con->get_keyframes()) {
select_keyframe(key);
}
}
}
void CurveView::set_keyframe_track_color(const oak::KeyframeTrackRef &ref,
const QColor &color)
{
// Insert color into hashmap
keyframe_colors_.insert(ref, color);
if (KeyframeViewInputConnection *con = track_connections_.value(ref)) {
// Update all keyframes
con->set_brush(color);
}
}
void CurveView::drawBackground(QPainter *painter, const QRectF &rect)
{
if (timebase().isNull()) {
return;
}
painter->setRenderHint(QPainter::Antialiasing);
QVector lines;
double x_interval = timebase().flipped().to_double();
double y_interval = 100.0;
int x_grid_interval, y_grid_interval;
painter->setPen(QPen(palette().window().color(), 1));
do {
x_grid_interval = qRound(x_interval * get_scale() * timebase_dbl());
x_interval *= 2.0;
} while (x_grid_interval < minimum_grid_space_);
do {
y_grid_interval = qRound(y_interval * get_y_scale());
y_interval *= 2.0;
} while (y_grid_interval < minimum_grid_space_);
int x_start = qCeil(rect.left() / x_grid_interval) * x_grid_interval;
int y_start = qCeil(rect.top() / y_grid_interval) * y_grid_interval;
QPointF scene_bottom_left = mapToScene(QPoint(0, qRound(rect.height())));
QPointF scene_top_right = mapToScene(QPoint(qRound(rect.width()), 0));
// Add vertical lines
for (int i = x_start; i < rect.right(); i += x_grid_interval) {
int value =
qRound(static_cast(i) / get_scale() / timebase_dbl());
painter->drawText(i + text_padding_,
qRound(scene_bottom_left.y()) - text_padding_,
QString::number(value));
lines.append(QLine(i, qRound(rect.top()), i, qRound(rect.bottom())));
}
// Add horizontal lines
for (int i = y_start; i < rect.bottom(); i += y_grid_interval) {
int value = qRound(static_cast(i) / get_y_scale());
painter->drawText(qRound(scene_bottom_left.x()) + text_padding_,
i - text_padding_, QString::number(-value));
lines.append(QLine(qRound(rect.left()), i, qRound(rect.right()), i));
}
// Draw grid
painter->drawLines(lines);
// Draw keyframe lines
foreach (const oak::KeyframeTrackRef &ref, connected_inputs_) {
if (ref.input().is_keyframing()) {
const QVector track = ref.keyframes();
if (!track.isEmpty()) {
painter->setPen(QPen(keyframe_colors_.value(ref),
qMax(1, fontMetrics().height() / 4)));
// Create a path
QPainterPath path;
// Draw straight line leading to first keyframe
QPointF first_key_pos = get_keyframe_position(track.first());
path.moveTo(QPointF(scene_bottom_left.x(), first_key_pos.y()));
path.lineTo(first_key_pos);
// Draw lines between each keyframe
for (int i = 1; i < track.size(); i++) {
const oak::Keyframe &before = track.at(i - 1);
const oak::Keyframe &after = track.at(i);
QPointF before_pos = get_keyframe_position(before);
QPointF after_pos = get_keyframe_position(after);
if (before.type() == KeyframeTypes::k_facade_hold) {
// Draw a hold keyframe (basically a right angle)
path.lineTo(after_pos.x(), before_pos.y());
path.lineTo(after_pos.x(), after_pos.y());
} else if (before.type() == KeyframeTypes::k_facade_bezier &&
after.type() == KeyframeTypes::k_facade_bezier) {
// Draw a cubic bezier
// Cubic beziers have two control points, so we can just use both
QPointF before_control_point =
before_pos +
ScalePoint(before.valid_bezier_point(1));
QPointF after_control_point =
after_pos +
ScalePoint(after.valid_bezier_point(0));
path.cubicTo(before_control_point, after_control_point,
after_pos);
} else if (before.type() == KeyframeTypes::k_facade_bezier ||
after.type() == KeyframeTypes::k_facade_bezier) {
// Draw a quadratic bezier
// Quadratic beziers have a single control point, we just have to determine which it is
QPointF key_anchor;
QPointF control_point;
if (before.type() == KeyframeTypes::k_facade_bezier) {
key_anchor = before_pos;
control_point = before.valid_bezier_point(1);
} else {
key_anchor = after_pos;
control_point = after.valid_bezier_point(0);
}
// Scale control point
control_point = key_anchor + ScalePoint(control_point);
// Create the path from both keyframes
path.quadTo(control_point, after_pos);
} else {
// Linear to linear
path.lineTo(after_pos);
}
}
// Draw straight line leading from end keyframe
QPointF last_key_pos = get_keyframe_position(track.last());
path.lineTo(QPointF(scene_top_right.x(), last_key_pos.y()));
painter->drawPath(path);
}
}
}
}
void CurveView::drawForeground(QPainter *painter, const QRectF &rect)
{
bezier_pts_.clear();
super::drawForeground(painter, rect);
}
void CurveView::ContextMenuEvent(Menu &m)
{
// View settings
QAction *zoom_fit_action = m.addAction(tr("Zoom to Fit"));
connect(zoom_fit_action, &QAction::triggered, this, &CurveView::zoom_to_fit);
QAction *zoom_fit_selected_action = m.addAction(tr("Zoom to Fit Selected"));
connect(zoom_fit_selected_action, &QAction::triggered, this,
&CurveView::zoom_to_fit_selected);
QAction *reset_zoom_action = m.addAction(tr("Reset Zoom"));
connect(reset_zoom_action, &QAction::triggered, this, &CurveView::reset_zoom);
}
void CurveView::SceneRectUpdateEvent(QRectF &r)
{
double min_val = 0, max_val = 0;
bool got_val = false;
foreach (KeyframeViewInputConnection *con, track_connections_) {
foreach (const oak::Keyframe &key, con->get_keyframes()) {
qreal key_y = get_item_y_from_keyframe_value(key);
if (got_val) {
min_val = qMin(key_y, min_val);
max_val = qMax(key_y, max_val);
} else {
min_val = key_y;
max_val = key_y;
got_val = true;
}
}
}
if (got_val) {
r.setTop(min_val - this->height());
r.setBottom(max_val + this->height());
}
}
qreal CurveView::get_keyframe_scene_y(KeyframeViewInputConnection *track,
const oak::Keyframe &key)
{
return get_item_y_from_keyframe_value(key);
}
void CurveView::draw_keyframe(QPainter *painter, const oak::Keyframe &key,
KeyframeViewInputConnection *track,
const QRectF &key_rect)
{
if (is_keyframe_selected(key) &&
key.type() == KeyframeTypes::k_facade_bezier) {
// Draw bezier control points if keyframe is selected
int control_point_size = QtUtils::q_font_metrics_width(fontMetrics(), "o");
int half_sz = control_point_size / 2;
QRectF control_point_rect(-half_sz, -half_sz, control_point_size,
control_point_size);
painter->setPen(palette().text().color());
painter->setBrush(Qt::NoBrush);
QRectF cp_in = control_point_rect.translated(
key_rect.center() + ScalePoint(key.bezier_point(0)));
QRectF cp_out = control_point_rect.translated(
key_rect.center() + ScalePoint(key.bezier_point(1)));
painter->drawLine(key_rect.center(), cp_in.center());
painter->drawLine(key_rect.center(), cp_out.center());
painter->drawEllipse(cp_in);
painter->drawEllipse(cp_out);
bezier_pts_.append({ cp_in, key.handle(), KeyframeTypes::k_in_handle });
bezier_pts_.append({ cp_out, key.handle(), KeyframeTypes::k_out_handle });
}
super::draw_keyframe(painter, key, track, key_rect);
}
bool CurveView::first_chance_mouse_press(QMouseEvent *event)
{
dragging_bezier_pt_ = nullptr;
QPointF scene_pt = mapToScene(event->pos());
foreach (const BezierPoint &b, bezier_pts_) {
if (b.rect.contains(scene_pt)) {
dragging_bezier_pt_ = &b;
break;
}
}
if (dragging_bezier_pt_) {
OakEngineKeyframe *key = dragging_bezier_pt_->keyframe;
dragging_bezier_point_start_ =
(dragging_bezier_pt_->type == KeyframeTypes::k_in_handle) ?
key_bezier_point(key, 0) :
key_bezier_point(key, 1);
dragging_bezier_point_opposing_start_ =
(dragging_bezier_pt_->type == KeyframeTypes::k_in_handle) ?
key_bezier_point(key, 1) :
key_bezier_point(key, 0);
drag_start_ = mapToScene(event->pos());
return true;
} else {
return false;
}
}
void CurveView::first_chance_mouse_move(QMouseEvent *event)
{
// Calculate cursor difference and scale it
QPointF scene_pos = mapToScene(event->pos());
QPointF mouse_diff_scaled = get_scaled_cursor_pos(scene_pos - drag_start_);
if (event->modifiers() & Qt::ShiftModifier) {
// If holding shift, only move one axis
mouse_diff_scaled.setY(0);
}
// Flip the mouse Y because bezier control points are drawn bottom to top, not top to bottom
mouse_diff_scaled.setY(-mouse_diff_scaled.y());
QPointF new_bezier_pos = generate_bezier_control_position(
dragging_bezier_pt_->type, dragging_bezier_point_start_,
mouse_diff_scaled);
// If the user is NOT holding control, we set the other handle to the exact negative of this handle
QPointF new_opposing_pos;
int opposing_type =
oakengine_keyframe_opposing_bezier_type(dragging_bezier_pt_->type);
if (!(event->modifiers() & Qt::ControlModifier)) {
new_opposing_pos = generate_bezier_control_position(
static_cast(opposing_type),
dragging_bezier_point_opposing_start_,
-mouse_diff_scaled);
} else {
new_opposing_pos = dragging_bezier_point_opposing_start_;
}
oakengine_keyframe_set_bezier_point_live(
dragging_bezier_pt_->keyframe,
dragging_bezier_pt_->type,
new_bezier_pos.x(), new_bezier_pos.y());
oakengine_keyframe_set_bezier_point_live(
dragging_bezier_pt_->keyframe,
opposing_type,
new_opposing_pos.x(), new_opposing_pos.y());
redraw();
}
void CurveView::first_chance_mouse_release(QMouseEvent *event)
{
// Through the liboakengine C ABI facade with the drag-start point(s)
// as the explicit old values (the drag already live-set the new
// ones); one undoable command per handle, same as the old
// KeyframeSetBezierControlPoint children.
OakEngineKeyframe *key = dragging_bezier_pt_->keyframe;
OakEngineNode *handle = oakengine_keyframe_get_node(key);
int tbn = 0, tbd = 0;
oakengine_node_frame_time_base(handle, &tbn, &tbd);
const int64_t ts = Timecode::time_to_timestamp(
key_time(key), Rational(tbn, tbd), Timecode::k_round);
const QPointF current =
key_bezier_point(key, dragging_bezier_pt_->type);
const QByteArray input = key_input_id(key).toUtf8();
oakengine_node_keyframe_set_bezier_point(
handle, input.constData(), key_element(key), ts,
key_track(key),
(dragging_bezier_pt_->type == KeyframeTypes::k_in_handle) ? 0 : 1,
current.x(), current.y(), dragging_bezier_point_start_.x(),
dragging_bezier_point_start_.y());
if (!(event->modifiers() & Qt::ControlModifier)) {
int opposing_type =
oakengine_keyframe_opposing_bezier_type(dragging_bezier_pt_->type);
const QPointF opposing_current = key_bezier_point(key, opposing_type);
oakengine_node_keyframe_set_bezier_point(
handle, input.constData(), key_element(key), ts,
key_track(key),
opposing_type,
opposing_current.x(), opposing_current.y(),
dragging_bezier_point_opposing_start_.x(),
dragging_bezier_point_opposing_start_.y());
}
dragging_bezier_pt_ = nullptr;
}
void CurveView::keyframe_drag_start(QMouseEvent *event)
{
drag_keyframe_values_.resize(get_selected_keyframes().size());
for (size_t i = 0; i < get_selected_keyframes().size(); i++) {
OakEngineKeyframe *key = get_selected_keyframes().at(i);
drag_keyframe_values_[i] = OakNodeValueToQVariant(key_value(key));
}
drag_start_ = mapToScene(event->pos());
}
void CurveView::keyframe_drag_move(QMouseEvent *event, QString &tip)
{
if (event->modifiers() & Qt::ShiftModifier) {
// Lock to X axis only and set original values on all keys
for (size_t i = 0; i < get_selected_keyframes().size(); i++) {
OakEngineKeyframe *key = get_selected_keyframes().at(i);
oak_node_value v;
track_value_to_c(key_input_c_type(key),
drag_keyframe_values_.at(i), &v);
key_set_value_live(key, v);
}
return;
}
// Calculate cursor difference
double scaled_diff =
(mapToScene(event->pos()).y() - drag_start_.y()) / get_y_scale();
// Validate movement - ensure no keyframe goes above its max point or below its min point
for (size_t i = 0; i < get_selected_keyframes().size(); i++) {
OakEngineKeyframe *key = get_selected_keyframes().at(i);
FloatSlider::DisplayType display = get_float_display_type_from_keyframe(oak::Keyframe(key));
OakEngineNode *node = oakengine_keyframe_get_node(key);
const QByteArray input = key_input_id(key).toUtf8();
double original_val = FloatSlider::transform_value_to_display(
drag_keyframe_values_.at(i).toDouble(), display);
double new_val = FloatSlider::transform_display_to_value(
original_val - scaled_diff, display);
double limited = new_val;
double prop = 0;
if (oakengine_node_input_get_property_number(
node, input.constData(), "min", -1, &prop) == OAKENGINE_OK) {
limited = qMax(limited, prop);
}
if (oakengine_node_input_get_property_number(
node, input.constData(), "max", -1, &prop) == OAKENGINE_OK) {
limited = qMin(limited, prop);
}
if (limited != new_val) {
scaled_diff = original_val - limited;
}
}
// Set values
for (size_t i = 0; i < get_selected_keyframes().size(); i++) {
OakEngineKeyframe *key = get_selected_keyframes().at(i);
FloatSlider::DisplayType display = get_float_display_type_from_keyframe(oak::Keyframe(key));
oak_node_value v;
track_value_to_c(
key_input_c_type(key),
FloatSlider::transform_display_to_value(
FloatSlider::transform_value_to_display(
drag_keyframe_values_.at(i).toDouble(), display) -
scaled_diff,
display),
&v);
key_set_value_live(key, v);
}
OakEngineKeyframe *tip_item = get_selected_keyframes().front();
bool ok;
double num_value = OakNodeValueToQVariant(key_value(tip_item)).toDouble(&ok);
if (ok) {
tip = QStringLiteral("%1\n");
tip.append(FloatSlider::value_to_string(
num_value + get_offset_from_keyframe(oak::Keyframe(tip_item)),
get_float_display_type_from_keyframe(oak::Keyframe(tip_item)), 2, true));
}
}
void CurveView::keyframe_drag_release(QMouseEvent *event,
void *command)
{
Q_UNUSED(command) // the facade pushes its own single command below
// Group the changed keys by owning input and push ONE undoable
// command per group through the liboakengine C ABI facade, with the
// drag-start values as the explicit undo values (the drag already
// live-set the new ones).
struct ValueGroup {
OakEngineNode *node;
QString input;
int element;
QVector times;
QVector tracks;
std::vector values;
std::vector olds;
};
QVector groups;
for (size_t i = 0; i < get_selected_keyframes().size(); i++) {
OakEngineKeyframe *k = get_selected_keyframes().at(i);
if (qFuzzyCompare(key_value_as_double(k),
drag_keyframe_values_.at(i).toDouble())) {
continue;
}
OakEngineNode *node = oakengine_keyframe_get_node(k);
const QString input = key_input_id(k);
const int element = key_element(k);
int g = 0;
for (; g < groups.size(); g++) {
if (groups.at(g).node == node &&
groups.at(g).input == input &&
groups.at(g).element == element) {
break;
}
}
if (g == groups.size()) {
groups.append(
{ node, input, element, {}, {}, {}, {} });
}
int tbn = 0, tbd = 0;
oakengine_node_frame_time_base(node, &tbn, &tbd);
groups[g].times.append(Timecode::time_to_timestamp(
key_time(k), Rational(tbn, tbd), Timecode::k_round));
groups[g].tracks.append(key_track(k));
oak_node_value old_v;
track_value_to_c(key_input_c_type(k), drag_keyframe_values_.at(i),
&old_v);
groups[g].values.push_back(key_value(k));
groups[g].olds.push_back(old_v);
}
foreach (const ValueGroup &g, groups) {
oakengine_node_keyframes_set_value_many(
g.node,
g.input.toUtf8().constData(), g.element, g.times.constData(),
g.tracks.data(), g.times.size(), g.values.data(),
g.olds.data());
}
}
QPointF
CurveView::generate_bezier_control_position(const KeyframeTypes::BezierType mode,
const QPointF &start_point,
const QPointF &scaled_cursor_diff)
{
QPointF new_bezier_pos = start_point;
new_bezier_pos += scaled_cursor_diff;
// LIMIT bezier handles from overlapping each other
if (mode == KeyframeTypes::k_in_handle) {
if (new_bezier_pos.x() > 0) {
new_bezier_pos.setX(0);
}
} else {
if (new_bezier_pos.x() < 0) {
new_bezier_pos.setX(0);
}
}
return new_bezier_pos;
}
QPointF CurveView::get_scaled_cursor_pos(const QPointF &cursor_pos)
{
return QPointF(cursor_pos.x() / get_scale(), cursor_pos.y() / get_y_scale());
}
void CurveView::zoom_to_fit_internal(bool selected_only)
{
bool got_val = false;
Rational min_time, max_time;
double min_val = 0, max_val = 0;
foreach (KeyframeViewInputConnection *con, track_connections_) {
foreach (const oak::Keyframe &key, con->get_keyframes()) {
if (!selected_only || is_keyframe_selected(key)) {
Rational transformed_time =
get_adjusted_time(key.node().handle(),
get_time_target(), key_time(key.handle()),
k_transform_towards_output);
qreal key_y = get_unscaled_item_y_from_keyframe_value(key);
if (got_val) {
min_time = qMin(transformed_time, min_time);
max_time = qMax(transformed_time, max_time);
min_val = qMin(key_y, min_val);
max_val = qMax(key_y, max_val);
} else {
min_time = transformed_time;
max_time = transformed_time;
min_val = key_y;
max_val = key_y;
got_val = true;
}
}
}
}
// Prevent scaling if no keyframes were found
if (got_val) {
QRectF desired(QPointF(min_time.to_double(), min_val),
QPointF(max_time.to_double(), max_val));
const double scale_divider = 0.5;
double scale_half_divider = scale_divider * 0.5;
double new_x_scale =
viewport()->width() / desired.width() * scale_divider;
double new_y_scale;
if (qFuzzyIsNull(desired.height())) {
// Catch divide by zero
new_y_scale = 1.0;
scale_half_divider = 0.5;
} else {
// Use height as normal
new_y_scale =
viewport()->height() / desired.height() * scale_divider;
}
emit scale_changed(new_x_scale);
set_y_scale(new_y_scale);
update_scene_rect();
int sb_x = desired.left() * new_x_scale -
viewport()->width() * scale_half_divider;
QMetaObject::invokeMethod(horizontalScrollBar(), "setValue",
Qt::QueuedConnection, Q_ARG(int, sb_x));
int sb_y = desired.top() * new_y_scale -
viewport()->height() * scale_half_divider;
QMetaObject::invokeMethod(verticalScrollBar(), "setValue",
Qt::QueuedConnection, Q_ARG(int, sb_y));
}
}
qreal CurveView::get_item_y_from_keyframe_value(const oak::Keyframe &key)
{
return get_unscaled_item_y_from_keyframe_value(key) * get_y_scale();
}
qreal CurveView::get_unscaled_item_y_from_keyframe_value(const oak::Keyframe &key)
{
double val = key_value_as_double(key.handle());
val = FloatSlider::transform_value_to_display(
val, get_float_display_type_from_keyframe(key));
val += get_offset_from_keyframe(key);
return -val;
}
QPointF CurveView::ScalePoint(const QPointF &point)
{
// Flips Y coordinate because curves are drawn bottom to top
return QPointF(point.x() * get_scale(), -point.y() * get_y_scale());
}
FloatSlider::DisplayType
CurveView::get_float_display_type_from_keyframe(const oak::Keyframe &key)
{
// Try to get view from input (which will be normal if unset)
const QByteArray input = key.input_id().toUtf8();
double view_type = 0;
if (oakengine_node_input_get_property_number(
key.node().handle(), input.constData(), "view", -1,
&view_type) == OAKENGINE_OK) {
return static_cast(int(view_type));
}
// Fallback to normal
return slider::k_normal;
}
double CurveView::get_offset_from_keyframe(const oak::Keyframe &key)
{
const QByteArray input = key.input_id().toUtf8();
double offset = 0;
if (oakengine_node_input_get_property_number(
key.node().handle(), input.constData(), "offset", -1,
&offset) == OAKENGINE_OK) {
return offset;
}
return 0;
}
QPointF CurveView::get_keyframe_position(const oak::Keyframe &key)
{
return QPointF(get_keyframe_scene_x(key), get_item_y_from_keyframe_value(key));
}
void CurveView::zoom_to_fit()
{
zoom_to_fit_internal(false);
}
void CurveView::zoom_to_fit_selected()
{
zoom_to_fit_internal(true);
}
void CurveView::reset_zoom()
{
emit scale_changed(1.0);
set_y_scale(1.0);
}
}