Fake tests rewritten to assert real behavior: - audio_smoke: conversion tests now actually Convert() samples and verify output; waveform length/summary assertions tightened to exact values - plugin_format_conversion: RowBytes/U8ToU16/LoadImageFile now call real production code (VideoParams::GetBytesPerPixel, sws scaler, OIIO decode of tests/img.png with known pixel values) - core_color: HSV round trip now verifies fromHsv(toHsv(c)) == c instead of comparing toHsv against its own accessors - core_bezier/node_inputimmediate: expected values replaced with independently derived constants instead of re-running the code under test - common_commandlineparser/common_debug/common_jobtime: capture stdout/stderr/qDebug and assert actual output content - proxy_manager: ProxyFinished test now drives a real proxy job instead of emitting the signal itself; proxy_dialog/panel/proxy/preferences/timeruler tests assert real widget state - viewer_smoke/preview_autocacher/render_misc: zero-assertion tests given observable-state assertions or removed where nothing is observable Duplicates removed: - plugin_smoke_test.cpp: 18 tests duplicated from plugin_paraminstance / plugin_support_* / plugin_renderer_readback (751 -> 180 lines) - module_smoke HumanStrings tests covered precisely by ui_humanstrings_test - render_misc duplicate kDefaultInterpolation constant check Removed by policy (skip allowed, never disabled): - all DISABLED_ prefixes: re-enabled as real offscreen tests or deleted - ffmpeg_decoder_hw: hardcoded personal path replaced with OAK_TEST_HW_DECODE_FILE env var, GTEST_SKIP when unset Also: - config_test: restore Config defaults after run (cross-test pollution) - render_worker_footage: drop /tmp debug-output scaffolding - previewaudiodevice construction test asserts the real bugfix
742 lines
27 KiB
C++
742 lines
27 KiB
C++
#include <gtest/gtest.h>
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#include <memory>
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#include <QObject>
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#include <QPointF>
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#include <QVector2D>
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#include "node/color/colormanager/colormanager.h"
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#include "node/generator/matrix/matrix.h"
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#include "node/generator/solid/solid.h"
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#include "node/inputimmediate.h"
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#include "node/keyframe.h"
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#include "node/math/math/math.h"
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#include "node/node.h"
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#include "node/project.h"
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#include "node/time/timeoffset/timeoffsetnode.h"
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#include "undo/undocommand.h"
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namespace
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{
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// NodeInputImmediate is not a QObject, so keyframes inserted directly into it
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// (rather than through parenting to a Node) must be removed and deleted by
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// hand to avoid leaks.
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void ClearImmediate(olive::NodeInputImmediate *imm)
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{
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for (int i = 0; i < imm->keyframe_tracks().size(); i++) {
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const QVector<olive::NodeKeyframe *> keys = imm->keyframe_tracks().at(i);
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for (olive::NodeKeyframe *key : keys) {
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imm->remove_keyframe(key);
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delete key;
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}
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}
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}
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olive::NodeKeyframe *MakeKey(const olive::rational &time, const QVariant &value,
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int track,
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olive::NodeKeyframe::Type type =
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olive::NodeKeyframe::kLinear)
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{
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return new olive::NodeKeyframe(time, value, type, track, -1,
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QStringLiteral("test_in"));
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}
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} // namespace
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TEST(NodeInputImmediate, StandardValueRoundTrip)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kFloat, { 1.5 });
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EXPECT_FALSE(imm.is_keyframing());
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EXPECT_TRUE(imm.is_using_standard_value(0));
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// The default value seeds the standard value
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ASSERT_EQ(imm.get_split_standard_value().size(), 1);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value().at(0).toDouble(), 1.5);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 1.5);
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imm.set_split_standard_value({ 2.5 });
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value().at(0).toDouble(), 2.5);
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imm.set_standard_value_on_track(3.5, 0);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 3.5);
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}
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TEST(NodeInputImmediate, SetSplitStandardValueCopiesOnlyOverlappingTracks)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kVec2, { 0.0, 0.0 });
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ASSERT_EQ(imm.get_split_standard_value().size(), 2);
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// A shorter split only overwrites the tracks it covers
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imm.set_split_standard_value({ 5.0 });
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 5.0);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(1).toDouble(), 0.0);
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// A longer split is clamped to the existing track count
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imm.set_split_standard_value({ 1.0, 2.0, 3.0 });
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ASSERT_EQ(imm.get_split_standard_value().size(), 2);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 1.0);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(1).toDouble(), 2.0);
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}
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TEST(NodeInputImmediate, SetDataTypeResizesTracksAndReappliesDefault)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kFloat, { 7.0 });
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ASSERT_EQ(imm.keyframe_tracks().size(), 1);
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ASSERT_EQ(imm.get_split_standard_value().size(), 1);
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// Growing to a four-track type keeps the default on the first track and
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// leaves the new tracks null, since the default split only has one entry
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imm.set_data_type(olive::NodeValue::kVec4);
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EXPECT_EQ(imm.keyframe_tracks().size(), 4);
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ASSERT_EQ(imm.get_split_standard_value().size(), 4);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 7.0);
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EXPECT_TRUE(imm.get_split_standard_value_on_track(1).isNull());
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EXPECT_TRUE(imm.get_split_standard_value_on_track(2).isNull());
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EXPECT_TRUE(imm.get_split_standard_value_on_track(3).isNull());
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imm.set_data_type(olive::NodeValue::kFloat);
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EXPECT_EQ(imm.keyframe_tracks().size(), 1);
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ASSERT_EQ(imm.get_split_standard_value().size(), 1);
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EXPECT_DOUBLE_EQ(imm.get_split_standard_value_on_track(0).toDouble(), 7.0);
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}
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TEST(NodeInputImmediate, KeyframeLookupRequiresKeyframingEnabled)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kFloat, { 0.0 });
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olive::NodeKeyframe *key = MakeKey(olive::rational(2), 1.0, 0);
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imm.insert_keyframe(key);
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// Without keyframing enabled the track reports that it uses the standard
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// value and all keyframe lookups come back empty
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EXPECT_TRUE(imm.is_using_standard_value(0));
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EXPECT_FALSE(imm.has_keyframe_at_time(olive::rational(2)));
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EXPECT_EQ(imm.get_keyframe_at_time_on_track(olive::rational(2), 0),
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nullptr);
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EXPECT_TRUE(imm.get_keyframe_at_time(olive::rational(2)).isEmpty());
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(2), 0),
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nullptr);
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imm.set_is_keyframing(true);
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EXPECT_FALSE(imm.is_using_standard_value(0));
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EXPECT_TRUE(imm.has_keyframe_at_time(olive::rational(2)));
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EXPECT_EQ(imm.get_keyframe_at_time_on_track(olive::rational(2), 0), key);
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ASSERT_EQ(imm.get_keyframe_at_time(olive::rational(2)).size(), 1);
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EXPECT_EQ(imm.get_keyframe_at_time(olive::rational(2)).first(), key);
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(2), 0),
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key);
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EXPECT_FALSE(imm.has_keyframe_at_time(olive::rational(3)));
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ClearImmediate(&imm);
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}
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TEST(NodeInputImmediate, InsertKeyframeSortsByTimeAndLinksSiblings)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kFloat, { 0.0 });
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// Insert out of order; the track must stay sorted by time
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olive::NodeKeyframe *key_late = MakeKey(olive::rational(10), 10.0, 0);
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olive::NodeKeyframe *key_early = MakeKey(olive::rational(0), 0.0, 0);
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olive::NodeKeyframe *key_mid = MakeKey(olive::rational(5), 5.0, 0);
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imm.insert_keyframe(key_late);
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imm.insert_keyframe(key_early);
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imm.insert_keyframe(key_mid);
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const olive::NodeKeyframeTrack &track = imm.keyframe_tracks().at(0);
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ASSERT_EQ(track.size(), 3);
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EXPECT_EQ(track.at(0), key_early);
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EXPECT_EQ(track.at(1), key_mid);
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EXPECT_EQ(track.at(2), key_late);
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// Sibling links follow the sorted order
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EXPECT_EQ(key_early->previous(), nullptr);
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EXPECT_EQ(key_early->next(), key_mid);
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EXPECT_EQ(key_mid->previous(), key_early);
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EXPECT_EQ(key_mid->next(), key_late);
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EXPECT_EQ(key_late->previous(), key_mid);
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EXPECT_EQ(key_late->next(), nullptr);
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EXPECT_EQ(imm.get_earliest_keyframe(), key_early);
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EXPECT_EQ(imm.get_latest_keyframe(), key_late);
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// Removing the middle keyframe re-links its siblings
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imm.remove_keyframe(key_mid);
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EXPECT_EQ(key_early->next(), key_late);
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EXPECT_EQ(key_late->previous(), key_early);
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EXPECT_EQ(key_mid->previous(), nullptr);
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EXPECT_EQ(key_mid->next(), nullptr);
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ASSERT_EQ(track.size(), 2);
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delete key_mid;
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ClearImmediate(&imm);
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}
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TEST(NodeInputImmediate, ClosestKeyframeToTimeOnTrackClampsAndPicksNearest)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kVec2, { 0.0, 0.0 });
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imm.set_is_keyframing(true);
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olive::NodeKeyframe *key_a = MakeKey(olive::rational(0), 0.0, 0);
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olive::NodeKeyframe *key_b = MakeKey(olive::rational(10), 10.0, 0);
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imm.insert_keyframe(key_a);
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imm.insert_keyframe(key_b);
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// Outside the keyed range the closest keyframe clamps to the ends
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(-3), 0),
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key_a);
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(20), 0),
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key_b);
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// Between the keys the nearer one wins
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(3), 0),
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key_a);
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(7), 0),
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key_b);
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// Exactly halfway the earlier keyframe wins the tie
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(5), 0),
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key_a);
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// A track with no keyframes still counts as using the standard value
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EXPECT_EQ(imm.get_closest_keyframe_to_time_on_track(olive::rational(5), 1),
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nullptr);
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ClearImmediate(&imm);
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}
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TEST(NodeInputImmediate, ClosestKeyframeBeforeAfterSpansAllTracks)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kVec2, { 0.0, 0.0 });
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imm.set_is_keyframing(true);
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olive::NodeKeyframe *key_t0 = MakeKey(olive::rational(0), 0.0, 0);
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olive::NodeKeyframe *key_t10 = MakeKey(olive::rational(10), 10.0, 0);
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olive::NodeKeyframe *key_t4_track1 = MakeKey(olive::rational(4), 4.0, 1);
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imm.insert_keyframe(key_t0);
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imm.insert_keyframe(key_t10);
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imm.insert_keyframe(key_t4_track1);
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// The closest keyframe before 5 is the one at 4 on the other track
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EXPECT_EQ(imm.get_closest_keyframe_before_time(olive::rational(5)),
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key_t4_track1);
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EXPECT_EQ(imm.get_closest_keyframe_after_time(olive::rational(5)), key_t10);
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// Strictly before/after: nothing exists outside the keyed range
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EXPECT_EQ(imm.get_closest_keyframe_before_time(olive::rational(0)),
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nullptr);
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EXPECT_EQ(imm.get_closest_keyframe_after_time(olive::rational(10)),
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nullptr);
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EXPECT_EQ(imm.get_closest_keyframe_before_time(olive::rational(4)), key_t0);
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EXPECT_EQ(imm.get_closest_keyframe_after_time(olive::rational(4)), key_t10);
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ClearImmediate(&imm);
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}
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TEST(NodeInputImmediate, BestKeyframeTypeForTimeFollowsClosestKey)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kFloat, { 0.0 });
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// With no keyframes there is no reference, so the default type is used
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EXPECT_EQ(int(imm.get_best_keyframe_type_for_time(olive::rational(5), 0)),
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int(olive::NodeKeyframe::kDefaultType));
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olive::NodeKeyframe *key_hold =
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MakeKey(olive::rational(0), 0.0, 0, olive::NodeKeyframe::kHold);
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olive::NodeKeyframe *key_linear = MakeKey(olive::rational(10), 10.0, 0);
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imm.insert_keyframe(key_hold);
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imm.insert_keyframe(key_linear);
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imm.set_is_keyframing(true);
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EXPECT_EQ(int(imm.get_best_keyframe_type_for_time(olive::rational(2), 0)),
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int(olive::NodeKeyframe::kHold));
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EXPECT_EQ(int(imm.get_best_keyframe_type_for_time(olive::rational(8), 0)),
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int(olive::NodeKeyframe::kLinear));
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ClearImmediate(&imm);
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}
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TEST(NodeInputImmediate, GetKeyframeAtTimeAggregatesAcrossTracks)
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{
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olive::NodeInputImmediate imm(olive::NodeValue::kVec2, { 0.0, 0.0 });
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imm.set_is_keyframing(true);
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olive::NodeKeyframe *key_track0 = MakeKey(olive::rational(3), 1.0, 0);
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olive::NodeKeyframe *key_track1 = MakeKey(olive::rational(3), 2.0, 1);
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olive::NodeKeyframe *key_later = MakeKey(olive::rational(7), 3.0, 0);
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imm.insert_keyframe(key_track0);
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imm.insert_keyframe(key_track1);
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imm.insert_keyframe(key_later);
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// Both tracks have a keyframe at t=3
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QVector<olive::NodeKeyframe *> at_three =
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imm.get_keyframe_at_time(olive::rational(3));
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ASSERT_EQ(at_three.size(), 2);
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EXPECT_TRUE(at_three.contains(key_track0));
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EXPECT_TRUE(at_three.contains(key_track1));
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// Only track 0 has one at t=7, and there is nothing at t=99
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EXPECT_EQ(imm.get_keyframe_at_time(olive::rational(7)).size(), 1);
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EXPECT_TRUE(imm.get_keyframe_at_time(olive::rational(99)).isEmpty());
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ClearImmediate(&imm);
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}
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class NodeInputImmediateNodeTest : public ::testing::Test {
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protected:
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void SetUp() override
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{
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olive::ColorManager::SetUpDefaultConfig();
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project_ = std::make_unique<olive::Project>();
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project_->Initialize();
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}
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template <typename T> T *AddNode()
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{
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T *node = new T();
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node->setParent(project_.get());
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return node;
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}
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olive::NodeKeyframe *AddKey(olive::Node *node, const QString &input,
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const olive::rational &time,
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const QVariant &value, int track,
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olive::NodeKeyframe::Type type =
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olive::NodeKeyframe::kLinear)
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{
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auto *key = new olive::NodeKeyframe(time, value, type, track, -1, input);
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key->setParent(node);
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return key;
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}
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std::unique_ptr<olive::Project> project_;
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};
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TEST_F(NodeInputImmediateNodeTest, SetValueAtTimeCreatesAndUpdatesKeyframes)
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{
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auto *node = AddNode<olive::MathNode>();
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const olive::NodeInput input(node, olive::MathNode::kParamAIn);
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node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
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// A new keyframe is inserted where none exists yet
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olive::MultiUndoCommand cmd;
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olive::Node::SetValueAtTime(input, olive::rational(5), 42.0, 0, &cmd, true);
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EXPECT_EQ(cmd.child_count(), 1);
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cmd.redo_now();
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olive::NodeKeyframe *key = node->GetKeyframeAtTimeOnTrack(
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olive::MathNode::kParamAIn, olive::rational(5), 0);
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ASSERT_NE(key, nullptr);
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EXPECT_DOUBLE_EQ(key->value().toDouble(), 42.0);
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EXPECT_DOUBLE_EQ(node->GetValueAtTime(olive::MathNode::kParamAIn,
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olive::rational(5))
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.toDouble(),
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42.0);
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// Setting the same time again updates the existing keyframe in place
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olive::MultiUndoCommand update_cmd;
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olive::Node::SetValueAtTime(input, olive::rational(5), 43.0, 0,
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&update_cmd, true);
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EXPECT_EQ(update_cmd.child_count(), 1);
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update_cmd.redo_now();
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const QVector<olive::NodeKeyframeTrack> &tracks =
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node->GetKeyframeTracks(olive::MathNode::kParamAIn, -1);
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ASSERT_EQ(tracks.at(0).size(), 1);
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EXPECT_EQ(tracks.at(0).first(), key);
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EXPECT_DOUBLE_EQ(key->value().toDouble(), 43.0);
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}
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TEST_F(NodeInputImmediateNodeTest, SetValueAtTimeWithoutKeyframingSetsStandardValue)
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{
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auto *node = AddNode<olive::MathNode>();
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const olive::NodeInput input(node, olive::MathNode::kParamAIn);
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olive::MultiUndoCommand cmd;
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olive::Node::SetValueAtTime(input, olive::rational(5), 9.0, 0, &cmd, true);
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EXPECT_EQ(cmd.child_count(), 1);
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cmd.redo_now();
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EXPECT_DOUBLE_EQ(
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node->GetStandardValue(olive::MathNode::kParamAIn).toDouble(), 9.0);
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EXPECT_TRUE(node->GetKeyframeTracks(olive::MathNode::kParamAIn, -1)
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.at(0)
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.isEmpty());
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}
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TEST_F(NodeInputImmediateNodeTest, SetValueAtTimeInsertsOnAllTracksOnlyWhenAsked)
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{
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auto *solid = AddNode<olive::SolidGenerator>();
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solid->SetInputIsKeyframing(olive::SolidGenerator::kColorInput, true);
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const olive::NodeInput input(solid, olive::SolidGenerator::kColorInput);
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// With insert_on_all_tracks_if_no_key set, keyframes are created on every
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// track; sibling tracks capture the value they currently evaluate to (the
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// standard value red = (1, 0, 0, 1) here)
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olive::MultiUndoCommand cmd;
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olive::Node::SetValueAtTime(input, olive::rational(5), 0.5, 2, &cmd, true);
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EXPECT_EQ(cmd.child_count(), 4);
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cmd.redo_now();
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const QVector<olive::NodeKeyframeTrack> &tracks =
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solid->GetKeyframeTracks(olive::SolidGenerator::kColorInput, -1);
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ASSERT_EQ(tracks.size(), 4);
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for (int i = 0; i < tracks.size(); i++) {
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ASSERT_EQ(tracks.at(i).size(), 1);
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EXPECT_EQ(tracks.at(i).first()->time(), olive::rational(5));
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}
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EXPECT_DOUBLE_EQ(tracks.at(0).first()->value().toDouble(), 1.0);
|
|
EXPECT_DOUBLE_EQ(tracks.at(1).first()->value().toDouble(), 0.0);
|
|
EXPECT_DOUBLE_EQ(tracks.at(2).first()->value().toDouble(), 0.5);
|
|
EXPECT_DOUBLE_EQ(tracks.at(3).first()->value().toDouble(), 1.0);
|
|
|
|
const olive::Color c =
|
|
solid->GetValueAtTime(olive::SolidGenerator::kColorInput,
|
|
olive::rational(5))
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(c.red(), 1.0f);
|
|
EXPECT_FLOAT_EQ(c.green(), 0.0f);
|
|
EXPECT_FLOAT_EQ(c.blue(), 0.5f);
|
|
EXPECT_FLOAT_EQ(c.alpha(), 1.0f);
|
|
|
|
// Without the flag only the requested track receives a keyframe
|
|
auto *single = AddNode<olive::SolidGenerator>();
|
|
single->SetInputIsKeyframing(olive::SolidGenerator::kColorInput, true);
|
|
const olive::NodeInput single_input(single,
|
|
olive::SolidGenerator::kColorInput);
|
|
|
|
olive::MultiUndoCommand single_cmd;
|
|
olive::Node::SetValueAtTime(single_input, olive::rational(5), 0.5, 2,
|
|
&single_cmd, false);
|
|
EXPECT_EQ(single_cmd.child_count(), 1);
|
|
single_cmd.redo_now();
|
|
|
|
const QVector<olive::NodeKeyframeTrack> &single_tracks =
|
|
single->GetKeyframeTracks(olive::SolidGenerator::kColorInput, -1);
|
|
ASSERT_EQ(single_tracks.size(), 4);
|
|
EXPECT_TRUE(single_tracks.at(0).isEmpty());
|
|
EXPECT_TRUE(single_tracks.at(1).isEmpty());
|
|
ASSERT_EQ(single_tracks.at(2).size(), 1);
|
|
EXPECT_DOUBLE_EQ(single_tracks.at(2).first()->value().toDouble(), 0.5);
|
|
EXPECT_TRUE(single_tracks.at(3).isEmpty());
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeInterpolatesColorTracks)
|
|
{
|
|
auto *solid = AddNode<olive::SolidGenerator>();
|
|
solid->SetInputIsKeyframing(olive::SolidGenerator::kColorInput, true);
|
|
|
|
// Black to white over ten seconds on all four tracks
|
|
for (int track = 0; track < 4; track++) {
|
|
AddKey(solid, olive::SolidGenerator::kColorInput, olive::rational(0),
|
|
0.0, track);
|
|
AddKey(solid, olive::SolidGenerator::kColorInput, olive::rational(10),
|
|
1.0, track);
|
|
}
|
|
|
|
const olive::Color mid =
|
|
solid->GetValueAtTime(olive::SolidGenerator::kColorInput,
|
|
olive::rational(5))
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(mid.red(), 0.5f);
|
|
EXPECT_FLOAT_EQ(mid.green(), 0.5f);
|
|
EXPECT_FLOAT_EQ(mid.blue(), 0.5f);
|
|
EXPECT_FLOAT_EQ(mid.alpha(), 0.5f);
|
|
|
|
const olive::SplitValue split = solid->GetSplitValueAtTime(
|
|
olive::SolidGenerator::kColorInput, olive::rational(5));
|
|
ASSERT_EQ(split.size(), 4);
|
|
for (int i = 0; i < split.size(); i++) {
|
|
EXPECT_DOUBLE_EQ(split.at(i).toDouble(), 0.5);
|
|
}
|
|
|
|
// Outside the keyed range the end values hold
|
|
const olive::Color before =
|
|
solid->GetValueAtTime(olive::SolidGenerator::kColorInput,
|
|
olive::rational(-2))
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(before.red(), 0.0f);
|
|
const olive::Color after =
|
|
solid->GetValueAtTime(olive::SolidGenerator::kColorInput,
|
|
olive::rational(20))
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(after.alpha(), 1.0f);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeInterpolatesVec2Tracks)
|
|
{
|
|
auto *matrix = AddNode<olive::MatrixGenerator>();
|
|
matrix->SetInputIsKeyframing(olive::MatrixGenerator::kPositionInput, true);
|
|
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(0),
|
|
0.0, 0);
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(10),
|
|
10.0, 0);
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(0),
|
|
10.0, 1);
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(10),
|
|
20.0, 1);
|
|
|
|
const QVector2D mid =
|
|
matrix->GetValueAtTime(olive::MatrixGenerator::kPositionInput,
|
|
olive::rational(5))
|
|
.value<QVector2D>();
|
|
EXPECT_FLOAT_EQ(mid.x(), 5.0f);
|
|
EXPECT_FLOAT_EQ(mid.y(), 15.0f);
|
|
|
|
// Each track clamps to its own end keyframes
|
|
const QVector2D clamped_low =
|
|
matrix->GetValueAtTime(olive::MatrixGenerator::kPositionInput,
|
|
olive::rational(-5))
|
|
.value<QVector2D>();
|
|
EXPECT_FLOAT_EQ(clamped_low.x(), 0.0f);
|
|
EXPECT_FLOAT_EQ(clamped_low.y(), 10.0f);
|
|
const QVector2D clamped_high =
|
|
matrix->GetValueAtTime(olive::MatrixGenerator::kPositionInput,
|
|
olive::rational(15))
|
|
.value<QVector2D>();
|
|
EXPECT_FLOAT_EQ(clamped_high.x(), 10.0f);
|
|
EXPECT_FLOAT_EQ(clamped_high.y(), 20.0f);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeInterpolatesRationalAsRational)
|
|
{
|
|
auto *offset = AddNode<olive::TimeOffsetNode>();
|
|
offset->SetInputIsKeyframing(olive::TimeOffsetNode::kTimeInput, true);
|
|
|
|
AddKey(offset, olive::TimeOffsetNode::kTimeInput, olive::rational(0),
|
|
QVariant::fromValue(olive::rational(0)), 0);
|
|
AddKey(offset, olive::TimeOffsetNode::kTimeInput, olive::rational(10),
|
|
QVariant::fromValue(olive::rational(10)), 0);
|
|
|
|
// The interpolated value is converted back into a rational
|
|
const QVariant mid = offset->GetValueAtTime(
|
|
olive::TimeOffsetNode::kTimeInput, olive::rational(5));
|
|
EXPECT_EQ(mid.value<olive::rational>(), olive::rational(5));
|
|
|
|
const QVariant one_tenth_in = offset->GetValueAtTime(
|
|
olive::TimeOffsetNode::kTimeInput, olive::rational(1));
|
|
EXPECT_DOUBLE_EQ(one_tenth_in.value<olive::rational>().toDouble(), 1.0);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeHoldsRationalUntilNextKey)
|
|
{
|
|
auto *offset = AddNode<olive::TimeOffsetNode>();
|
|
offset->SetInputIsKeyframing(olive::TimeOffsetNode::kTimeInput, true);
|
|
|
|
AddKey(offset, olive::TimeOffsetNode::kTimeInput, olive::rational(0),
|
|
QVariant::fromValue(olive::rational(2, 3)), 0,
|
|
olive::NodeKeyframe::kHold);
|
|
AddKey(offset, olive::TimeOffsetNode::kTimeInput, olive::rational(10),
|
|
QVariant::fromValue(olive::rational(4, 3)), 0);
|
|
|
|
// A hold keyframe keeps its exact rational value until the next key
|
|
const QVariant held = offset->GetValueAtTime(
|
|
olive::TimeOffsetNode::kTimeInput, olive::rational(9));
|
|
EXPECT_EQ(held.value<olive::rational>(), olive::rational(2, 3));
|
|
|
|
const QVariant at_next = offset->GetValueAtTime(
|
|
olive::TimeOffsetNode::kTimeInput, olive::rational(10));
|
|
EXPECT_EQ(at_next.value<olive::rational>(), olive::rational(4, 3));
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeBezierHandlesBendCurve)
|
|
{
|
|
auto *node = AddNode<olive::MathNode>();
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
|
|
|
|
olive::NodeKeyframe *before =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(0), 0.0, 0,
|
|
olive::NodeKeyframe::kBezier);
|
|
olive::NodeKeyframe *after =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(10), 10.0, 0,
|
|
olive::NodeKeyframe::kBezier);
|
|
|
|
// Ease-in shape: the outgoing handle pulls the start of the curve flat
|
|
before->set_bezier_control_out(QPointF(2.5, 0.0));
|
|
after->set_bezier_control_in(QPointF(0.0, 0.0));
|
|
|
|
const double interpolated = node->GetValueAtTime(
|
|
olive::MathNode::kParamAIn, olive::rational(5)).toDouble();
|
|
|
|
// Independent expectation, derived by hand from the control points
|
|
// P0=(0,0), P1=(2.5,0), P2=(10,10), P3=(10,10):
|
|
// x(t) = 7.5*(1-t)^2*t + 30*(1-t)*t^2 + 10*t^3
|
|
// = -12.5*t^3 + 15*t^2 + 7.5*t
|
|
// x(t) = 5 => 5*t^3 - 6*t^2 - 3*t + 2 = 0 => t = 0.4296537740156094
|
|
// y(t) = 30*(1-t)*t^2 + 10*t^3 = 30*t^2 - 20*t^3
|
|
// = 3.9517689049678255
|
|
// (the production bisection solves x(t) to 1e-6, so allow 1e-4 slack)
|
|
EXPECT_NEAR(interpolated, 3.9517689049678255, 1e-4);
|
|
|
|
// The ease-in handle keeps the midpoint below the linear value of 5.0
|
|
EXPECT_LT(interpolated, 5.0);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, GetValueAtTimeQuadraticBezierWithOneHandle)
|
|
{
|
|
auto *node = AddNode<olive::MathNode>();
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
|
|
|
|
// Bezier into linear uses a quadratic curve with a single control point
|
|
olive::NodeKeyframe *before =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(0), 0.0, 0,
|
|
olive::NodeKeyframe::kBezier);
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(10), 10.0, 0,
|
|
olive::NodeKeyframe::kLinear);
|
|
before->set_bezier_control_out(QPointF(2.5, 0.0));
|
|
|
|
const double interpolated = node->GetValueAtTime(
|
|
olive::MathNode::kParamAIn, olive::rational(5)).toDouble();
|
|
|
|
// Independent expectation, derived by hand from the single control point
|
|
// CP=(2.5,0) between P0=(0,0) and P2=(10,10):
|
|
// x(t) = 2*(1-t)*t*2.5 + t^2*10 = 5*t + 5*t^2
|
|
// x(t) = 5 => t = (sqrt(5)-1)/2 = 0.6180339887498949
|
|
// y(t) = t^2*10 = 5*(3 - sqrt(5)) = 3.819660112501051
|
|
// (the production bisection solves x(t) to 1e-6, so allow 1e-4 slack)
|
|
EXPECT_NEAR(interpolated, 3.819660112501051, 1e-4);
|
|
EXPECT_LT(interpolated, 5.0);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, IsUsingStandardValueTransitions)
|
|
{
|
|
auto *node = AddNode<olive::MathNode>();
|
|
node->SetStandardValue(olive::MathNode::kParamAIn, 3.0);
|
|
|
|
// Static input: standard value is always in use
|
|
EXPECT_TRUE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
|
|
// Keyframing enabled but no keyframes yet: still the standard value
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
|
|
EXPECT_TRUE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
|
|
// With a keyframe present the track switches to the keyed value
|
|
olive::NodeKeyframe *key =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(5), 7.0, 0);
|
|
EXPECT_FALSE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
|
|
// Disabling keyframing hides the keyframes again
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, false);
|
|
EXPECT_TRUE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
EXPECT_DOUBLE_EQ(node->GetValueAtTime(olive::MathNode::kParamAIn,
|
|
olive::rational(5))
|
|
.toDouble(),
|
|
3.0);
|
|
|
|
// Removing the last keyframe returns the track to the standard value
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
|
|
EXPECT_FALSE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
key->setParent(nullptr);
|
|
delete key;
|
|
EXPECT_TRUE(node->IsUsingStandardValue(olive::MathNode::kParamAIn, 0));
|
|
EXPECT_DOUBLE_EQ(node->GetValueAtTime(olive::MathNode::kParamAIn,
|
|
olive::rational(5))
|
|
.toDouble(),
|
|
3.0);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, PartiallyKeyedTrackFallsBackToStandardValue)
|
|
{
|
|
auto *matrix = AddNode<olive::MatrixGenerator>();
|
|
matrix->SetStandardValue(olive::MatrixGenerator::kPositionInput,
|
|
QVector2D(1.0f, 2.0f));
|
|
matrix->SetInputIsKeyframing(olive::MatrixGenerator::kPositionInput, true);
|
|
|
|
// Only the X track is keyed; the Y track keeps its standard value
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(0),
|
|
0.0, 0);
|
|
AddKey(matrix, olive::MatrixGenerator::kPositionInput, olive::rational(10),
|
|
10.0, 0);
|
|
|
|
EXPECT_FALSE(
|
|
matrix->IsUsingStandardValue(olive::MatrixGenerator::kPositionInput,
|
|
0));
|
|
EXPECT_TRUE(
|
|
matrix->IsUsingStandardValue(olive::MatrixGenerator::kPositionInput,
|
|
1));
|
|
|
|
const QVector2D value =
|
|
matrix->GetValueAtTime(olive::MatrixGenerator::kPositionInput,
|
|
olive::rational(5))
|
|
.value<QVector2D>();
|
|
EXPECT_FLOAT_EQ(value.x(), 5.0f);
|
|
EXPECT_FLOAT_EQ(value.y(), 2.0f);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, StandardValueCombinationAcrossTracks)
|
|
{
|
|
auto *solid = AddNode<olive::SolidGenerator>();
|
|
|
|
// The declared default is opaque red
|
|
olive::Color initial =
|
|
solid->GetStandardValue(olive::SolidGenerator::kColorInput)
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(initial.red(), 1.0f);
|
|
EXPECT_FLOAT_EQ(initial.green(), 0.0f);
|
|
EXPECT_FLOAT_EQ(initial.blue(), 0.0f);
|
|
EXPECT_FLOAT_EQ(initial.alpha(), 1.0f);
|
|
|
|
// Setting a normal value splits it across the four tracks
|
|
solid->SetStandardValue(
|
|
olive::SolidGenerator::kColorInput,
|
|
QVariant::fromValue(olive::Color(0.25f, 0.5f, 0.75f, 1.0f)));
|
|
const olive::SplitValue split =
|
|
solid->GetSplitStandardValue(olive::SolidGenerator::kColorInput);
|
|
ASSERT_EQ(split.size(), 4);
|
|
EXPECT_DOUBLE_EQ(split.at(0).toDouble(), 0.25);
|
|
EXPECT_DOUBLE_EQ(split.at(1).toDouble(), 0.5);
|
|
EXPECT_DOUBLE_EQ(split.at(2).toDouble(), 0.75);
|
|
EXPECT_DOUBLE_EQ(split.at(3).toDouble(), 1.0);
|
|
EXPECT_DOUBLE_EQ(solid->GetSplitStandardValueOnTrack(
|
|
olive::SolidGenerator::kColorInput, 2)
|
|
.toDouble(),
|
|
0.75);
|
|
|
|
// A partial split only overwrites the leading tracks
|
|
solid->SetSplitStandardValue(olive::SolidGenerator::kColorInput,
|
|
{ 0.1, 0.2 });
|
|
const olive::Color combined =
|
|
solid->GetStandardValue(olive::SolidGenerator::kColorInput)
|
|
.value<olive::Color>();
|
|
EXPECT_FLOAT_EQ(combined.red(), 0.1f);
|
|
EXPECT_FLOAT_EQ(combined.green(), 0.2f);
|
|
EXPECT_FLOAT_EQ(combined.blue(), 0.75f);
|
|
EXPECT_FLOAT_EQ(combined.alpha(), 1.0f);
|
|
}
|
|
|
|
TEST_F(NodeInputImmediateNodeTest, DeleteAllKeyframesReparentsOrDeletes)
|
|
{
|
|
auto *node = AddNode<olive::MathNode>();
|
|
node->SetInputIsKeyframing(olive::MathNode::kParamAIn, true);
|
|
|
|
olive::NodeKeyframe *key_a =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(0), 1.0, 0);
|
|
olive::NodeKeyframe *key_b =
|
|
AddKey(node, olive::MathNode::kParamAIn, olive::rational(1), 2.0, 0);
|
|
|
|
olive::NodeInputImmediate *imm =
|
|
node->GetImmediate(olive::MathNode::kParamAIn, -1);
|
|
ASSERT_NE(imm, nullptr);
|
|
ASSERT_EQ(imm->keyframe_tracks().at(0).size(), 2);
|
|
|
|
// With a parent the keyframes are handed over rather than deleted
|
|
QObject guard;
|
|
imm->delete_all_keyframes(&guard);
|
|
EXPECT_TRUE(imm->keyframe_tracks().at(0).isEmpty());
|
|
EXPECT_EQ(guard.children().size(), 2);
|
|
EXPECT_TRUE(guard.children().contains(key_a));
|
|
EXPECT_TRUE(guard.children().contains(key_b));
|
|
|
|
// Without a parent the keyframes are deleted outright
|
|
key_a->setParent(node);
|
|
key_b->setParent(node);
|
|
ASSERT_EQ(imm->keyframe_tracks().at(0).size(), 2);
|
|
imm->delete_all_keyframes();
|
|
EXPECT_TRUE(imm->keyframe_tracks().at(0).isEmpty());
|
|
}
|