9d38f87a2d
Payload v12 appends the new velocity->pitch curve and folds the retired filter velAmount into its now-bipolar curve, so pre-v12 projects reopen sounding identical. Preview button takes a drawn play triangle.
134 lines
6.0 KiB
C++
134 lines
6.0 KiB
C++
// Standalone tests for reasampler::instrument::ui::curve_popup — no VST3, no REAPER, no framework. Same
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// fast assert loop as the sibling pure tests. Assert the r11 popup-sheet geometry at the size
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// clamps (the spec's width clamp(60%, 360..520) / height clamp(55%, 260..380)), the centering,
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// the title-row/close-button placement, the curve-box remainder, and the outside-sheet
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// dismissal test.
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#include "../src/core/instrument/ui/curve_popup.h"
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#include "../src/core/instrument/engine/velocity_curve.h"
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#include <cstdio>
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using namespace reasampler;
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using namespace reasampler::instrument::ui;
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using reasampler::instrument::engine::CurveDomain;
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using reasampler::instrument::engine::VelocityCurve;
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static int g_fail = 0;
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#define CHECK(cond) do { if(!(cond)) { \
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std::printf("FAIL line %d: %s\n", __LINE__, #cond); ++g_fail; } } while(0)
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static void testDefaultWindowMidClamp() {
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// 840x620: 60% = 504 (inside 360..520), 55% = 341 (inside 260..380).
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const CurvePopupLayout pl = computeCurvePopup(840, 620);
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CHECK(pl.sheet.width == 504);
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CHECK(pl.sheet.height == 341);
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// Centered (within the integer-division pixel).
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CHECK(pl.sheet.x == (840 - 504) / 2);
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CHECK(pl.sheet.y == (620 - 341) / 2);
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}
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static void testMinClamp() {
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// The 560x460 constraint floor: 60% = 336 -> clamps UP to 360; 55% = 253 -> up to 260.
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const CurvePopupLayout pl = computeCurvePopup(560, 460);
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CHECK(pl.sheet.width == kCurvePopupMinW);
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CHECK(pl.sheet.height == kCurvePopupMinH);
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CHECK(pl.sheet.x >= 0 && pl.sheet.right() <= 560);
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CHECK(pl.sheet.y >= 0 && pl.sheet.bottom() <= 460);
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}
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static void testMaxClamp() {
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// A large window: 60% of 1600 = 960 -> clamps DOWN to 520; 55% of 900 = 495 -> down to 380.
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const CurvePopupLayout pl = computeCurvePopup(1600, 900);
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CHECK(pl.sheet.width == kCurvePopupMaxW);
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CHECK(pl.sheet.height == kCurvePopupMaxH);
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}
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static void testDegenerateWindowNeverOverhangs() {
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// A window smaller than the min clamp: the sheet caps at the window dimension (defensive —
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// below checkSizeConstraint, but geometry must stay sane).
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const CurvePopupLayout pl = computeCurvePopup(300, 200);
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CHECK(pl.sheet.width == 300);
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CHECK(pl.sheet.height == 200);
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CHECK(pl.sheet.x == 0 && pl.sheet.y == 0);
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}
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static void testTitleRowAndCurveBox() {
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const CurvePopupLayout pl = computeCurvePopup(840, 620);
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// Close: 18x18, right-anchored inside the title row.
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CHECK(pl.close.width == kCurvePopupCloseSize && pl.close.height == kCurvePopupCloseSize);
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CHECK(pl.close.right() == pl.sheet.right() - kCurvePopupPad);
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CHECK(pl.close.y >= pl.sheet.y);
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CHECK(pl.close.bottom() <= pl.sheet.y + kCurvePopupTitleH);
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// Title text: left of the close button, in the title row.
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CHECK(pl.title.x == pl.sheet.x + kCurvePopupPad);
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CHECK(pl.title.right() <= pl.close.x);
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// Curve box: fills the remainder below the title row, inside the sheet margins.
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CHECK(pl.curveBox.y >= pl.sheet.y + kCurvePopupTitleH);
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CHECK(pl.curveBox.x == pl.sheet.x + kCurvePopupPad);
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CHECK(pl.curveBox.right() == pl.sheet.right() - kCurvePopupPad);
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CHECK(pl.curveBox.bottom() == pl.sheet.bottom() - kCurvePopupPad);
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CHECK(pl.curveBox.width > 0 && pl.curveBox.height > 0);
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}
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static void testOutsideSheetDismissTest() {
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const CurvePopupLayout pl = computeCurvePopup(840, 620);
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// On the wash: outside.
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CHECK(popupOutsideSheet(pl, 0, 0));
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CHECK(popupOutsideSheet(pl, pl.sheet.x - 1, pl.sheet.y + 10));
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CHECK(popupOutsideSheet(pl, pl.sheet.right(), pl.sheet.y + 10)); // half-open right edge
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// On the sheet (title row, curve box, padding): inside.
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CHECK(!popupOutsideSheet(pl, pl.sheet.x, pl.sheet.y));
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CHECK(!popupOutsideSheet(pl, pl.curveBox.x + 5, pl.curveBox.y + 5));
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CHECK(!popupOutsideSheet(pl, pl.sheet.right() - 1, pl.sheet.bottom() - 1));
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}
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// The sheet hosts all three curves, and its box is domain-agnostic: the SAME curveBox drives a
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// unipolar and a bipolar editor, and only the curve's own y map differs. Asserted here, against
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// the popup's real geometry, because that is what makes one popup code path legitimate.
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static void testTheSameCurveBoxHostsBothDomains() {
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const CurvePopupLayout pl = computeCurvePopup(840, 620);
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// The shell insets this rect before mapping; the inset is uniform, so any box inside the
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// curveBox exercises the same relationship. Use the rect itself.
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const VelocityCurve::Box box{pl.curveBox.x, pl.curveBox.y, pl.curveBox.width,
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pl.curveBox.height};
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CHECK(box.width > 1 && box.height > 1);
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const VelocityCurve amp = VelocityCurve::flat();
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const VelocityCurve mod = VelocityCurve::zero();
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const int top = box.top;
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const int bottom = box.top + box.height - 1;
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// Both domains put their MAX on the top row and their MIN on the bottom row...
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CHECK(amp.pixelFromPoint(box, {0.0, 1.0}).y == top);
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CHECK(amp.pixelFromPoint(box, {0.0, 0.0}).y == bottom);
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CHECK(mod.pixelFromPoint(box, {0.0, 1.0}).y == top);
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CHECK(mod.pixelFromPoint(box, {0.0, -1.0}).y == bottom);
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// ...so value 0 is the FLOOR for the amp curve and the MIDLINE for a modulation curve.
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CHECK(mod.pixelFromPoint(box, {0.0, 0.0}).y == (top + bottom) / 2);
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// And a click at the vertical centre adds a point at 0 in the bipolar editor, at 0.5 in
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// the unipolar one — one hit-test path, two correct answers.
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const int midY = (top + bottom) / 2;
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CHECK(mod.pointFromPixel(box, box.left, midY).value == 0.0);
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CHECK(amp.pointFromPixel(box, box.left, midY).value > 0.49);
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CHECK(amp.pointFromPixel(box, box.left, midY).value < 0.51);
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}
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int main() {
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testTheSameCurveBoxHostsBothDomains();
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testDefaultWindowMidClamp();
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testMinClamp();
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testMaxClamp();
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testDegenerateWindowNeverOverhangs();
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testTitleRowAndCurveBox();
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testOutsideSheetDismissTest();
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if (g_fail) {
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std::printf("%d FAILURE(S)\n", g_fail);
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return 1;
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}
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std::printf("curve_popup tests passed\n");
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return 0;
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}
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