134 lines
6.0 KiB
C++
134 lines
6.0 KiB
C++
// Standalone tests for reasampler::prune_button — no REAPER, no test framework.
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// Same fast loop as the sibling pure tests (mode_switch / tab_strip): assert the
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// footer prune-button placement math and hit-testing directly.
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//
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// Covers (R3 brief §button pure module): right-anchored layout in a wide footer;
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// vertical inset; SUPPRESSION (empty rect) when the footer is too narrow to clear the
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// tail-label inset or is degenerate; hit-test in/out/edge (half-open bounds); a
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// suppressed/empty button claims no point; draw and hit-test agree over the whole rect.
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#include "../src/core/ui/prune_button.h"
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#include <cstdio>
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using namespace reasampler;
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using namespace reasampler::ui;
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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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// --- Layout: wide footer, right-anchored -------------------------------------
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// Footer 400 wide at origin (0, 100), height 26. Default spec: buttonWidth 72,
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// rightInset 84, verticalInset 4, minLeftInset 120. Right edge = 0+400-84 = 316,
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// left = 316-72 = 244 (>= 0+120, so placed). Top = 100+4 = 104, height = 26-8 = 18.
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static void testWideFooterRightAnchored() {
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FooterRect f{0, 100, 400, 26};
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{});
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CHECK(!b.empty());
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CHECK((b == ButtonRect{244, 104, 72, 18}));
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// Right edge sits at the rightInset from the footer's right.
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CHECK(b.x + b.width == f.x + f.width - 84);
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// Left edge clears the reserved tail-label inset.
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CHECK(b.x >= f.x + 120);
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}
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// Origin offset is honoured (button anchors to THIS footer's right, not 0).
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static void testOffsetFooterAnchors() {
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FooterRect f{10, 200, 400, 26};
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{});
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CHECK(!b.empty());
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CHECK(b.x + b.width == f.x + f.width - 84); // = 10+400-84 = 326
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CHECK(b.x == 254);
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}
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// --- Suppression: too narrow / degenerate ------------------------------------
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// A footer just wide enough that the button's left edge would fall past the
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// minLeftInset is suppressed (empty). left = x + width - rightInset - buttonWidth.
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// Need left < x + minLeftInset -> width < rightInset + buttonWidth + minLeftInset
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// = 84 + 72 + 120 = 276. Width 275 suppresses; 276 places (boundary).
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static void testNarrowFooterSuppressed() {
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CHECK(computePruneButton(FooterRect{0, 0, 275, 26}, PruneButtonSpec{}).empty());
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CHECK(!computePruneButton(FooterRect{0, 0, 276, 26}, PruneButtonSpec{}).empty());
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}
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static void testDegenerateFooterSuppressed() {
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CHECK(computePruneButton(FooterRect{0, 0, 0, 26}, PruneButtonSpec{}).empty()); // no width
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CHECK(computePruneButton(FooterRect{0, 0, 400, 0}, PruneButtonSpec{}).empty()); // no height
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PruneButtonSpec zero{}; zero.buttonWidth = 0;
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CHECK(computePruneButton(FooterRect{0, 0, 400, 26}, zero).empty()); // zero button
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}
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// A very thin footer (height <= 2*verticalInset) still places a button but clamps its
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// height to the footer's own, rather than yielding a negative height.
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static void testThinFooterClampsHeight() {
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FooterRect f{0, 0, 400, 6}; // 6 <= 2*4, so height would be negative -> clamp
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{});
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CHECK(!b.empty());
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CHECK(b.y == f.y);
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CHECK(b.height == f.height);
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}
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// --- Hit-test ----------------------------------------------------------------
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static void testHitTestInside() {
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FooterRect f{0, 100, 400, 26};
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{}); // {244,104,72,18}
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CHECK(hitTestPruneButton(b.x, b.y, b)); // top-left corner (inclusive)
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CHECK(hitTestPruneButton(b.x + b.width - 1, b.y + b.height - 1, b)); // bottom-right inclusive
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CHECK(hitTestPruneButton(b.x + b.width / 2, b.y + b.height / 2, b)); // centre
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}
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// Half-open bounds: the far edges (x+width, y+height) are EXCLUDED, matching the draw.
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static void testHitTestEdgesExcluded() {
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FooterRect f{0, 100, 400, 26};
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{});
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CHECK(!hitTestPruneButton(b.x - 1, b.y, b)); // just left
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CHECK(!hitTestPruneButton(b.x + b.width, b.y, b)); // right edge excluded
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CHECK(!hitTestPruneButton(b.x, b.y - 1, b)); // just above
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CHECK(!hitTestPruneButton(b.x, b.y + b.height, b)); // bottom edge excluded
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}
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// A suppressed (empty) button never claims a point — a click in the footer where the
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// button would have been falls through to the tail cycle, never a phantom prune.
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static void testEmptyButtonClaimsNothing() {
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ButtonRect empty{};
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CHECK(!hitTestPruneButton(0, 0, empty));
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CHECK(!hitTestPruneButton(5, 5, empty));
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// A "no button" from a narrow footer also claims nothing at any point.
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const ButtonRect suppressed = computePruneButton(FooterRect{0, 0, 200, 26}, PruneButtonSpec{});
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CHECK(suppressed.empty());
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CHECK(!hitTestPruneButton(150, 13, suppressed));
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}
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// Draw/hit-test agreement: every point inside the computed rect hit-tests true, and the
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// four immediate outside neighbours hit-test false (the load-bearing consistency).
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static void testHitTestMatchesLayout() {
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FooterRect f{3, 7, 377, 22}; // awkward origin/size
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const ButtonRect b = computePruneButton(f, PruneButtonSpec{});
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CHECK(!b.empty());
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for (int py = b.y; py < b.y + b.height; ++py)
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for (int px = b.x; px < b.x + b.width; ++px)
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CHECK(hitTestPruneButton(px, py, b));
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CHECK(!hitTestPruneButton(b.x - 1, b.y, b));
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CHECK(!hitTestPruneButton(b.x + b.width, b.y, b));
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}
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int main() {
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testWideFooterRightAnchored();
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testOffsetFooterAnchors();
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testNarrowFooterSuppressed();
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testDegenerateFooterSuppressed();
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testThinFooterClampsHeight();
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testHitTestInside();
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testHitTestEdgesExcluded();
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testEmptyButtonClaimsNothing();
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testHitTestMatchesLayout();
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if (g_fail == 0) std::printf("prune_button: all tests passed\n");
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else std::printf("prune_button: %d CHECK(s) FAILED\n", g_fail);
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return g_fail == 0 ? 0 : 1;
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}
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