0ab4673887
Corrects a false comment example, fixes two tests that couldn't detect their own regressions, adds two more read-back checkpoints around Main_OnCommand so a drift report self-locates, guards a spurious zero-vs-zero coincidence match, and softens two sentences that overclaimed cause or defect.
408 lines
20 KiB
C++
408 lines
20 KiB
C++
// Standalone tests for reasampler::render_window — no REAPER, no framework.
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// Covers the bounds-equality number (a window's exact frame count at the project
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// rate), the verdict the offline backend refuses a capture on, the predicate
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// that decides whether REAPER's selected-items render source can express a
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// requested window at all, and the two short-render diagnostics.
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#include "../src/core/capture/render_window.h"
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#include <cmath>
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#include <cstdio>
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#include <string>
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using namespace reasampler::capture;
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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 bool contains(const std::string& haystack, const std::string& needle) {
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return haystack.find(needle) != std::string::npos;
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}
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// --- frameCountFor: the bounds equality, stated as a number ------------------
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static void testFrameCountIsExactNotRounded() {
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// A 1.5 s window at 48 kHz is exactly 72000 frames — the number a capture of
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// that range must produce. No rounding slack in either direction.
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CHECK(frameCountFor(2.0, 3.5, 48000) == 72000);
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// The same duration at a different offset still counts the same frames when
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// both edges are frame-aligned.
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CHECK(frameCountFor(10.0, 11.5, 48000) == 72000);
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// 44.1 kHz: 0.5 s = 22050 frames.
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CHECK(frameCountFor(1.0, 1.5, 44100) == 22050);
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}
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static void testFrameCountIsADifferenceOfIndicesNotADuration() {
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// Both edges land mid-frame at 100 Hz (0.005 s = half a frame). Rounding the
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// DURATION would give 1 frame; rounding each EDGE gives 0.005 -> frame 1 and
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// 0.015 -> frame 2, i.e. 1 frame. Shift the window so the edges round apart
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// and the count changes — the property that makes this a window, not a length.
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CHECK(frameCountFor(0.005, 0.015, 100) == 1);
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CHECK(frameCountFor(0.004, 0.016, 100) == 2);
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}
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static void testFrameCountRefusesEmptyInvertedAndUnknownRate() {
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CHECK(frameCountFor(3.0, 3.0, 48000) == 0); // empty
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CHECK(frameCountFor(3.0, 1.0, 48000) == 0); // inverted
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CHECK(frameCountFor(1.0, 2.0, 0) == 0); // rate unknown
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CHECK(frameCountFor(1.0, 2.0, -1) == 0); // rate nonsensical
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}
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static void testWindowStartingAtExactlyZero() {
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CHECK(frameCountFor(0.0, 1.0, 48000) == 48000);
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// The window from the reported blocker: it starts at 0 and its end lands a
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// quarter of a frame off the grid at 48 kHz.
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CHECK(frameCountFor(0.0, 4.067797, 48000) == 195254);
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}
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// --- renderHonoredBounds: the gate's verdict ---------------------------------
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static void testNonFrameAlignedWindowAcceptsItsAdjacentCounts() {
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// 4.067797 s at 48 kHz is 195254.26 frames — not a frame boundary. A correct
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// render lands on 195254, and both adjacent counts are inside the gate.
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const long long expected = frameCountFor(0.0, 4.067797, 48000);
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CHECK(expected == 195254);
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CHECK(renderHonoredBounds(expected, 195254));
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CHECK(renderHonoredBounds(expected, 195255));
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CHECK(renderHonoredBounds(expected, 195253));
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// The shortfall actually reported from the DAW is 38 frames — far outside any
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// alignment slack, so it is a render that missed the window, and is refused.
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CHECK(!renderHonoredBounds(expected, 195216));
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}
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static void testLengthDerivedAndSameConventionRenderersStayWithinOneFrame() {
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// What the one-frame tolerance is actually good for. Two families of renderer are
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// inside it at every offset swept here: one that derives its count from the
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// window's LENGTH (floor/ceil/round of (end-start)*rate), and one that resolves
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// each EDGE to a frame using the SAME convention on both edges. Every count below
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// is computed from the window, never from frameCountFor, so this compares two
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// derivations rather than restating one. Round-both-edges is omitted deliberately:
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// that IS frameCountFor's own convention, so asserting it would be tautological.
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//
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// 8192 is a power of two, so an eighth of a frame is exact in double there and the
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// .5 rounding ties are really hit; at 48000/44100 (the shipping rates) they are
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// only approached, which is why all three are swept.
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struct Window { double start; double end; };
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const int rates[] = {48000, 44100, 8192};
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const Window windows[] = {{3.0, 7.5}, {0.0, 4.067797}, {10.25, 10.75}};
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for (int rate : rates) {
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for (const Window& w : windows) {
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for (int s = 0; s < 8; ++s) {
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for (int e = 0; e < 8; ++e) {
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const double start = w.start + s / (8.0 * rate);
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const double end = w.end + e / (8.0 * rate);
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const long long expected = frameCountFor(start, end, rate);
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const double length = (end - start) * rate;
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CHECK(renderHonoredBounds(expected,
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static_cast<long long>(std::floor(length))));
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CHECK(renderHonoredBounds(expected,
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static_cast<long long>(std::ceil(length))));
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CHECK(renderHonoredBounds(expected, std::llround(length)));
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const double startFrames = start * rate;
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const double endFrames = end * rate;
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CHECK(renderHonoredBounds(
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expected, static_cast<long long>(std::floor(endFrames) -
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std::floor(startFrames))));
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CHECK(renderHonoredBounds(
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expected, static_cast<long long>(std::ceil(endFrames) -
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std::ceil(startFrames))));
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}
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}
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}
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}
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}
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static void testMixedEdgeConventionsCanMissByTwoAndAreRefused() {
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// The hole in that bound, stated rather than hidden. A renderer that resolves the
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// two edges by DIFFERENT conventions lands two frames from frameCountFor's answer
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// whenever the start sits past mid-frame and the end before it (resolved outward),
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// or the mirror image (resolved inward). The gate refuses both — correctly if
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// REAPER derives its count from the window's length, wrongly if it resolves edges
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// this way. No unit test can settle which; see render_window.h.
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const int rate = 8192; // power of two: the eighth-frame offsets below are exact
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// Outward: start .625 into a frame, end .375 into one.
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const double start = 10.25 + 5.0 / (8.0 * rate);
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const double end = 10.75 + 3.0 / (8.0 * rate);
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CHECK(start * rate == 83968.625); // the premise, not an outcome — pinned so a
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CHECK(end * rate == 88064.375); // representability slip can't fake the result
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const long long expected = frameCountFor(start, end, rate);
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CHECK(expected == 4095);
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const long long outward = static_cast<long long>(std::ceil(end * rate) -
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std::floor(start * rate));
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CHECK(outward == 4097);
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CHECK(!renderHonoredBounds(expected, outward));
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// Inward, mirrored fractions.
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const double start2 = 10.25 + 3.0 / (8.0 * rate);
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const double end2 = 10.75 + 5.0 / (8.0 * rate);
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const long long expected2 = frameCountFor(start2, end2, rate);
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CHECK(expected2 == 4097);
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const long long inward = static_cast<long long>(std::floor(end2 * rate) -
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std::ceil(start2 * rate));
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CHECK(inward == 4095);
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CHECK(!renderHonoredBounds(expected2, inward));
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}
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static void testWholeItemWideningIsStillRefused() {
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// The defect the gate was built for: a 1 s window inside a 30 s item printing
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// the whole item.
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const long long expected = frameCountFor(5.0, 6.0, 48000);
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CHECK(expected == 48000);
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CHECK(!renderHonoredBounds(expected, 30 * 48000));
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}
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static void testLargeShortfallIsStillRefused() {
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const long long expected = frameCountFor(0.0, 4.067797, 48000);
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CHECK(!renderHonoredBounds(expected, 190000));
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// Two frames is the smallest miss outside the tolerance, in both directions —
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// the tolerance is one frame and stays one frame.
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CHECK(!renderHonoredBounds(expected, expected - 2));
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CHECK(!renderHonoredBounds(expected, expected + 2));
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}
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static void testEmptyRenderIsRefusedAgainstARealWindow() {
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// A render that produced nothing is a bounds miss like any other. A render whose
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// frames could not be MEASURED never reaches this predicate — shell/capture/
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// render_bounds_gate refuses it before the comparison.
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CHECK(!renderHonoredBounds(48000, 0));
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}
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// --- itemExtentPrintsWindow: can the selected-items source express this? -----
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static void testRangeInsideItemCannotBeExpressed() {
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// The defect this whole module exists for: a 1 s selection inside a 30 s item.
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// The selected-items source would print the item's 30 s, not the 1 s asked for,
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// so the capture must NOT take that path.
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CHECK(!itemExtentPrintsWindow(5.0, 6.0, /*item*/ 0.0, 30.0, 48000));
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}
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static void testRangeWiderThanItemCannotBeExpressedEither() {
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// The same violation in the other direction: a 10 s selection over a 6 s item
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// would print 6 s. Under-printing is a bounds violation exactly as much as
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// over-printing is.
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CHECK(!itemExtentPrintsWindow(0.0, 10.0, /*item*/ 2.0, 8.0, 48000));
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}
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static void testEachEdgeAloneDisqualifies() {
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// Matching start, drifting end.
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CHECK(!itemExtentPrintsWindow(2.0, 8.0, 2.0, 9.0, 48000));
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// Matching end, drifting start.
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CHECK(!itemExtentPrintsWindow(2.0, 8.0, 1.0, 8.0, 48000));
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}
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static void testExtentEqualToWindowIsExpressible() {
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// The regression floor: a capture whose range IS the item's extent keeps the
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// selected-items render, byte-identical to what it produces today.
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CHECK(itemExtentPrintsWindow(2.0, 8.0, 2.0, 8.0, 48000));
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}
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static void testSubFrameDriftStillPrintsTheSameFrames() {
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// A time selection snapped a fraction of a sample off the item edge prints the
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// identical frames, so it must NOT be pushed onto the time-bounded path — that
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// would swap the render mechanism under a capture that was already exact.
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const double eighthOfAFrameAt48k = 1.0 / (48000.0 * 8.0);
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CHECK(itemExtentPrintsWindow(2.0 + eighthOfAFrameAt48k, 8.0 - eighthOfAFrameAt48k,
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2.0, 8.0, 48000));
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// A full frame of drift is a real difference and must disqualify.
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const double oneFrameAt48k = 1.0 / 48000.0;
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CHECK(!itemExtentPrintsWindow(2.0 + oneFrameAt48k, 8.0, 2.0, 8.0, 48000));
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}
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static void testUnknownRateFallsBackToExactEquality() {
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// With no project rate there is no frame grid to compare on. Exact equality
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// still recognizes the regression floor...
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CHECK(itemExtentPrintsWindow(2.0, 8.0, 2.0, 8.0, 0));
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// ...and anything else takes the time-bounded render, which honors the request
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// whatever the rate turns out to be.
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const double eighthOfAFrameAt48k = 1.0 / (48000.0 * 8.0);
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CHECK(!itemExtentPrintsWindow(2.0 + eighthOfAFrameAt48k, 8.0, 2.0, 8.0, 0));
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CHECK(!itemExtentPrintsWindow(5.0, 6.0, 0.0, 30.0, 0));
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}
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static void testMultiItemUnionExtent() {
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// Two items spanning 1..4 and 6..9 present a 1..9 union extent to the render.
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// A selection over the whole union is expressible; one over only the first
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// item's half is not.
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CHECK(itemExtentPrintsWindow(1.0, 9.0, 1.0, 9.0, 48000));
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CHECK(!itemExtentPrintsWindow(1.0, 4.0, 1.0, 9.0, 48000));
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}
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// --- msFlooredEndFrameCount: the shape both live short renders had ------------
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static void testMillisecondFlooredEndReproducesBothShortRenders() {
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// Both DAW observations, as arithmetic. 48 kHz, TailMode::None, start at 0: the
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// requested window's count, and the count its end floored to the millisecond
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// holds — which is what each render actually printed.
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CHECK(frameCountFor(0.0, 4.067797, 48000) == 195254);
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CHECK(msFlooredEndFrameCount(0.0, 4.067797, 48000) == 195216);
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CHECK(frameCountFor(0.0, 4.067797, 48000) -
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msFlooredEndFrameCount(0.0, 4.067797, 48000) == 38);
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CHECK(frameCountFor(0.0, 1.655172, 48000) == 79448);
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CHECK(msFlooredEndFrameCount(0.0, 1.655172, 48000) == 79440);
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CHECK(frameCountFor(0.0, 1.655172, 48000) -
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msFlooredEndFrameCount(0.0, 1.655172, 48000) == 8);
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}
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static void testTheSixDecimalDisplayDidNotCreateTheEffect() {
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// Both reported ends were printed to six decimals by the refusal. Each is one 4/4
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// bar — at 59 BPM and at 145 BPM — so the full-precision doubles behind them are
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// 240/59 and 240/145. Same counts either way: the display rounding is not what
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// produces the shortfall.
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CHECK(frameCountFor(0.0, 240.0 / 59.0, 48000) == 195254);
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CHECK(msFlooredEndFrameCount(0.0, 240.0 / 59.0, 48000) == 195216);
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CHECK(frameCountFor(0.0, 240.0 / 145.0, 48000) == 79448);
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CHECK(msFlooredEndFrameCount(0.0, 240.0 / 145.0, 48000) == 79440);
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}
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static void testWindowAlreadyOnTheMillisecondGridLosesNothing() {
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// The "sometimes it works" case: a bar at 120 BPM is exactly 2 s.
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CHECK(msFlooredEndFrameCount(0.0, 2.0, 48000) == frameCountFor(0.0, 2.0, 48000));
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// The binary-representation trap a bare floor would fall into. The premise, not an
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// outcome: 1.007 s is a whole millisecond that really does land BELOW 1007 ms in
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// double, so flooring it without a tolerance drops a millisecond from a window
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// already on the grid.
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CHECK(1.007 * 1000.0 < 1007.0);
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CHECK(frameCountFor(0.0, 1.007, 48000) == 48336);
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CHECK(msFlooredEndFrameCount(0.0, 1.007, 48000) == 48336);
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// Same end reached from a non-zero start, so nothing here rests on the window
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// beginning at 0.
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CHECK(msFlooredEndFrameCount(0.5, 1.007, 48000) ==
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frameCountFor(0.5, 1.007, 48000));
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}
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static void testOneFrameOfRemainderStillFloors() {
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// The whole-millisecond tolerance must sit far below a frame, or it would swallow
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// the very remainder this diagnostic exists to find. A remainder JUST BELOW a
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// millisecond boundary is the discriminating case: one frame short of 1.0 s is
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// 999.979166 ms, only ~0.0208 ms off the next whole millisecond. The shipped
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// nanosecond tolerance still floors it down; a tolerance any wider than ~0.021 ms
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// would snap it up to the millisecond instead and this test would then see 48000,
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// not 47952 — which is what would fail if the tolerance regressed to something
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// that wide.
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const double oneFrame = 1.0 / 48000.0;
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CHECK(frameCountFor(0.0, 1.0 - oneFrame, 48000) == 47999);
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CHECK(msFlooredEndFrameCount(0.0, 1.0 - oneFrame, 48000) == 47952);
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}
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static void testMillisecondFloorAt44100WhereAMillisecondIsNotWholeFrames() {
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// 44.1 kHz: a millisecond is 44.1 frames, so a floored end cannot be described as
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// dropping a whole number of frames — the count still resolves exactly.
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CHECK(frameCountFor(0.0, 0.0105, 44100) == 463);
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CHECK(msFlooredEndFrameCount(0.0, 0.0105, 44100) == 441);
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// And a window that IS on the millisecond grid there is untouched, even though its
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// edge is not on a frame boundary.
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CHECK(frameCountFor(0.0, 0.010, 44100) == 441);
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CHECK(msFlooredEndFrameCount(0.0, 0.010, 44100) == 441);
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}
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static void testASubMillisecondStartWouldNotHideItself() {
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// Both observations started at 0.000000s, the one value that hides a start-side
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// truncation. A window whose START carries a sub-millisecond remainder counts from
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// that exact start...
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const double start = 1.0001724, end = 2.0001724;
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CHECK(frameCountFor(start, end, 48000) == 48000);
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// ...so a start floored to the millisecond would print a DIFFERENT count — 8 frames
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// more, the same remainder the second observation lost off its end. A start-side
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// truncation is therefore visible to the same frame-count gate, not silent.
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CHECK(frameCountFor(1.000, end, 48000) == 48008);
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CHECK(!renderHonoredBounds(frameCountFor(start, end, 48000),
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frameCountFor(1.000, end, 48000)));
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}
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// --- describeBoundsDrift: the read-back's verdict ------------------------------
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static void testBoundsThatReadBackUnchangedDescribeNothing() {
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// The answer that proves the request crossed into REAPER intact — including for a
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// window whose end is nowhere near a millisecond boundary.
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CHECK(describeBoundsDrift(0.0, 4.067797, 0.0, 4.067797, 48000).empty());
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CHECK(describeBoundsDrift(1.0001724, 2.0001724, 1.0001724, 2.0001724, 48000).empty());
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}
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static void testADriftedEndNamesBothWindowsAndBothCounts() {
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const std::string s =
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describeBoundsDrift(0.0, 4.067797, 0.0, 4.067, 48000);
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CHECK(!s.empty());
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// Both counts as literals from the DAW observation, not re-derived from the same
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// functions the sentence was built with.
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CHECK(contains(s, "195254")); // what the request asks for
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CHECK(contains(s, "195216")); // what the drifted window would hold
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CHECK(contains(s, "48000 Hz"));
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}
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static void testTheReportPrintsEnoughDigitsToShowTheDrift() {
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// A report whose two numbers print identically is evidence of nothing. Two ends a
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// single ULP apart — far under the sixth decimal a shorter rendering would stop at
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// — must still read as two different numbers. Pinned as the actual %.17g literals
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// (not the needle the two ends share, "s)", which occurs at every precision and so
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// proves nothing): a report that regressed to a shorter format like %.6g would
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// print the same six significant digits for both ends, and these two `contains`
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// checks would then fail.
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const double asked = 4.067797;
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const double stored = std::nextafter(asked, 5.0);
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char askedBuf[32], storedBuf[32];
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std::snprintf(askedBuf, sizeof(askedBuf), "%.17g", asked);
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std::snprintf(storedBuf, sizeof(storedBuf), "%.17g", stored);
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CHECK(std::string(askedBuf) != std::string(storedBuf));
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const std::string s = describeBoundsDrift(0.0, asked, 0.0, stored, 48000);
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CHECK(!s.empty());
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CHECK(contains(s, askedBuf));
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CHECK(contains(s, storedBuf));
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}
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static void testADriftedStartIsCaughtToo() {
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// The edge both observations could not test.
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const std::string s = describeBoundsDrift(1.0001724, 2.0, 1.000, 2.0, 48000);
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CHECK(!s.empty());
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CHECK(contains(s, "1.0001724"));
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}
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static void testAnUnknownRateStillReportsTheDriftWithoutFrames() {
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// A project that never pinned a rate reads 0. The drift is still worth saying; a
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// frame count over an unknown rate is not.
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const std::string s = describeBoundsDrift(0.0, 4.067797, 0.0, 4.067, 0);
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CHECK(!s.empty());
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CHECK(!contains(s, "frames"));
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}
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int main() {
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testFrameCountIsExactNotRounded();
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testFrameCountIsADifferenceOfIndicesNotADuration();
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testFrameCountRefusesEmptyInvertedAndUnknownRate();
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testWindowStartingAtExactlyZero();
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testNonFrameAlignedWindowAcceptsItsAdjacentCounts();
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testLengthDerivedAndSameConventionRenderersStayWithinOneFrame();
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testMixedEdgeConventionsCanMissByTwoAndAreRefused();
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testWholeItemWideningIsStillRefused();
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testLargeShortfallIsStillRefused();
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testEmptyRenderIsRefusedAgainstARealWindow();
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testRangeInsideItemCannotBeExpressed();
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testRangeWiderThanItemCannotBeExpressedEither();
|
|
testEachEdgeAloneDisqualifies();
|
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testExtentEqualToWindowIsExpressible();
|
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testSubFrameDriftStillPrintsTheSameFrames();
|
|
testUnknownRateFallsBackToExactEquality();
|
|
testMultiItemUnionExtent();
|
|
testMillisecondFlooredEndReproducesBothShortRenders();
|
|
testTheSixDecimalDisplayDidNotCreateTheEffect();
|
|
testWindowAlreadyOnTheMillisecondGridLosesNothing();
|
|
testOneFrameOfRemainderStillFloors();
|
|
testMillisecondFloorAt44100WhereAMillisecondIsNotWholeFrames();
|
|
testASubMillisecondStartWouldNotHideItself();
|
|
testBoundsThatReadBackUnchangedDescribeNothing();
|
|
testADriftedEndNamesBothWindowsAndBothCounts();
|
|
testTheReportPrintsEnoughDigitsToShowTheDrift();
|
|
testADriftedStartIsCaughtToo();
|
|
testAnUnknownRateStillReportsTheDriftWithoutFrames();
|
|
|
|
if (g_fail) { std::printf("%d check(s) FAILED\n", g_fail); return 1; }
|
|
std::printf("render_window: all checks passed\n");
|
|
return 0;
|
|
}
|