Files
reasampler/tests/test_render_settings.cpp
daniel 4c7e0507a1 Fix vacuous bounds test and stale/circular comments from the settle
Replace the self-comparing render-window loop with a genuinely discriminating
floor-vs-exact check; correct two stale claims; mark the Auto/Manual floor-parity
premise as unverified; drop the STARTPOS/ENDPOS comment's circular justification.
2026-08-02 17:08:11 -04:00

508 lines
25 KiB
C++

// Standalone tests for reasampler::render_settings — no REAPER, no framework.
// Covers the pure pieces behind the capture family: the source-mode ->
// RENDER_SETTINGS bit mapping, the TailMode -> RENDER_* (tail/normalize/trim-end)
// mapping + the -72 dB derived ratio + the 8 s manual clamp, P_RAZOREDITS parsing
// -> ranges + union, scope -> source mode, range inference (razor-else-time), the
// FX-bypass plan (corrects the "items captured through parent FX" defect), and the
// capture-action taxonomy table (stable ids, scope x tail-variant matrix).
#include "../src/core/capture/render_settings.h"
#include <cmath>
#include <cstdio>
#include <cstring>
#include <set>
#include <string>
using namespace reasampler;
using namespace reasampler::capture;
static int g_fail = 0;
#define CHECK(cond) do { if(!(cond)) { \
std::printf("FAIL line %d: %s\n", __LINE__, #cond); ++g_fail; } } while(0)
// --- renderSettingsFor: wet-only bit mapping ---------------------------------
static void testMasterMixWet() {
// Master mix -> value 0 (no source bits), supported.
RenderSettingsChoice c = renderSettingsFor(SourceMode::MasterMix, 1.0);
CHECK(c.settings == kRenderMasterMix);
CHECK(c.supported);
// TimeSelection aliases master mix — same result.
CHECK(renderSettingsFor(SourceMode::TimeSelection, 1.0).settings == kRenderMasterMix);
// wetDry argument is irrelevant (all three-scope capture actions are wet); passing 0.0
// must still yield the same wet master-mix bits.
CHECK(renderSettingsFor(SourceMode::MasterMix, 0.0).settings == kRenderMasterMix);
}
static void testSelectedTracksWet() {
// Selected tracks -> via master (&128), header-confirmed.
RenderSettingsChoice c = renderSettingsFor(SourceMode::SelectedTracks, 1.0);
CHECK(c.settings == kRenderSelTracksViaMaster);
CHECK(c.supported);
}
static void testSelectedItemsSingleFile() {
// Items render to ONE file (single-file bit set) so N items -> 1 bank entry.
RenderSettingsChoice c = renderSettingsFor(SourceMode::SelectedItems, 1.0);
CHECK((c.settings & kRenderSelItems) != 0);
CHECK((c.settings & kRenderSingleFile) != 0);
CHECK(c.supported);
}
static void testRazorSingleFile() {
// Razor edits render to ONE file (same single-file rationale as items).
RenderSettingsChoice c = renderSettingsFor(SourceMode::RazorArea, 1.0);
CHECK((c.settings & kRenderRazorEdits) != 0);
CHECK((c.settings & kRenderSingleFile) != 0);
CHECK(c.supported);
}
static void testRealtimeIsUnsupportedOffline() {
// The realtime mode is not an offline-render source — must report unsupported
// so the offline backend refuses it rather than rendering the master mix.
CHECK(!renderSettingsFor(SourceMode::Realtime, 1.0).supported);
}
static void testEveryRenderSourceLabelIsPinnedVerbatim() {
// docs/VERIFICATION.md's short-render bullet asks Daniel to report the refusal
// line back verbatim, and that line always carries the render source
// (render_bounds_gate.cpp appends "Render source: <label>."), so every label
// is pinned to its literal — a typo in any of them breaks the report that
// quotes it, and only a literal catches that.
CHECK(std::strcmp(renderSourceLabel(SourceMode::MasterMix), "master mix") == 0);
CHECK(std::strcmp(renderSourceLabel(SourceMode::TimeSelection), "master mix") == 0);
CHECK(std::strcmp(renderSourceLabel(SourceMode::SelectedTracks),
"selected tracks via master") == 0);
CHECK(std::strcmp(renderSourceLabel(SourceMode::SelectedItems),
"selected media items") == 0);
CHECK(std::strcmp(renderSourceLabel(SourceMode::RazorArea), "razor edits") == 0);
CHECK(std::strcmp(renderSourceLabel(SourceMode::Realtime), "realtime record") == 0);
}
static void testLabelsSeparateExactlyWhatTheRenderSeparates() {
// The labels partition the offline modes the way RENDER_SETTINGS does, and no
// finer: same bits => same words (MasterMix/TimeSelection both render the master
// mix, unqualified — both hand their window over the same time-selection bounds
// mode), different bits => different words. Naming two modes apart that render
// identically would put a distinction in a bug report that does not exist in
// the render.
const SourceMode offline[] = {
SourceMode::MasterMix, SourceMode::TimeSelection, SourceMode::SelectedTracks,
SourceMode::SelectedItems, SourceMode::RazorArea,
};
constexpr std::size_t n = sizeof(offline) / sizeof(offline[0]);
for (std::size_t i = 0; i < n; ++i) {
const char* label = renderSourceLabel(offline[i]);
CHECK(label != nullptr && label[0] != '\0');
CHECK(std::strcmp(label, "unknown") != 0);
CHECK(renderSettingsFor(offline[i], 1.0).supported);
for (std::size_t j = i + 1; j < n; ++j) {
const bool sameRender = renderSettingsFor(offline[i], 1.0).settings ==
renderSettingsFor(offline[j], 1.0).settings;
const bool sameLabel =
std::strcmp(label, renderSourceLabel(offline[j])) == 0;
CHECK(sameRender == sameLabel);
}
}
// Realtime is not an offline render source at all, so it names its own mechanism
// rather than a RENDER_SETTINGS value — outside the partition above by design.
CHECK(!renderSettingsFor(SourceMode::Realtime, 1.0).supported);
CHECK(std::strcmp(renderSourceLabel(SourceMode::Realtime),
renderSourceLabel(SourceMode::MasterMix)) != 0);
}
// --- tail: TailMode -> RENDER_* mapping (docs/product/capture-tail.md) --------
static TailRenderSettings tailFor(TailMode mode, double manualTailMs) {
return tailRenderSettingsFor(mode, manualTailMs);
}
static void testTailNoneIsExactBounds() {
// None -> exact bounds, byte-identical to the pre-tail capture: tail flag clear,
// 0 ms, disable-all normalize (the current default), no trim. Asserting the exact
// bit values (not just "some value") pins the byte-identical contract: if the
// mapping regressed to set a tail bit or a non-disable-all normalize, this fails.
TailRenderSettings t = tailFor(TailMode::None, 0.0);
CHECK(t.tailFlag == kTailFlagNone); // 0
CHECK(t.tailMs == 0.0);
CHECK(t.normalize == kNormalizeDisableAll); // 262144
CHECK(t.trimEnd == 0.0);
// manualTailMs must be ignored for None (a stray tail from a leftover ms is the bug).
TailRenderSettings t2 = tailFor(TailMode::None, 5000.0);
CHECK(t2.tailFlag == kTailFlagNone);
CHECK(t2.tailMs == 0.0);
}
static void testTailAutoIsSurgicalTrim() {
// Auto -> the time-selection tail bit, 8 s cap, SURGICAL normalize (ONLY &32768),
// and the -72 dB TRIMEND ratio. The disable-all bit must NOT be set (it is
// semantically opposed to trim — this catches a regression to the None normalize).
TailRenderSettings t = tailFor(TailMode::Auto, 0.0);
CHECK(t.tailFlag == kTailFlagTimeSelection); // &4
CHECK(t.tailMs == kMaxTailMs); // 8000
CHECK(t.normalize == kNormalizeTrimEnd); // exactly 32768, nothing else
CHECK((t.normalize & kNormalizeDisableAll) == 0); // disable-all is NOT set
// TRIMEND is the derived -72 dB ratio ~= 0.00025119 (the DAW-confirm value).
CHECK(std::fabs(t.trimEnd - 0.00025119) < 1e-8);
// manualTailMs is ignored for Auto (Auto always uses the 8 s cap).
CHECK(tailFor(TailMode::Auto, 3000.0).tailMs == kMaxTailMs);
}
static void testAutoTrimRatioDerivesFromDb() {
// The ratio must DERIVE from the -72 dB constant (10^(dB/20)), not be a hardcoded
// float — recompute it independently and require an exact match with the mapping.
double expected = std::pow(10.0, kAutoTrimThresholdDb / 20.0);
CHECK(autoTrimEndRatio() == expected);
CHECK(tailFor(TailMode::Auto, 0.0).trimEnd == expected);
// Sanity: -72 dB is well below unity but above zero.
CHECK(expected > 0.0 && expected < 0.001);
}
static void testTailManualFixedNoTrim() {
// Manual -> the time-selection tail bit, the requested ms (within cap), disable-all
// normalize (no trim). A Manual capture is a fixed tail, so it keeps today's
// disable-all exactly like the no-tail path.
TailRenderSettings t = tailFor(TailMode::Manual, 2500.0);
CHECK(t.tailFlag == kTailFlagTimeSelection);
CHECK(t.tailMs == 2500.0);
CHECK(t.normalize == kNormalizeDisableAll);
CHECK(t.trimEnd == 0.0);
}
static void testTailManualClampsToCap() {
// The 8 s cap is a runaway guard that applies to Manual too: ms > 8000 -> 8000.
CHECK(tailFor(TailMode::Manual, 9000.0).tailMs == kMaxTailMs);
CHECK(tailFor(TailMode::Manual, 8000.0).tailMs == kMaxTailMs);
// Below the cap is passed through unchanged.
CHECK(tailFor(TailMode::Manual, 100.0).tailMs == 100.0);
// A negative request floors to 0 (no negative tail leaks into RENDER_TAILMS).
CHECK(tailFor(TailMode::Manual, -50.0).tailMs == 0.0);
}
// --- bounds mode: RENDER_BOUNDSFLAG + the tail bit paired with it ---------------
static void testTheBoundsModeIsTheTimeSelectionAndItsTailBitIsPairedWithIt() {
// Literals from the SDK header, pinned as numbers so neither can drift onto
// another bounds mode's value: RENDER_BOUNDSFLAG 2 = time selection (~3042), and
// RENDER_TAILFLAG's bits are keyed per bounds mode, &4 = time selection (~3047).
// The custom-bounds pair (0 / &1) is DELIBERATELY absent — that mode floors the
// window to the millisecond (render_settings.h) and must not come back.
CHECK(kRenderBoundsTimeSelection == 2);
CHECK(kTailFlagTimeSelection == 4);
CHECK(kTailFlagNone == 0);
}
static void testEveryTailModeSetsTheBitTheBoundsModeReads() {
// A tail set under a different bounds mode's bit renders no tail at all, so both
// tail-bearing modes must carry &4 — a fix applied to Auto alone would leave
// Manual silently tailless.
for (TailMode mode : {TailMode::Auto, TailMode::Manual})
CHECK(tailRenderSettingsFor(mode, 2500.0).tailFlag == kTailFlagTimeSelection);
// None is exact bounds: no tail bit at all, whatever ms it is handed.
CHECK(tailRenderSettingsFor(TailMode::None, 5000.0).tailFlag == kTailFlagNone);
CHECK(tailRenderSettingsFor(TailMode::None, 0.0).tailFlag == kTailFlagNone);
}
// --- realtimeRecordWindowEnd: the T2 record-window extension -----------------
static void testRealtimeWindowNoneIsExact() {
// None -> the exact range end, no extra recording (byte-identical to today).
CHECK(realtimeRecordWindowEnd(TailMode::None, 12.5, 2000.0) == 12.5);
// manualTailMs is ignored for None.
CHECK(realtimeRecordWindowEnd(TailMode::None, 12.5, 0.0) == 12.5);
}
static void testRealtimeWindowAutoAddsCap() {
// Auto -> range end + the 8 s runaway cap (trimmed later by the decay scan).
CHECK(realtimeRecordWindowEnd(TailMode::Auto, 10.0, 0.0) == 10.0 + kMaxTailSeconds);
// manualTailMs is ignored for Auto (the cap is fixed).
CHECK(realtimeRecordWindowEnd(TailMode::Auto, 10.0, 3000.0) == 10.0 + kMaxTailSeconds);
}
static void testRealtimeWindowManualAddsClampedLength() {
// Manual -> range end + the set length in seconds (fixed, no trim).
CHECK(realtimeRecordWindowEnd(TailMode::Manual, 5.0, 2000.0) == 5.0 + 2.0);
// Clamped to the 8 s cap: > 8000 ms -> +8 s.
CHECK(realtimeRecordWindowEnd(TailMode::Manual, 5.0, 9000.0) == 5.0 + kMaxTailSeconds);
// Negative floors to 0 -> no extra window (never records before the range end).
CHECK(realtimeRecordWindowEnd(TailMode::Manual, 5.0, -100.0) == 5.0);
}
// --- parseRazorEdits: P_RAZOREDITS string -> ranges --------------------------
static void testParseSingleTrackAudioArea() {
// One track-audio triple: start end "" (empty quoted GUID = track audio).
auto r = parseRazorEdits("1.5 3.25 \"\"");
CHECK(r.size() == 1);
CHECK(r[0].startSeconds == 1.5);
CHECK(r[0].endSeconds == 3.25);
}
static void testParseMultipleAreas() {
auto r = parseRazorEdits("0.0 1.0 \"\" 2.0 4.0 \"\"");
CHECK(r.size() == 2);
CHECK(r[0].startSeconds == 0.0 && r[0].endSeconds == 1.0);
CHECK(r[1].startSeconds == 2.0 && r[1].endSeconds == 4.0);
}
static void testParseSkipsEnvelopeLaneAreas() {
// A triple whose GUID is a real {…} is an ENVELOPE-lane area — skipped, since
// razor captures render track audio only. Only the track-audio triple survives.
auto r = parseRazorEdits(
"1.0 2.0 \"\" 3.0 4.0 {AAAAAAAA-BBBB-CCCC-DDDD-EEEEEEEEEEEE}");
CHECK(r.size() == 1);
CHECK(r[0].startSeconds == 1.0 && r[0].endSeconds == 2.0);
}
static void testParseEmptyAndMalformed() {
CHECK(parseRazorEdits("").empty());
// Empty/inverted range dropped (end <= start).
CHECK(parseRazorEdits("5.0 5.0 \"\"").empty());
CHECK(parseRazorEdits("5.0 1.0 \"\"").empty());
// Trailing garbage token in a time field -> that triple dropped, not a crash.
CHECK(parseRazorEdits("1.0x 2.0 \"\"").empty());
// A dangling partial triple (missing GUID token) is ignored.
CHECK(parseRazorEdits("1.0 2.0").empty());
}
static void testRazorUnionBounds() {
// Union = min start .. max end across all areas (the exact render window).
std::vector<RazorRange> ranges = {{2.0, 3.0}, {0.5, 1.0}, {4.0, 6.5}};
RazorRange u = razorUnionBounds(ranges);
CHECK(u.startSeconds == 0.5);
CHECK(u.endSeconds == 6.5);
// Empty -> {0,0} sentinel (caller treats as "no razor area").
RazorRange empty = razorUnionBounds({});
CHECK(empty.startSeconds == 0.0 && empty.endSeconds == 0.0);
}
// --- sourceModeForScope: scope -> render source mode -------------------------
static void testScopeSourceModes() {
// Track scope always renders its selected tracks (there is no master scope — to
// capture the master you render a track), whatever the window.
CHECK(sourceModeForScope(CaptureScope::Track, true) == SourceMode::SelectedTracks);
CHECK(sourceModeForScope(CaptureScope::Track, false) == SourceMode::SelectedTracks);
// Item scope renders the selected items only when their extent already prints
// the requested window.
CHECK(sourceModeForScope(CaptureScope::Item, true) == SourceMode::SelectedItems);
// Every scope's source mode is an offline-supported render source.
CHECK(renderSettingsFor(sourceModeForScope(CaptureScope::Item, true), 1.0).supported);
CHECK(renderSettingsFor(sourceModeForScope(CaptureScope::Track, true), 1.0).supported);
}
static void testRangedItemScopeRendersTimeBounded() {
// The widening defect pinned at the bit level. A window the item extent does NOT
// print must never reach the &32 selected-items source: that source is INFERRED
// (unverified — src/core/capture/CLAUDE.md §Gotchas) to take its bounds from the
// item extents, so RENDER_STARTPOS/ENDPOS cannot narrow it and the capture widens
// to the whole item. The ranged item capture renders through the selected-tracks
// source instead, which IS time-bounded.
const SourceMode ranged = sourceModeForScope(CaptureScope::Item, false);
CHECK(ranged == SourceMode::SelectedTracks);
const RenderSettingsChoice c = renderSettingsFor(ranged, 1.0);
CHECK(c.supported);
CHECK((c.settings & kRenderSelItems) == 0); // the widening bit is absent
CHECK((c.settings & kRenderSingleFile) == 0); // and its single-file companion
CHECK(c.settings == kRenderSelTracksViaMaster);
// The regression floor, at the same resolution: an item capture whose window IS
// the item extent still renders through &32 | single-file, unchanged.
const RenderSettingsChoice floorCase =
renderSettingsFor(sourceModeForScope(CaptureScope::Item, true), 1.0);
CHECK((floorCase.settings & kRenderSelItems) != 0);
CHECK((floorCase.settings & kRenderSingleFile) != 0);
// FX scope is orthogonal to the re-source: a ranged item capture still hears
// take/item FX only (this is what makes the swap safe).
CHECK(fxBypassPlanFor(CaptureScope::Item).bypassSelfFx);
}
static void testMultiTrackStemRenderIsNamedForRefusal() {
// The one shape that cannot land: a selected-tracks render over more than one
// track. That source is INFERRED to render one file per track with no single-file
// bit available (unverified; see src/shell/capture/CLAUDE.md §Gotchas for what that
// inference rests on), so N stems would collapse onto one render pattern and one
// track's audio would land as a successful capture.
CHECK(isMultiTrackStemRender(SourceMode::SelectedTracks, 2));
CHECK(isMultiTrackStemRender(SourceMode::SelectedTracks, 7));
// One track is the common case for BOTH scopes — it must still render. This is the
// regression floor for the plain single-track track capture.
CHECK(!isMultiTrackStemRender(SourceMode::SelectedTracks, 1));
CHECK(!isMultiTrackStemRender(SourceMode::SelectedTracks, 0));
// A full-extent item capture keeps the selected-items source, whose single-file
// bit already sums a multi-track item selection into one file.
CHECK(!isMultiTrackStemRender(SourceMode::SelectedItems, 3));
// Razor's single-file bit does the same; master mix is one file by definition.
CHECK(!isMultiTrackStemRender(SourceMode::RazorArea, 3));
CHECK(!isMultiTrackStemRender(SourceMode::MasterMix, 3));
// Realtime never reaches the offline render at all (sends sum into one temp track).
CHECK(!isMultiTrackStemRender(SourceMode::Realtime, 3));
// The predicate is reachable from the mappings it guards: BOTH the ranged item
// capture's source mode and the track scope's resolve to the one it names, while a
// full-extent item capture does not.
CHECK(isMultiTrackStemRender(sourceModeForScope(CaptureScope::Item, false), 2));
CHECK(isMultiTrackStemRender(sourceModeForScope(CaptureScope::Track, false), 2));
CHECK(isMultiTrackStemRender(sourceModeForScope(CaptureScope::Track, true), 2));
CHECK(!isMultiTrackStemRender(sourceModeForScope(CaptureScope::Item, true), 2));
}
static void testRefusalMessagesAreSiblingsWithDistinctExits() {
const std::string item = multiTrackRefusalMessage(CaptureScope::Item);
const std::string track = multiTrackRefusalMessage(CaptureScope::Track);
// Both name the same reason — a shape that cannot land as one file — so a user who
// hits the mistake in either scope reads one story, not two.
CHECK(item.find("single file") != std::string::npos);
CHECK(track.find("single file") != std::string::npos);
// And both name a way out. The shared one is "one track at a time"; each scope then
// adds the exit only it has (widen the range / capture the folder).
CHECK(item.find("one track's items at a time") != std::string::npos);
CHECK(item.find("range match the items' extent") != std::string::npos);
CHECK(track.find("one track at a time") != std::string::npos);
CHECK(track.find("folder") != std::string::npos);
// Distinct texts: the track message must not be the item message's wording about
// items and ranges, which would misdescribe what the user actually did.
CHECK(item != track);
CHECK(track.find("selected items") == std::string::npos);
}
// Golden literals: docs/verify-track-scope-multitrack.md §2 quotes the track message as
// an exact console match. A substring check alone leaves that doc free to drift from
// whatever ships, so pin both strings byte-for-byte here.
static void testRefusalMessagesMatchGoldenLiterals() {
CHECK(multiTrackRefusalMessage(CaptureScope::Item) ==
"This range is narrower than the selected items, so it renders "
"through their tracks -- and those items span more than one track, "
"which this shape cannot land as a single file. Capture one track's "
"items at a time, or make the range match the items' extent.");
CHECK(multiTrackRefusalMessage(CaptureScope::Track) ==
"A track capture renders the selected tracks through the master, "
"and more than one track cannot land as a single file. Capture one "
"track at a time, or route them into a folder/bus track and capture "
"that (a folder's own output is its children summed).");
}
// --- inferRangeSource: razor-else-time (orthogonal to scope) -----------------
static void testRangeInference() {
// Razor present -> razor union wins; no razor -> time selection.
CHECK(inferRangeSource(true) == RangeSource::Razor);
CHECK(inferRangeSource(false) == RangeSource::TimeSelection);
}
// --- fxBypassPlanFor: the FX-scope invariant ----------------------------------
static void testItemScopeBypassesEverythingButTake() {
// Item = take/item FX ONLY. Bypass the item's own track FX, its ancestors, and
// the master. (If this returned bypassSelfFx=false the M7 defect — items heard
// through the track's FX — would recur; the assertion pins the fix.)
FxBypassPlan p = fxBypassPlanFor(CaptureScope::Item);
CHECK(p.bypassSelfFx);
CHECK(p.bypassAncestorFx);
CHECK(p.bypassMaster);
}
static void testTrackScopeKeepsSelfBypassesAncestorsAndMaster() {
// Track = item FX + the track's OWN FX. Keep self FX; bypass ancestors + master.
// Master stays a bypass target even though it is no longer a capture scope.
FxBypassPlan p = fxBypassPlanFor(CaptureScope::Track);
CHECK(!p.bypassSelfFx); // the whole point: the track's own FX stays live
CHECK(p.bypassAncestorFx); // no parent/folder FX
CHECK(p.bypassMaster); // no master FX
}
// --- captureActionTable: the scope taxonomy ----------------------------------
static void testTableHasBothScopes() {
const auto& table = captureActionTable();
// Two rows: item + track. No master scope, and NO tail variants — tail is a
// panel setting the capture reads at fire time, not a per-action row.
CHECK(table.size() == 2);
std::set<std::string> ids;
int item = 0, track = 0;
for (const auto& def : table) {
// Every command SUFFIX (Phase V, V4 — the channel prefix is prepended by the shell)
// is a non-empty, UNIQUE string (duplicate suffixes would collide once composed).
std::string suffix = def.commandSuffix;
CHECK(!suffix.empty());
// The suffix is NOT prefixed with the channel family here — that is composed at
// register time. A leftover "CEREBELLUM_REASAMPLER_" in the table would be a
// double-prefix bug, so assert its ABSENCE.
CHECK(suffix.rfind("CEREBELLUM_REASAMPLER_", 0) != 0);
CHECK(ids.insert(suffix).second); // false if duplicate
// Every scope resolves to a supported offline source, on BOTH the
// extent-prints-the-window path and the time-bounded one.
CHECK(renderSettingsFor(sourceModeForScope(def.scope, true), 1.0).supported);
CHECK(renderSettingsFor(sourceModeForScope(def.scope, false), 1.0).supported);
if (def.scope == CaptureScope::Item) ++item;
if (def.scope == CaptureScope::Track) ++track;
}
// Exactly one row per scope — no dupes, no gaps, no tail variants.
CHECK(item == 1);
CHECK(track == 1);
}
static void testScopeActionIdsAreTheShippedStrings() {
// Pin the shipped CAPTURE_ITEM / CAPTURE_TRACK SUFFIXES so a future edit that silently
// changes them (breaking user keybindings once composed with the channel prefix) fails
// the gate. The full stable id is prefix + suffix ("CEREBELLUM_REASAMPLER_CAPTURE_ITEM").
const auto& table = captureActionTable();
std::string itemId, trackId;
for (const auto& def : table) {
if (def.scope == CaptureScope::Item) itemId = def.commandSuffix;
if (def.scope == CaptureScope::Track) trackId = def.commandSuffix;
}
CHECK(itemId == "CAPTURE_ITEM");
CHECK(trackId == "CAPTURE_TRACK");
}
int main() {
testMasterMixWet();
testSelectedTracksWet();
testSelectedItemsSingleFile();
testRazorSingleFile();
testRealtimeIsUnsupportedOffline();
testEveryRenderSourceLabelIsPinnedVerbatim();
testLabelsSeparateExactlyWhatTheRenderSeparates();
testTailNoneIsExactBounds();
testTailAutoIsSurgicalTrim();
testAutoTrimRatioDerivesFromDb();
testTailManualFixedNoTrim();
testTailManualClampsToCap();
testTheBoundsModeIsTheTimeSelectionAndItsTailBitIsPairedWithIt();
testEveryTailModeSetsTheBitTheBoundsModeReads();
testRealtimeWindowNoneIsExact();
testRealtimeWindowAutoAddsCap();
testRealtimeWindowManualAddsClampedLength();
testParseSingleTrackAudioArea();
testParseMultipleAreas();
testParseSkipsEnvelopeLaneAreas();
testParseEmptyAndMalformed();
testRazorUnionBounds();
testScopeSourceModes();
testRangedItemScopeRendersTimeBounded();
testMultiTrackStemRenderIsNamedForRefusal();
testRefusalMessagesAreSiblingsWithDistinctExits();
testRefusalMessagesMatchGoldenLiterals();
testRangeInference();
testItemScopeBypassesEverythingButTake();
testTrackScopeKeepsSelfBypassesAncestorsAndMaster();
testTableHasBothScopes();
testScopeActionIdsAreTheShippedStrings();
if (g_fail == 0) std::printf("render_settings: all tests passed\n");
else std::printf("render_settings: %d CHECK(s) FAILED\n", g_fail);
return g_fail == 0 ? 0 : 1;
}