Files
msd-core/docs/TESTING-SUITES.md
Tom Boucher 1c1af70a4b refactor(#2724): delete the committed golden fixtures and size baselines (#2767)
* test(#2724): delete golden-install-parity fixtures, test, and generator

Removes the 19 committed path->hash manifests, the two per-file size
baselines, tests/golden-install-parity.test.cjs, and
scripts/gen-golden-install-parity-zcode.cjs. These were pure functions
of the source tree (ADR-2719); the differential attribution check
(tests/emitted-attribution.test.cjs + tests/emitted-provenance.test.cjs)
is now the sole gate for emitted-artifact propagation.

tests/fixtures/install-tree/*.json and tests/golden-install-tree.test.cjs
are unchanged (ADR-2719 section 7 exception).

Follow-up commits fix the resulting bookkeeping: scripts/ci-test-scope.cjs's
existence guard, .gitattributes, package.json scripts, the emitted-provenance
totality guard's IO, the differential check's baseline acquisition, CI
wiring to publish/restore the baseline artifact, and docs.

* refactor(#2724): make the differential attribution check self-sufficient

Three fixes required to delete the golden fixtures without breaking CI:

- scripts/ci-test-scope.cjs: remove tests/golden-install-parity.test.cjs
  from the three rules that named it. #2759's missingRuleTestFiles guard
  hard-throws at module load if a rule names a test file absent from
  disk, which would break the changes job on every PR the moment the
  fixture-deletion commit landed.

- tests/helpers/emitted-provenance.cjs: loadManifests() read the
  committed golden fixture directory. With that directory deleted at
  every future ref, this would throw at module load forever, taking
  the Phase 2 totality guard down with it. Rebuilt from real installer
  spawns (MANIFEST_FAMILIES + runMinimalInstall + buildParityManifest),
  the same shape emitted-runtime.cjs's currentManifests() already uses.

- tests/emitted-attribution.test.cjs / tests/helpers/emitted-runtime.cjs:
  the real-tree test's baseline acquisition swaps from
  baselineManifestsAtRef(base) (git show at a ref that no longer carries
  fixtures) to resolveBaseline()'s documented precedence: env, then the
  on-disk cache, then an in-job build. The build fallback
  (buildBaselineAtRef, new) checks out base into a throwaway git
  worktree and runs the new scripts/gen-emitted-baseline.cjs there --
  no npm ci needed, since bin/install.js and the test helper shells are
  Node-builtins-only. That script also publishes the baseline artifact
  from CI's push-to-next job (wired in a follow-up commit).

* refactor(#2724): retire the merge-driver bridge and per-file size baselines

The Phase 1 bridge (#2721) is retired now that the artifacts it guarded
are deleted: scripts/git-merge-regen-driver.cjs, its test, and the
'setup:merge-driver' npm script are removed, and the .gitattributes
merge=gsd-regen/linguist-generated block for the three deleted-path
globs is dropped. tests/fixtures/install-tree/*.json keeps its normal
merge behavior, unchanged (ADR-2719 section 7).

scripts/update-size-baseline.cjs and its test are removed: their sole
purpose was regenerating tests/workflow-size-baseline.json and
tests/agent-size-baseline.json, both deleted. The 'size:baseline' npm
script and its step in 'regen:derived' go with it. The per-file
baseline describe blocks in tests/workflow-size-budget.test.cjs and
tests/agent-size-budget.test.cjs are removed for the same reason; the
independent loose-tier hard caps are untouched. The differential
attribution check's size ratchet (tests/emitted-diff.cjs, already
shipped in #2723) is the replacement anti-creep mechanism.

'npm run gen:golden' is replaced by 'npm run gen:install-tree', which
keeps regenerating tests/fixtures/install-tree/*.json (the one artifact
family ADR-2719 section 7 keeps committed); tests/golden-install-tree.test.cjs's
error messages point at the new command name.

tests/golden-parity-single-source.test.cjs's anti-divergence guard
(#2266) is retargeted from the two deleted golden-parity consumers to
their two replacements (tests/helpers/emitted-runtime.cjs and
tests/helpers/emitted-provenance.cjs), which import buildParityManifest
the same way — the divergence risk the guard exists for is unchanged.

Also wires CI: a new publish-emitted-baseline job runs
scripts/gen-emitted-baseline.cjs after a push to next and caches the
result keyed on the sha; the test and test-full jobs restore that cache
on pull_request events, keyed on the PR's base sha, and export
GSD_EMITTED_BASELINE for tests/emitted-attribution.test.cjs's real-tree
test to pick up.

* docs(#2724): flip ADR-2719 to Accepted and update contributor docs

Status: Proposed -> Accepted. Regenerated docs/adr/README.md index.

CONTRIBUTING.md, docs/TESTING-SUITES.md, and CONTEXT.md (RULESET.
EMITTED_ATTRIBUTION, RULESET.WORKFLOW_SIZE_BUDGET, RULESET.
AGENT_SIZE_BUDGET, and the Emitted Artifact Provenance glossary entry)
no longer point at the deleted golden-install-parity fixtures, size
baselines, gen:golden, UPDATE_GOLDEN, or the setup:merge-driver /
git-merge-regen-driver.cjs bridge. Editing shipped content now
requires zero manual fixture regeneration, documented against the
differential attribution check instead of the deleted commands.

* docs(#2724): add changeset for removed golden-parity commands

* fix(#2724): drop stale scripts/update-size-baseline.cjs glossary ref

check-glossary-refs.cjs verifies every backtick-wrapped scripts/*.cjs
token in CONTEXT.md resolves to a real file. The RULESET.
EMITTED_ATTRIBUTION rewrite named the deleted script inside backticks,
which the checker reads as a live reference, not historical prose.

* test(#2724): retarget ci-test-scope tests off the deleted golden test

tests/ci-test-scope.test.cjs asserted specific RULES entries select
tests/golden-install-parity.test.cjs, and that every rule selecting it
also selects both emitted gates. Both premises broke when the golden
test was deleted (#2724): the deleted filename never re-appears in
targeted_tests, and there was no longer a third file for the gates to
travel alongside. Retargeted the two selection describe blocks to
assert tests/emitted-provenance.test.cjs directly (the drift guard the
golden gate's rules were retargeted to), and simplified the third block
to assert the two emitted gates always travel together, without
reference to the golden filename.

* docs(#2724): repoint two contributor how-to guides at the differential check

Both guides told contributors to regenerate a baseline against
tests/golden-install-parity.test.cjs, which #2724 deletes. Repointed
at the differential attribution check (tests/emitted-attribution.test.cjs,
ADR-2719), which needs no manual regeneration step.

* fix(#2724): repair phase6-capstone-conformance's deleted-baseline read

An independent orthogonal review caught a real regression this branch
introduced into a test file the branch's diff never touched:
tests/phase6-capstone-conformance.test.cjs read
tests/workflow-size-baseline.json (deleted earlier in this branch) with
no fallback, so the whole suite would throw ENOENT the moment this
branch landed. The test's actual intent — prove the host-loop workflow
files are real, tracked, non-empty docs — is preserved by asserting the
live byte count via the same shared counter (scripts/workflow-size.cjs)
the size guards already use, instead of a committed snapshot.

Also, from the same review: a stale doc comment in
scripts/workflow-size.cjs still named the deleted
scripts/update-size-baseline.cjs as a consumer, and
buildBaselineAtRef's cleanup in tests/helpers/emitted-runtime.cjs left
two fs.rmSync calls unguarded against masking the primary result/error,
inconsistent with the try/catch already wrapping the git cleanup beside
them. Both fixed. A doc comment was added to baselineFamilyNamesAtRef
explaining why it (and its siblings) are kept despite having no
production caller post-cutover — they still answer real questions
about refs that predate the cutover.

* fix(#2724): repair three real regressions found by remote verification

1. tests/emitted-provenance.test.cjs's two hostile-input tests
   (non-object manifest, unreadable fixture) drove loadManifests(tmp)
   and monkeypatched fs.readFileSync, both premised on the deleted
   fixture-directory read this branch already replaced with real
   installer spawns -- the negative assertions silently stopped firing.
   loadManifests() now accepts injected {families, install, build,
   clean} (defaulting to production values), giving the tests a real
   seam to drive a bad build result and a build failure through the
   ACTUAL loader instead of a reimplementation, and added coverage that
   clean() still runs on both paths.

2. .github/workflows/test.yml's two 'Export GSD_EMITTED_BASELINE'
   steps hardcoded shell: bash, which is wrong on windows-latest (native
   pwsh) and on test-full's macos-latest legs (native zsh per that job's
   own matrix) -- the repo's H1 shell policy (tests/policy-shell-pinning
   .test.cjs) caught it. Replaced the inline bash script with
   scripts/ci-export-emitted-baseline-env.cjs, a plain Node script: a
   bare 'node <path>' command line has no shell-specific syntax, so it
   runs correctly under bash, zsh, and pwsh without a shell override.

tests/phase6-capstone-conformance.test.cjs's deleted-baseline read
(caught by the same remote run, at a commit prior to this one) was
already fixed in d0c3b1242 and is not touched here; verified still
passing after these changes.

* fix(#2724): revive ADR-1610's new-file size cap inside the differential

An isolated review caught a real regression: deleting
tests/workflow-size-baseline.json silently dropped NEW_FILE_CAP
(ADR-1610 Decision point 3, the Codex project_doc_max_bytes anchor)
with no successor. tests/helpers/emitted-diff.cjs's size ratchet
already 'continue's past any file absent from sizeBaseline -- exactly
the files this cap exists to bound -- so a brand-new workflow file
sized 32,769-40,960 bytes passed CI clean and shipped, then risked
silent truncation at the Codex anchor at runtime. ADR-1610 is Accepted
and never referenced anywhere in this branch.

Fix: NEW_FILE_CAP=32768 revived inside emitted-diff.cjs's own
size-ratchet loop, keyed off the SAME hasOwnProperty(sizeBaseline,
name) signal the growth check already computes -- 'new' is exactly
'present in sizeCurrent, absent from sizeBaseline'. Not ack-able,
matching the tier hard caps it sits beside: the fix is extraction, not
an acknowledgment entry. Documented, disclosed narrowing: the pure
differential module cannot see XL_WORKFLOWS/LARGE_WORKFLOWS tiering
(tests/workflow-size-budget.test.cjs's classification), so a
legitimately large new file must extract rather than tier in, one
release earlier than an existing file would need to. ADR-1610 itself is
left unamended -- this restores its decision rather than re-litigating
it.

Also fixes a stale comment plus a redundant real 19-installer-spawn
assertion left over from the pre-injection-seam version of
tests/emitted-provenance.test.cjs's build-failure test, and annotates
3 of 4 stale golden-fixture citations in
docs/reference/host-integration-capability-matrix.md as superseded
(the 4th is an accurate historical PR narrative, left alone).

* fix(#2724): repair three red CI defects on the golden-fixture cutover

Windows-only provenance false attribution (defect A): the `hooks-built`
provenance rule attributed `hooks/<name>.cmd` to itself. Those shims are
Windows-only installer output (ensureCodexHooksJsonSessionStart /
ensureCodexHooksJsonEvent, both in src/runtime-hooks-surface.cts) wrapping
the same-named `.js` hook — no `.cmd` file is ever tracked in the repo, so
the self-attribution resolved to a path that exists on no platform. Only
windows-latest ever emits the key, so this only failed there. Fixed by
special-casing `.cmd` inside the SAME `hooks-built` rule (not a dedicated
rule) — a dedicated rule would match zero paths, and therefore report as a
dead rule, on every non-Windows lane of the same totality guard. `sources`
already supported per-match functions; `transforms` is extended to support
the same shape so the attribution can vary by match within one rule.

Baseline bootstrap was structurally impossible (defect B): `buildBaselineAtRef`
ran `scripts/gen-emitted-baseline.cjs` from INSIDE the base-ref worktree, but
that script is new in this PR and therefore absent at any base ref that
predates it — every call failed closed with "Cannot find module". Fixed by
running the PR checkout's own generator against the worktree via a new `--dir`
parameter, decoupling "which copy of the script runs" from "which tree it
measures" (`currentManifests`/`currentSizes` gained a `repoRoot` override,
threaded down to `runMinimalInstall`'s new `installScript` override). This is
not just a bootstrap fix: a differential needs ONE measurement schema applied
to both sides, or the two stop being comparable the moment that schema
evolves — running each side's own copy would silently reintroduce that risk.
Verified locally end-to-end against real origin/next: resolves a valid
{version, sha, manifests, sizes} artifact with the correct sha and no leaked
worktree.

Changeset placeholder (defect C): `pr: 0` -> `pr: 2767`, which is what let
docs-lint evaluate the fragment for the first time; it already passes
(docs/TESTING-SUITES.md and friends already document the removed scripts).

Also fixed while in this file: an eslint no-unused-vars warning surfaced by
the changed lint run (unused `cleanup` import in
tests/emitted-provenance.test.cjs).

Added regression coverage for both A and B: a cross-platform spot-check that
drives the real hooks-built rule against `.cmd` keys directly (not through a
real Windows install), and a real-tree test that drives buildBaselineAtRef
against a base ref verified (via git cat-file) to lack the generator, both
skipping honestly rather than false-passing when their precondition does not
hold.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01W5kQs6ZufZDySC6zDJfYP6

* fix(#2724): repair false .cmd byte-provenance and a permanently-skipping regression test

Two isolated-review findings on PR #2767:

- `hooks-built`'s `.cmd` branch attributed the Windows shim's bytes to the
  wrapped `hooks/<name>.js` script, asserting a byte-provenance link that
  does not exist — traced against buildCodexHookWindowsShimIR
  (src/runtime-hooks-surface.cts), only the script's NAME (a literal in that
  same file) flows into the .cmd bytes, never its content. Point `sources`
  at HOOKS_WINDOWS_SHIM_SRC instead, matching the code-derived convention
  used elsewhere in the table. Since `sources` is checked before
  `transforms` in the differential, the wrong mapping silently excused any
  .cmd byte movement caused by editing the wrapped .js file.

- The `buildBaselineAtRef` regression test skipped unless a resolvable base
  ref still lacked scripts/gen-emitted-baseline.cjs — true only until this
  PR merges, after which every base ref carries the file and the test skips
  forever with zero ongoing coverage. Rebuilt hermetically: synthesize the
  missing-generator condition in-place via git plumbing (a throwaway commit,
  child of HEAD, with just that one file removed from a scratch index),
  never touching the real working tree, HEAD, or index, and never depending
  on ambient history or remotes.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01W5kQs6ZufZDySC6zDJfYP6

* fix(#2724): tolerate the remote runner's dubious-ownership git mount in the emitted baseline path

The runner container mounts the repo at a path owned by a different uid than
the process running the suite, so git's dubious-ownership protection refuses
every git operation there. GitHub Actions never hits this because
actions/checkout registers the workspace as safe automatically; this
runner's container does not.

buildBaselineAtRef is the production build-fallback the sole remaining
emitted gate depends on (resolveBaseline's in-job-build leg), not just a
test helper, so the fix is in the shared git() wrapper (emitted-runtime.cjs)
that every caller — resolveChangedPaths, resolveBase, buildBaselineAtRef's
worktree add/remove/prune, and the hermetic regression test added in the
prior commit — funnels through, plus gen-emitted-baseline.cjs's own
rev-parse (now reusing that same wrapper instead of a second execFileSync,
so the fix has one source of truth). Each call declares -c
safe.directory=<the exact directory it already operates on>, never the *
wildcard.

Audited every other helper on this surface (emitted-diff.cjs,
emitted-baseline.cjs, install-shared.cjs) for the same gap: none of them
shell out to git at all.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01W5kQs6ZufZDySC6zDJfYP6

---------

Co-authored-by: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-07-28 15:41:43 -04:00

23 KiB
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Testing Suites

This project's tests/ directory uses filename suffix markers to group tests into named suites. The harness scripts/run-tests.cjs filters by suite when given --suite <name>. Without a flag it runs every *.test.cjs file (the historical default — unchanged).

Tracked by issue #3597.

Suites

Suite Filename pattern What goes here
unit *.test.cjs (no other marker) Default fast lane. Pure logic, no network, no external processes beyond gsd-tools. Most tests live here.
integration *.integration.test.cjs Cross-module flows: full installer end-to-end, multi-tool orchestration, anything that crosses two or more bin entry points.
install *.install.test.cjs Tests that perform a real install/uninstall against a sandbox project. Slower; PR CI skips these on PRs and runs them on main push only.
security *.security.test.cjs Adversarial input, prompt-injection guards, fixture-driven hostile-payload sweeps.
slow *.slow.test.cjs Anything that routinely takes >5s wall-clock or holds significant memory.
all (any) Explicit alias for "no filter". Equivalent to running with no --suite flag.

How to place a new test

  1. Pick the most specific bucket above.
  2. Name the file with the matching suffix: tests/<feature>.<suite>.test.cjs.
  3. If unsure, leave the suffix off — the file lands in unit, the default fast lane.

Examples:

  • tests/agent-frontmatter.test.cjs — unit
  • tests/prompt-injection-guards.security.test.cjs — security
  • tests/installer-end-to-end.install.test.cjs — install
  • tests/sdk-mutation-stress.slow.test.cjs — slow

The suite-suffix convention was chosen over a directory layout (tests/security/) so the 545+ existing test files don't need to move. Existing files all classify as unit until someone explicitly retags them.

Regression tests

Do not create new top-level tests/bug-NNNN-*.test.cjs files. Add the regression case to the owning module's main test file instead (e.g. a describe('regressions') block in tests/<module>.test.cjs).

node --test spawns one child process per FILE, so file count — not test count — is the unit of CI overhead, and it is worst on Windows lanes where every spawn is Defender-scanned. The 2026-06 CI audit found 244 one-off bug-* files (~38% of the suite). That population is grandfathered in scripts/lint-regression-test-names.allowlist.json and enforced by an identity ratchet (npm run lint:regression-names, part of npm run lint:ci):

  • A new bug-* file fails CI — fold it into the owning module's file.
  • Deleting/consolidating a grandfathered file requires pruning its allowlist entry, so the baseline only ever shrinks.
  • Inherited drift (the failure names files your PR didn't add — e.g. the base branch merged bug-* files without feeding the allowlist, or you rebased and carried a pre-rebase allowlist): run node scripts/lint-regression-test-names.cjs --update and commit the regenerated allowlist. Snapshot artifacts like this allowlist (and docs/INVENTORY.md) must be regenerated after rebasing, never carried through a rebase.

The ratchet deliberately covers only bug-*. Files named feat-NNNN-* / enh-NNNN-* are feature test files — one (or one per suite) per feature is the sanctioned layout (see the #443 strategy below), not a one-off regression pattern. If issue-*/perf-* one-offs start accumulating the same way bug-* did, extend the ratchet's regex and regenerate the allowlist.

Workflow & agent size budget

Tracked by issue #1074. Bytes (not lines) per #717; LF-normalized per #683.

Workflow files (gsd-core/workflows/*.md) and agent files (agents/gsd-*.md) both ship in the installed runtime and are loaded into context — workflows on every command, agents on every subagent dispatch — so their byte size is a real cost. Two sibling guards (tests/workflow-size-budget.test.cjs and tests/agent-size-budget.test.cjs) keep that cost from creeping up invisibly, sharing one byte-counter (measureMdFiles). Growth is caught by two independent layers:

Layer What it does Where
Differential attribution size ratchet (primary, #2724 / ADR-2719 §4) The same computed-attribution check that replaced the golden-install-parity fixtures also reports growth in any gsd-core/workflows/*.md or agents/gsd-*.md file, with the exact byte delta, comparing PR HEAD against next. Unacknowledged growth is a hard failure; shrinkage needs no acknowledgment. No committed snapshot — nothing to regenerate by hand. tests/emitted-attribution.test.cjs (real-tree test) via tests/helpers/emitted-diff.cjs
Loose tier hard caps (backstop) Absolute outer red lines per tier — workflows: XL ≤ 98304, LARGE ≤ 61440, DEFAULT ≤ 40960 bytes; agents: XL ≤ 57344, LARGE ≤ 49152, DEFAULT ≤ 24576 bytes. A cap is never raised when a file approaches it: crossing it means extract, not bump. Independent of the ratchet above — unaffected by #2724. XL/LARGE/DEFAULT_CAP in each guard file

discuss-phase.md additionally has a thin-dispatcher target of < 32000 bytes (the discuss-phase progressive-disclosure split, #717). A net-new agent is DEFAULT-tier and already bounded by the DEFAULT cap — no separate new-agent cap is needed. (This tier-cap machinery is distinct from the separate 45 KB-char extraction-evidence threshold on gsd-planner enforced by tests/planner-decomposition.test.cjs — that one proves mode sections were extracted; this one bounds total agent bytes.)

How-to: a workflow or agent grew and CI is red

The differential attribution check reports the file and the byte delta. To resolve:

  1. Justify the growth in your PR (a sentence in the description is enough) — the acknowledgment entry (below) is the review record that the larger size was a deliberate, seen decision, not silent drift.
  2. Add an acknowledgment entry in tests/emitted-drift-ack.json naming the file and the reason, per CONTEXT.md's ### Emitted Artifact Provenance entry. This is deliberately a committed file, not a flag — the entry appears in your PR diff, so touching it is the visible signal.
  3. Or shrink it instead of acknowledging. Prefer extraction when the growth is incidental: for a workflow, move per-mode bodies to workflows/<name>/modes/, templates to workflows/<name>/templates/, and shared prose to gsd-core/references/; for an agent, lift shared boilerplate into gsd-core/references/ and @-reference it — then load it LAZILY. Do not convert them to eager @-required_reading includes: that shrinks the file's bytes without shrinking loaded context, so it games the guard while making the real cost worse. See workflows/discuss-phase/ for the progressive-disclosure pattern.

If a hard cap (not the ratchet) is what failed, an acknowledgment will not help — that is the signal to extract, per step 3.

Reference

Artifact Role
scripts/workflow-size.cjs Single source of truth — LF-normalized byte counter (lfByteCount) + generic measureMdFiles(dir, predicate) (backs both workflows and agents) + workflow enumeration (listWorkflowStems, measureWorkflows). Imported by both guards and by tests/helpers/emitted-runtime.cjs's currentSizes() so they can never measure differently.
tests/emitted-attribution.test.cjs + tests/helpers/emitted-diff.cjs The differential attribution check and its size ratchet (ADR-2719). The sole mechanism for both emitted-content propagation AND per-file size growth as of #2724.
tests/emitted-drift-ack.json Committed acknowledgment file for unattributable emitted-content ripples and for size growth. Absent = no acks; its presence is the alarm.
npm run regen:derived Runs every remaining generator in dependency order (build → registry → ADR index → capability matrix → inventory manifest → manifest versions → tests/fixtures/install-tree/*.json).
tests/workflow-size-budget.test.cjs The workflow tier hard-cap guards, plus the discuss-phase progressive-disclosure checks.
tests/agent-size-budget.test.cjs The agent tier hard-cap guards (the agent analog).

tests/workflow-size-baseline.json, tests/agent-size-baseline.json, tests/fixtures/golden-install-parity/*.json, scripts/update-size-baseline.cjs (npm run size:baseline), and scripts/git-merge-regen-driver.cjs (npm run setup:merge-driver) are all removed by #2724: they were pure functions of the source tree, conflicted on every merge that touched them, and their functions are now served by the differential attribution check above. tests/fixtures/install-tree/*.json is the one artifact family that stays committed and normally-merged (ADR-2719 §7) — it conflicts on 0 of 7, its diffs are readable, and it preserves "the installer stopped shipping X" as a hard absolute failure with no attribution reasoning involved. Regenerate it with npm run gen:install-tree (folded into npm run regen:derived).

Running suites locally

npm test                    # everything (backcompat — same as before)
npm run test:unit           # only unit
npm run test:integration    # only integration
npm run test:install        # only install
npm run test:security       # only security
npm run test:slow           # only slow

npm run test:coverage       # backcompat — coverage over EVERY test
npm run test:coverage:unit  # fast coverage signal — only unit suite
npm run test:coverage:all   # alias for test:coverage

Direct harness invocation also works:

node scripts/run-tests.cjs --suite security
node scripts/run-tests.cjs --suite=security
node scripts/run-tests.cjs --files "tests/command-contract.test.cjs tests/core.test.cjs"
node scripts/run-tests.cjs --files-from .ci-selected-tests.txt

npm run test:affected (scripts/run-affected-tests.cjs) is a local-only convenience that selects tests via the require() dependency graph of your working-tree diff. CI does not use it — CI selection is the rule table in scripts/ci-test-scope.cjs, which is the authoritative mapping. If the two disagree, trust (and fix) the rule table.

Unknown suites exit non-zero with the list of valid suites. Empty suites (e.g. --suite security before any security-tagged file exists) exit 0 with a no tests in suite "..." notice on stderr so CI lanes don't go red while a suite is being populated.

CI matrix

The Tests workflow runs every PR through a scoped gate generated by scripts/ci-test-scope.cjs.

Lane Node 22 Node 24
ubuntu-latest scoped tests unit + integration + security
windows-latest — scoped Windows/path/shell tests
macos-latest full parity when required full parity when required
  • Node 22 is the engines.node floor (>=22.0.0) — must stay green.
  • Node 24 is the default development lane.
  • Scoped tests are selected from the changed paths, plus a small CLI/package smoke set. They are for confidence on the affected surface, not for counting tests.

The default PR gate runs the broad unit (under the c8 coverage gate), integration, and security suites once on Ubuntu / Node 24, scoped tests on Ubuntu / Node 22, and scoped tests on Windows / Node 24. "Scoped" means the diff-selected list from the rule table — not the full suite and not a fixed smoke set (the fixed smoke list is only the empty-selection fallback). The Windows lane's list is the Windows-sensitive subset of the selection, plus every changed test file, unconditionally (the #494 invariant, narrowed): a modified test is exercised on the divergent OS before merge at per-file cost, without paying for the three full parity lanes.

PRs touching workflow, package, test-runner, install, release, or Windows-sensitive surfaces also run the full parity matrix on macOS and the older Windows runtime, plus install and slow on the primary Ubuntu lane. Everything (including the full parity matrix) runs on every push to next, which covers the residual macOS / Windows-Node-22 cross-product for scoped PRs.

Coverage runs inside the Ubuntu / Node 24 full lane (not a separate job — that duplicated the entire unit run) and stays single-lane because multiplying coverage across OS/runtime lanes adds cost without improving the threshold signal. Note the gate's deliberate blind spot: it measures gsd-core/bin/lib/*.cjs only — scripts/, hooks/, and bin/ are unenforced, and stryker.config.mjs additionally excludes ~48% of lib lines from mutation testing (see the UNMUTATED list there). Widening either gate is tracked work, not an accident to "fix" silently by raising thresholds.

To inspect the scope locally:

npm run ci:test-scope -- --files "commands/gsd/plan-phase.md"
node scripts/ci-test-scope.cjs --base origin/next --head HEAD

Chunk packing and the test timing table

scripts/run-tests.cjs does not hand the whole selected file list to one node --test process. It packs the files into chunks, each spawned separately, because Windows caps a command line at 32,767 characters and because each chunk gets its own 600s timeout (RUN_TESTS_CHUNK_TIMEOUT_MS) and a fresh process, which bounds memory pressure.

How files are distributed across those chunks decides whether the slowest chunk sits near that timeout while the others idle. The packer weights each file by its measured duration, read from tests/test-timings.json, and places files with LPT (longest-processing-time-first: heaviest file first, each into the currently lightest chunk). Before #2456 the weight was guessed from the filename, which mis-ranked files badly enough that the slowest chunk ran ~3.9x the lightest.

Reference

Knob Default Meaning
RUN_TESTS_MAX_FILES_PER_CHUNK 60 Per-chunk weight budget. Weights are normalized so an average-cost file weighs 1, so this still reads as "about 60 average files".
RUN_TESTS_MAX_CMDLINE_CHARS 28000 argv ceiling per chunk, with headroom under the Windows 32,767 limit.
RUN_TESTS_TIMINGS_FILE tests/test-timings.json Path to the timing table. Tests override it to inject a synthetic cost profile.
RUN_TESTS_CHUNK_TIMEOUT_MS 600000 Per-chunk timeout.

The timing table is advisory and deliberately un-gated. There is no --check mode and no CI lint that fails on staleness, because timing data legitimately varies run to run. A file missing from the table falls back to the table's median weight, and a missing or unparseable table falls back to uniform weight — so drift costs chunk balance, never a red build. A count-based floor additionally guarantees the packer never produces fewer chunks than plain count-based packing would, so a badly stale table cannot collapse the suite into a few fat chunks.

How-to: regenerate the timing table

Regenerate when the suite's cost profile has visibly drifted — after adding or removing expensive tests, not on a schedule. The input is a node:test reporter event stream from a gsd-test run:

node scripts/gen-test-timings.cjs \
  ~/.local/state/gsd-test/runs/<run-id>/test-events-linux-node22.jsonl \
  ~/.local/state/gsd-test/runs/<run-id>/test-events-linux-node24.jsonl

Pass every lane you have. A file's recorded time is the max across the supplied streams, not the mean: the packer exists to keep the slowest lane's slowest chunk away from the timeout, so the conservative bound is the right one. Keys are sorted so a regeneration diff shows only the files whose cost moved.

Best practices for forward-compat (Node 24/26)

  • Use process.execPath when spawning Node in tests so each matrix lane exercises the lane's Node version.
  • Avoid stack-trace or error-message prose assertions. Assert err.code, structured JSON fields, or enums — Node minor releases routinely tweak error wording.
  • Prefer node:test, node:assert/strict, and node:test mocks. No external test frameworks.
  • Coverage uses c8 and propagates NODE_V8_COVERAGE through the harness's child process.

Test strategy: #443 effort + fast_mode engine

Feature: unified cross-provider effort and fast_mode knobs (issue #443). Test files: tests/model-resolver.test.cjs (unit), tests/model-resolver.test.cjs (integration).

Testing pyramid

Layer File What it covers
Unit feat-443-effort-fast-mode.test.cjs Pure logic: cascade rules, clamping, escalation math, malformed config handling, schema key validation. No CLI subprocess.
Integration feat-443-effort-fast-mode.integration.test.cjs Architecture-level invariants: cross-provider validity, totality across the 33-agent registry, CLI JSON contract, config round-trip, fast-mode honesty. Real subprocesses via runGsdTools.
E2E (pending) (not yet wired) Propagation layer: effort frontmatter / CLAUDE_CODE_EFFORT_LEVEL env actually reaching a spawned Claude Code subagent. See "Gaps" below.

Architectural invariants

Each invariant exists to prevent a specific class of production failure.

(a) Cross-provider validity

What: renderEffortForRuntime(runtime, universalEffort).value must always be a member of the runtime's real provider enum. Ground-truth enums are defined as local constants in the test — not sourced from the implementation.

PROVIDER_EFFORT_ENUMS = {
  claude: Set { 'low', 'medium', 'high', 'xhigh', 'max' }   // Anthropic output_config.effort
  codex:  Set { 'minimal', 'low', 'medium', 'high', 'xhigh' } // OpenAI model_reasoning_effort
}

Why: Passing a value outside these sets results in a 400 from the real API. The clamping logic (max -> xhigh for codex; minimal -> low for claude) must hold for every cell of the VALID_EFFORTS × runtimes matrix.

(b) Param/channel contract

What: Each runtime exposes a stable param string (the native API field name) and channel (how the value is propagated). Unknown runtimes return param: null, channel: null and pass the effort value through unchanged.

Why: Callers read .param to construct the dispatch payload. A regression here would silently drop effort from subagent invocations.

(c) Resolve-execution JSON contract

What: The gsd-tools resolve-execution <agent> command emits a JSON object with all eight keys present and typed correctly: model (string), profile (string), effort (VALID_EFFORTS member), effort_rendered (string), effort_param (string|null), effort_propagation (string|null), fast_mode (boolean), fast_mode_supported (boolean).

Why: Orchestrators and workflow dispatchers parse this JSON. A missing or mistyped field silently breaks downstream consumers.

(d) Totality across the real registry

What: For every agent in the 33-agent registry, resolveEffortInternal returns a VALID_EFFORTS member (never undefined/null), resolveFastModeInternal returns a strict boolean, and renderEffortForRuntime('claude', effort) stays within the claude provider enum.

Why: A catalog addition that introduces a missing routingTier mapping would otherwise produce undefined and propagate silently.

(e) Fast-mode honesty invariant

What: When the runtime is claude, fast_mode_supported in resolve-execution output is always false, regardless of the fast_mode config. RUNTIMES_WITH_FAST_MODE contains only 'api'.

Why: Claude Code's /fast toggle is session-level only. Emitting fast_mode: true as frontmatter on a Claude subagent is a silent no-op. Advertising fast_mode_supported: true for claude would cause orchestrators to believe the knob was wired when it is not.

(f) Precedence first-valid-wins

What: Both effort and fast_mode use a layered cascade. The test table covers all four effort layers (invocation override → agent_overrides → routing_tier_defaults → default) and all five fast_mode layers, including the case where an invalid value at a higher layer correctly falls through.

Why: Silent precedence bugs (e.g., a numeric value in agent_overrides not being rejected) would override intentional user config.

(g) Dynamic-routing composition

What: resolveEffortForTier escalates effort by attempt number independently of the model tier mapping. The test verifies the effort ladder (low -> medium -> high -> xhigh -> max), the max clamp, the max_escalations cap, and that escalate_on_failure: false suppresses escalation entirely.

Why: Effort escalation and model escalation share configuration (dynamic_routing) but must operate independently; coupling them would cause over-escalation or under-escalation.

(h) Config-tooling round-trip

What: gsd-tools config-set accepts all new key namespaces (effort.default, effort.routing_tier_defaults.<tier>, effort.agent_overrides.<agent>, fast_mode.enabled, fast_mode.routing_tier_defaults.<tier>, fast_mode.agent_overrides.<agent>) without an "Unknown config key" error, and values set via config-set are reflected in resolve-execution output.

Why: The schema validation gate (VALID_CONFIG_KEYS + DYNAMIC_KEY_PATTERNS) is separate from the resolver logic. A key missing from the schema would produce a silent write failure and appear as a bug only at runtime.

Coverage targets

Suite Target
Unit Every cascade rule, every fallthrough, every clamp. All function branches in resolveEffortInternal, resolveFastModeInternal, resolveEffortForTier, renderEffortForRuntime.
Integration All 8 architectural invariants. All 33 registered agents. All 6 provider × effort combinations for the valid-enum check. Full config-set key namespace.

Gaps / not yet covered

E2E orchestrator-spawn-propagation layer (pending follow-up wiring): The integration tests verify that GSD resolves and renders effort values correctly. They do NOT verify that the rendered values actually reach a spawned Claude Code or Codex subagent at runtime. Specifically uncovered:

  • CLAUDE_CODE_EFFORT_LEVEL env var being set and read by a spawned claude subprocess
  • output_config.effort frontmatter key surviving the AGENTS.md template substitution
  • model_reasoning_effort field surviving serialization into a Codex API request body
  • Fast-mode speed: "fast" field reaching an api-runtime request when fast_mode_supported: true

These require spawning real subagents (or stubs thereof) and asserting on the process environment / request payload — a scope that belongs in a future E2E suite under *.slow.test.cjs or dedicated fixture-driven integration work.