Enable eleven oxlint rules that simplify code without changing behavior, and fix
every existing violation. Each candidate was gated on measured cost rather than
assumption, so rules that regressed runtime performance or type checking were
dropped instead of suppressed.
typescript/no-redundant-type-constituents is the largest addition: 113 sites, no
autofix. Dead constituents are deleted. Where the redundant literal existed to
document intent (`string | 'all'`), it is preserved as `(string & {})`, which
keeps the autocomplete hint the original code was reaching for instead of
flattening it away. The rule also caught a broken import —
remote-shared-control-retirement-probe.ts pulled RuntimeStatus from
src/shared/types, which does not export it, so the type silently degraded to
`any`; no tsconfig covers that file, so tsc never saw it.
oxlint stays at 1.77.0 rather than 1.78.0 because .npmrc sets
minimum-release-age=4320 and 1.78.0 is younger than that window.
Rules evaluated and rejected, with what disqualified each:
- prefer-string-raw: String.raw is a runtime call, not a literal (184x slower)
- prefer-string-replace-all: 26% slower
- text-encoding-identifier-case: ~5% slower, reproducible
- prefer-spread: [...str] is 110% slower than split('') and differs on surrogates
- no-implicit-coercion: `!!x` narrows types and `Boolean(x)` does not (22 tsc errors)
- prefer-arrow-callback: arrows are not constructible, breaking `new` on mocks
- object-shorthand: rewrites source text asserted by a tracked reliability gate
- switch-case-braces: pushes ten files past max-lines, which cannot be suppressed
- no-useless-switch-case: drops `case undefined:` that switch-exhaustiveness-check needs
- arrow-body-style: 115 violations have no fix, and it breaks max-lines
- newline-after-import: false-positives on the leading-semicolon ASI idiom
electron-vite-output-contract asserted on the literal
Object.prototype.hasOwnProperty.call text; retarget it to Object.hasOwn, which
rejects inherited keys identically.
win-crash-survival-e2e — packaged crash-survival proof harness
Windows only. Proves that a crash of Orca's main process does not orphan
open terminal PTYs — the regression behind
GitHub #7742 —
with machine-checkable assertions against an already-installed, packaged
Orca.exe.
Why this exists
On Windows, when Orca's main/renderer process crashed, open terminal PTYs were
orphaned and PowerShell hard-crashed with a 0xE9 "No process is on the other
end of the pipe" FailFast. Root cause: the terminal daemon (which hosts the
ConPTYs) died together with the main process, severing the console pipe.
The fix re-architected the daemon into a standalone, relocated
orca-terminal-daemon.exe (see
src/main/daemon/daemon-host-relocation.ts)
that is spawned detached and survives main-process death.
There is already a harness proving the daemon survives a Windows update
(tests/tools/win-update-e2e). This harness proves the
daemon survives a crash of the main process, so that guarantee can't silently
regress. It reuses win-update-e2e's shared modules (app driver, daemon
discovery, onboarding seed, PowerShell runner, platform guard, table renderer)
and adds only the crash step + its assertions.
What it does
- Launch the installed
Orca.exeunder an isolateduserDatadir (ORCA_E2E_USER_DATA_DIR), seeded with a fresh profile (onboarding dismissed plus one throwaway git repo), then open a plain terminal tab (the seeded workspace opens an agent tab, not a bare shell). - Stamp the interactive shell — typing DIRECTLY into it (not a nested
powershell), set a per-shell env sentinelORCA_CRASH_SENTINEL=<canary>and record the shell's own$PID. The command finishes fast, leaving the shell idle at a live PSReadLine prompt — the exact state that FailFasts with0xE9on a broken build. - Record the daemon PID and the real Electron main PID (resolved via
app.evaluate(() => process.pid)— the launched instance's own main, not the launcher stubapp.process()returns, and not a machine-wide scan). - Crash —
taskkill /F /PID <real-main-pid>with no/Tand no graceful close. This kills ONLY the real main of the instance this harness launched, never a scanned or image-named process, and never the process tree — a real crash does not tree-kill the detached daemon. Then prove the crash landed (poll the main PID until dead). - Assert survival: the daemon PID and the same interactive shell PID are still alive after the crash soak.
- Relaunch (same
userData, no reseed) and assert the daemon PID is unchanged (the new main adopts the surviving daemon instead of forking a new one) and that the reattached UI is bound to the same survivor shell — a bounded, readiness-aware command on the exact restored tab reads back bothORCA_CRASH_SENTINELand the shell's$PID, which a freshly re-spawned shell would not carry. - Scan the full crash-to-input window and require the Windows Application
event log to contain zero pwsh
FailFast/0xE9events (matched by crash-reporter provider+id, not fragile Message text). Scanning after the reattach keystroke catches shells that fail only on their next console read. - Teardown — close the relaunched app, then kill this run's scoped daemon
tree (re-discovered fresh via
findDaemonProcesses(userData), which the surviving shell is a descendant of) and remove the temp profile. It never kills a PID captured earlier in the run (a recycled PID could hit an innocent process), never installs/uninstalls, and never touches any other Orca on the box.
Exit code is 0 when every non-informational assertion passes, else 1 (2 for
a CLI usage error).
Usage
pnpm win-crash-survival-e2e --expect survival
# or explicitly point at an installed exe:
node tests/tools/win-crash-survival-e2e/run.mjs --expect survival --exe-path "C:\Users\<you>\AppData\Local\Programs\orca\Orca.exe"
Flags
| Flag | Meaning |
|---|---|
--expect <profile> |
Assertion profile (required): survival or orphaned (see below) |
--exe-path <path> |
Installed Orca.exe to drive (default: per-user install under %LOCALAPPDATA%\Programs\Orca) |
--soak-seconds <n> |
Post-crash observation window before relaunch (default 8) |
--keep-profile |
Skip temp-profile cleanup (debugging) |
Profiles
survival— the fixed behavior and the baseline that must keep passing: the main crash actually lands, yet the daemon + the same interactive shell PID survive, zero pwshFailFastevents fire, a relaunch adopts the same daemon PID, and the reattached UI reads back the survivor shell's env sentinel.orphaned— the directional inverse describing the old broken #7742 behavior. Daemon death is the primary signal (deterministic); pwshFailFast/0xE9is secondary — faithful only because the shell is left idle at a live PSReadLine prompt (which queries the severed console). On a fixed build this profile is expected to fail, proving the survival assertions are not vacuous. It is not exercised in CI (workflow_dispatchis unavailable on a non-default branch) and the0xE9only reproduces on a genuinely broken build.
Safety
- Never installs, updates, or uninstalls anything — it only launches an
existing exe against an isolated
userDatadir. - The crash kills only the real Electron main of the instance this harness
launched — resolved via
app.evaluate(() => process.pid)(not the launcher stubapp.process()returns) —/Fwith no/T. It nevertaskkills by image name or a scanned pid, so a developer's live Orca (a differentuserData, out of scope) is untouched. - Teardown never kills a PID captured earlier in the run (a recycled PID could
hit an innocent process): daemon cleanup re-discovers this run's daemon fresh via
a
userData-scopedfindDaemonProcesses, and the surviving shell is torn down as a descendant of that daemon tree. - Daemon discovery is scoped to this run's
userDatapath, so it never matches the many other daemons a dev box or CI runner can host. - Windows-only (
assertWin32); it no-ops with a clear error off win32.