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orca/docs/reference/linux-glibc-compatibility.md
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Neil 5631aa00dd feat(orcad): items 2–7 — degradation, natives, daemon, ops, deploy (#16398)
* fix(ports): stop joining an undefined resourcesPath on a non-Electron host

`resolveWorkerEntryPath` branched on `isPackaged` alone and joined
`process.resourcesPath`. orcad reports `isPackaged` true — correctly, it is a
production build, and ~15 consumers read it that way to gate HTTPS-only skill
downloads and the real CLI name — but `process.resourcesPath` is Electron-only
and `undefined` under plain Node.

So the packaged branch threw
`TypeError [ERR_INVALID_ARG_TYPE]: The "path" argument must be of type string`
where a clean "worker unavailable" was the honest outcome. The type said
`resourcesPath: string`, which is how it went unnoticed; it is now
`string | undefined`, so the compiler carries the fact.

A host with no Electron resources tree has no asar to look in, so it falls back
to the module directory and lets the caller report a missing worker.

Found by the item 1 agent while auditing the same `isPackaged` defect class in
the watcher. Verified in both directions: reverting the guard reproduces the
TypeError.

* feat(orcad): prove node-pty loads before anything requires it

Of the two ways node-pty fails, only one is catchable. A missing module throws
MODULE_NOT_FOUND. A module built against the wrong libc or Node ABI is refused by
the dynamic loader, and in the worst case takes the process down before any handler
exists — that is #9902, which crashed the desktop app on Ubuntu 20.04 before a
window appeared. There was no libc or ABI precondition anywhere in the tree.

So orcad now proves the load in a CHILD process, from main.ts, before anything
requires node-pty. Whatever the child does — throw, abort, die on a signal — is data
rather than our own death, and the operator gets a sentence naming the host's libc,
Node ABI and prebuild slot plus the command to run. Proven-unloadable exits 78
(EX_CONFIG), so a supervisor does not restart an unequippable host forever. A probe
that never answered is unverifiable, not blocked: refusing to boot on an inconclusive
signal would take down hosts that work.

The child dlopens the file node-pty would have chosen, before requiring the package.
node-pty's loader walks several directories and rethrows only the LAST error, so a
refused binary reads as "Cannot find module ./prebuilds/..." — which sends the
operator to install a module that is already there. It also reports through stdout:
node echoes the whole -e source above a stack trace, and matching tokens against
stderr made the probe's own source text answer for the verdict.

Verdicts reach clients as a terminal_unavailable degradation alongside the existing
browser_unavailable one, through the same cause-registry shape. degradations[].code
is now an open vocabulary; clients already render only `message`.

Prebuilds are compiled from PATCHED sources — the patch IS the glibc-floor fix, so an
upstream tarball reproduces #9902 — into linux-{x64,arm64}-{glibc,musl} and
darwin-{x64,arm64} slots. libc is in the slot name because node-pty's loader falls
back to prebuilds/<platform>-<arch> and cannot tell glibc from musl. orcad installs
the matching slot at boot, so a host with no compiler serves terminals.

The relay's five pure toolchain-diagnosis functions moved to a transport-free module
so the Node bundle can reuse them without dragging ssh2 in behind them; the relay
keeps its API by re-export. macOS gets `xcode-select --install` rather than the
cross-distro apt/dnf/pacman/apk menu, every line of which is wrong there.

* test(orcad): pin the node-pty precondition to ground truth, not a prepared host

CI's test shard runs `vitest` directly, so `ensure-native-runtime --runtime=node`
never prepares node-pty for the Node ABI — `degraded` is the correct verdict
there, and asserting 'ok' encoded an environment the shard does not have.

Asserting whatever it returned would be vacuous, so the expectation is now
derived from an independent require() of node-pty. Verified it still bites:
forcing the precondition to always report 'ok' fails the suite.

* feat(orcad): run the terminal daemon, and the ops contract around it

orcad declared `canRecoverPersistentLocalPtys: () => false` because it did not
run the terminal daemon, so every restart, update and rollback SIGKILLed every
running terminal — on the host whose selling point is that work survives the
client going away. That is the one property `ssh-execution-boundary.md`
recommends the peer model for.

Item 4 — the daemon:

- Port the launch path off electron: `daemon-init.ts`,
  `daemon-host-relocation.ts` and `observability/logs-directory.ts` now read
  the `AppEnvironment` port. Relocation additionally asks whether the app root
  is an asar archive rather than whether the build is packaged, so a Node host
  answering `isPackaged() === true` no longer walks into an Electron-only
  NSIS-escape path (same precedent as `parcel-watcher-entry-path.ts`).
- `build-orcad.mjs` emits `daemon-entry.js` beside `orcad.js`, scans the
  forked children's metafiles for electron/node:sqlite, and load-checks the
  child under plain Node.
- orcad spawns and adopts the daemon; shutdown disconnects and never kills it.
  `canRecoverPersistentLocalPtys` now reads the live provider and is false
  under degraded routing, where fresh terminals would die with the process.

Item 3 — the ops contract (docs/reference/orcad-operations.md):

- Bind policy: `--bind`, default loopback, pinned so neither `orca serve`'s
  wide default nor the connected-device widen can override it, and so a paired
  client cannot rebind the listener from outside.
- Instance lock on the data root before profile load, scoped to the runtime
  role so it never refuses a restart that a live daemon makes worthwhile.
- Supervision: exit codes a supervisor can act on (78 = do not retry),
  second-signal escalation, a shutdown deadline, and crash-loop containment on
  daemon respawn.
- Health in the readiness payload: build hash, Node ABI, and a PTY self-test
  that spans both processes — the daemon spawns a real PTY in its own process
  and the verdict crosses its socket.

Both bundle load-checks now assert on exit codes: these bundles are minified
onto one line, so Node's uncaught-exception report echoes every string literal
in the bundle and the previous message match passed against a bundle that
never loaded.

* feat(orcad): deploy, activate and roll back a versioned orcad install

Plan items 6 and 7 from docs/design/shipping-orcad.html.

Install reuses the relay's transaction verbatim — per-version lock, staged
SFTP write, .install-complete sentinel, stale-lock recovery — under a
parameterized namespace, so orcad-<v>/ sits beside relay-<v>/ permanently
(§06). Parameterizing GC is the trap that creates: each model now collects
only its own directories, enforced twice (prefix-scoped remote listing plus
a local ownership re-check), and a client picks its model from how the host
is registered, never from what it finds on disk.

Activation is separate from installation, because a versioned directory
selects nothing. A candidate is launched, publishes orca_server_ready, and
only becomes active if its cross-process health payload passes: right build
hash, listening, daemon live, PTY self-test green. A rejected candidate is
stopped and the incumbent restarted, so a careful deploy cannot cause the
outage it was being careful about.

Update and rollback are shaped by the daemon. An update restarts orcad, the
daemon outlives it, and the surviving daemon was forked from the outgoing
bundle — so live terminals defer the update rather than proceed, and GC pins
the active version, the rollback target and the live daemon's bundle. Orca's
persisted state carries no schema version, so rollback restores a
pre-activation snapshot rather than trusting backward-readability; the point
past which it is unsafe is the first terminal created after activation,
which the snapshot cannot describe and the surviving daemon still owns.

Running the generated shell for real found two bugs the text assertions
missed: tar members re-quoted inside a shell variable captured nothing, and
kill -0 reports a zombie as alive.

* test(orcad): assert the precondition is self-consistent, not environment-shaped

The real-host case cannot predict a status: CI's shard runs vitest directly, so
node-pty is never built for the Node ABI and 'degraded' is correct there, while a
prepared checkout gives 'ok'.

The previous attempt used require('node-pty') as ground truth, which resolves the
JS wrapper while the native binding loads lazily — it proved strictly less than
the precondition checks, and failed CI for exactly that reason.

What is invariant on a host with node-pty installed: never 'blocked', and never a
degraded verdict carrying an unestablished reason. The injected-input tests keep
the logic coverage.

* fix(orcad): drop an eslint-disable the rule no longer needs

* test(orcad): separate slot placement from the load verdict

Both remaining CI failures were the same shape: tests reaching into node_modules
for a pty.node that only exists after `ensure-native-runtime --runtime=node`,
which CI's shard never runs because it invokes vitest directly.

Slot *placement* is the logic worth checking on every host, so it now uses a
synthetic payload and asserts the verdict stays honest about not loading. The
three assertions that genuinely need a Node-ABI binding are gated on it existing.

Verified: breaking slot installation fails both placement tests; with the real
pty.node hidden the file is 17 passed / 3 skipped instead of ENOENT.

* test(orcad): gate the load-dependent cases on a real load, not on the file existing

CI ships a pty.node built for Electron's ABI, so existsSync was true while require
still failed — the gate ran exactly the tests that host can never satisfy. It now
probes the binding in a child process, so a bad one cannot take the runner down.

The self-consistency assertion also allowed too little: 'blocked' is the honest
verdict for a corrupt binding, alongside 'ok' on a prepared host and 'degraded' on
an unprepared one. What stays invariant is that anything other than 'ok' names an
established cause, so a terminal is never declined for a reason nobody worked out.

Verified against all three host states: prepared (19 passed), unprepared, and a
corrupt binding (17 passed / 3 skipped, no failures).

* test(orcad): gate on the whole premise — binding AND spawn-helper

CI has a loadable pty.node but no spawn-helper, and a slot without the helper is
legitimately 'degraded'. So the previous gate let a test run whose premise ('a
complete slot yields ok') that host cannot satisfy.

Verified in both states: with the helper present 19 pass; with it removed the
load-dependent cases skip (17 passed / 3 skipped) instead of failing.

* fix(orcad): preserve degradation types after rebase
2026-08-27 00:18:51 -07:00

7.1 KiB
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Linux glibc Compatibility

Orca's Linux builds target stock Ubuntu 20.04 and newer — glibc 2.31 and libstdc++ GLIBCXX_3.4.28 (also Debian 11, RHEL 9), on both x64 and arm64. Packaging enforces this floor automatically; keep it in mind when adding or upgrading native dependencies. (The optional speech feature is the one exception — see below.)

Why this needs attention

A native module (.node) links against the glibc of the machine that compiled it. Our release CI compiles node-pty from source on GitHub's ubuntu-latest runner, whose glibc rises over time as the image is bumped. A binary compiled on a newer glibc can reference symbol versions that do not exist on an older target, and the dynamic loader then refuses to load it:

/lib/x86_64-linux-gnu/libc.so.6: version `GLIBC_2.34' not found (required by .../pty.node)

Because the Orca main process loads node-pty at startup, that failure crashes the whole app before a window appears — this is exactly what shipped in v1.4.150 and broke launch on Ubuntu 20.04 (#9902).

The specific trap is glibc's 2.322.34 "libpthread/libutil merge", which moved several long-stable functions into libc under brand-new symbol versions:

Symbol New version node-pty use
pthread_sigmask GLIBC_2.32 reset child signal mask
openpty GLIBC_2.34 allocate the pty
forkpty GLIBC_2.34 fork the shell

Electron itself (glibc 2.25) and the other bundled native modules (sherpa-onnx, @parcel/watcher, both prebuilt on old glibc) stay well under the floor, so node-pty was the sole blocker.

How we keep the floor

1. Pin the relocated symbols (the fix). config/patches/node-pty@1.1.0.patch adds a .symver shim in src/unix/pty.cc that binds openpty, forkpty, and pthread_sigmask to their pre-merge version node — GLIBC_2.2.5 on x64, GLIBC_2.17 on arm64 (each architecture's baseline glibc). glibc still ships those as compatibility aliases, so the reference resolves on both new build hosts and old targets.

The catch: gcc defaults to --as-needed and, since the pinned symbols now resolve from libc's compat aliases at build time, it drops libutil/libpthread from DT_NEEDED. On the target those libraries are where the symbols actually live, so the patch's binding.gyp ldflags force -Wl,--no-as-needed,-l:libutil.so.1,-l:libpthread.so.0 back into DT_NEEDED. The shim is guarded by #if defined(__linux__); macOS and Windows are untouched.

2. Gate packaging (the regression guard). config/scripts/verify-linux-glibc-floor.cjs runs in the electron-builder afterPack hook for Linux. It reads every bundled native binary's version needs (objdump -p "Version References" — the authoritative load-time list, which also captures symbol-less markers like GLIBC_ABI_DT_RELR) and fails the build if any strong GLIBC_/GLIBCXX_/ CXXABI_ node is newer than stock Ubuntu 20.04 provides, naming the file and the offending node. Weak needs are ignored (the loader tolerates them). It also asserts the flip side of the .symver fix: any binary that imports openpty/forkpty must keep libutil.so.1 in DT_NEEDED — otherwise the pinned openpty@GLIBC_2.2.5 resolves from libc's compat alias at build time (so the version check passes) yet fails to load on 20.04, where those functions live only in libutil. A future runner bump, a new native dependency, or a dropped ldflag therefore fails the release build instead of shipping a Linux app that crashes on launch.

The gate is a static invariant, not an integration test. The load path was verified by hand for this fix (real Ubuntu 20.04, x64 + arm64: require node-pty and spawn a shell). A CI smoke test that loads the packaged pty.node in a glibc-2.31 container and spawns a shell is the recommended follow-up — it would make the load path self-verifying and stay valid even if the build ever moves to an old-glibc sysroot.

The one carve-out is the sherpa-onnx speech prebuilt, which already requires GLIBCXX_3.4.29 (GCC 11). It loads lazily in the speech worker (src/main/speech/stt-worker.ts), never at app launch, so it is exempt from the libstdc++ floor — its glibc needs are still checked. Speech-to-text therefore needs a host with libstdc++ from GCC 11+ (Ubuntu 21.10 / 22.04 LTS or newer); the app itself still launches on stock 20.04.

3. Check before loading, on hosts that ship without a compiler (orcad). The two gates above protect the packaged desktop app, where the binary is built and verified by the same pipeline. orcad is deployed to hosts Orca never built on, so it adds a runtime precondition (src/main/orcad/node-pty-precondition.ts), run from main.ts before anything requires node-pty. It loads the addon in a child process, so a binary the loader refuses — or one that aborts outright — is data rather than this process's death, and the operator gets a sentence naming the host's libc, its Node ABI, its prebuild slot and the command to run. A proven-unloadable binary exits 78 (EX_CONFIG) instead of reaching the require; a probe that never answered is reported as unverifiable and boots anyway, because a silent probe is not evidence. Whatever it finds is published in status.get's degradations[] under terminal_unavailable.

4. Ship the binary, built from patched sources. config/scripts/build-orcad-prebuilds.mjs (pnpm run build:orcad-prebuilds, after build:orcad) compiles node-pty for the current host and files it under out/orcad/prebuilds/<slot>/, where a slot is linux-{x64,arm64}-{glibc,musl} or darwin-{x64,arm64}. libc is part of the slot name because node-pty's own loader falls back to prebuilds/<platform>-<arch> and cannot tell glibc from musl — a glibc binary parked there is loaded on Alpine and dies at dlopen. The script refuses to compile a tree where config/patches/node-pty@1.1.0.patch is not applied: without the patch the prebuilt is a #9902 crash shipped as an artifact rather than a first-connect error. CI runs it once per slot inside the matching container (--slot= forces the label), merges the trees, and --require-slots fails a release with a hole in the matrix.

Adding or upgrading a native dependency

  • Prefer packages that ship prebuilt binaries compiled against an old toolchain (manylinux / glibc 2.17-class), like @parcel/watcher.

  • For a module we compile from source, if the gate flags it, either pin the offending symbols the way node-pty does, or build it in an old-glibc container.

  • To check locally on a Linux host, list what a binary requires (skipping the weak 0x02-flagged needs the loader tolerates):

    objdump -p path/to/module.node | sed -n '/Version References/,/^$/p'
    

    No strong GLIBC_ node may exceed 2.31, and no GLIBCXX_/CXXABI_ node may exceed 3.4.28/1.3.12 — what stock Ubuntu 20.04 ships.