Plugin directory / Developer / stent
stent
Verified · install-tested on dsh omdsh-dev
What it does
External Stent extension for deepseek-harness, providing three implementation packages and a carrier for plugin installation.
Works — verified, early-stage project
External Stent extension for deepseek-harness, providing three implementation packages and a carrier for plugin installation. It installs cleanly and boots without issues in our testing. It's early-stage but functional.
“Verified” means our automated CI actually ran dsh plugin add in a clean profile and it booted — nothing more. Feature descriptions and version compatibility are the author’s claims. This is not a security audit and not an endorsement of third-party code.
README
RFC: dsh-external-stent — repository purpose, architecture, and decision record
English | 中文
- Status: living document (each section records the decision and its history)
- Scope: this standalone Stent extension workspace
- Upstream anchors: deepseek-harness snapshots
7b9644f2(0812) /9f9e2782a4(0813),
fork tip65bcaf9902(feat-stent)
This document explains why this repository is shaped the way it is. Every
non-obvious arrangement below was reached through a concrete failure recorded
in the commit history; the sections follow the repository's evolution rather
than its file layout.
1. Purpose: an external Stent extension, not a fork
deepseek-harness is a private monorepo. The Stent/Mixin extension layer lives
there as three implementation packages, but a consumer cannot install them from
the registry. This repository externalizes those three packages and publishes
the @oh-my-dsh/stent-pack carrier so consumers can install the complete bundle
through the official plugin channel:
dsh plugin --profile <p> add @oh-my-dsh/stent-pack
Boundary (hard rule): the workspace contains exactly three complete
implementation packages — stent (pure transformation service),stent-api (pure compat facade), and stent-dsh (DSH-facing
facades, invariant, profile bootstrap). The root @oh-my-dsh/stent-pack is a
separately publishable carrier, not a fourth implementation package. Anything
else — including the official @deepseek-ai/dsh-tool-cordis toolset — remains
an upstream dependency and is not republished here.
2. Host integration: launcher-provided wiring
The three packages install hooks and mount facades through the compiled launcher.src/stent-dsh.ts compiles to lib/stent-dsh.js, whilesrc/stent-dsh-preload.ts compiles to lib/stent-dsh-preload.js; the launcher
injects that compiled preload before the official CLI loads. No host patch
checkout is required. The preload also records a process-local stent-dsh
launch capability, so Stent-dependent plugins stay unavailable under plaindsh even if low-level hooks were installed by another path. The same
capability gate is enforced by getStent(ctx): a plugin that omittedinject: ['stent'] cannot mount the registry through the accessor under plaindsh and fails loudly instead.
Everything the official channels already cover is deliberately excluded:
installing the trio (dsh plugin add), bundle roster rows and dependencies,
catalog generation, invariant/gate exemptions for trio-in-workspace, and all
documentation (README*, docs/, .agents/). What remains is what no channel
can provide: launcher bootstrap (apps/cli/src/profile-boot.ts callsinstallStentBootstrap before any target import andcheckStentRequiredPatches after boot), the clientBundle source-transform
build seam (packages/client/tsdown.client.ts), catalog entries compiled into
the official tool-cordis package, their tests, and the pnpm-policy seams.
2.1 The disabled opt-in rows
The web-app bundle layer inserts the stent / stent-dsh rows as
disabled opt-ins. The pure stent package remains disabled because its
root row is a descriptor carrier rather than a Loader plugin. A profile boot
through the explicit stent-dsh launcher automatically enables thestent-dsh integration row through a generated overlay, so its post-boot
required-patch check and hook summary run. Plain dsh leaves the rows disabled;
the bundle layer still applies on every boot, so pre-existing profiles need no
manual edit.
2.2 The TSX dead end (recorded and reverted)
The dsh source launch (node --import tsx/esm apps/cli/src/bin.ts) once
appeared to need TSX_TSCONFIG_PATH or a register preload: FiberState (a
const enum, only in vendor/cordis/src) failed to resolve. Both workarounds
shipped and were then reverted — the real cause was a staleTSX_TSCONFIG_PATH in the shell pointing at an old staging checkout. With a
clean environment tsx auto-discovers the entry's tsconfig (extending the base)
and resolves the aliases to src. The official script runs unchanged; no
host-specific workaround is required.
3. Install model: npm bundle
The publishable root bundle @oh-my-dsh/stent-pack declares the three published
npm implementation packages:
@oh-my-dsh/stent@^0.1.1
@oh-my-dsh/stent-api@^0.1.1
@oh-my-dsh/stent-dsh@^0.1.1
The same tag workflow publishes the root carrier after those three packages,
so its semver dependencies already exist on npm.
This keeps installation to one npm package:
dsh plugin --profile web add @oh-my-dsh/stent-pack
At installation, pnpm resolves those npm semver dependencies. At launch, stent-dsh asks DSH's module-fallback healer to map the bundle's dependency closure into $DSH_HOME/profiles/node_modules, so the Profile and the preload resolve the same trio copies.
- Host source installs declare the bundle in
apps/cli/package.json; run the
harness workspace'spnpm installandpnpm run pack:build, then install the
published npm bundle through the plugin channel (joining@oh-my-dsh/stent-packtodsh.profile.bundles). A profile boot through the compiledlib/stent-dsh.js
enables the integration row through its generated overlay. - Consumer-side builds use the explicit root
pack:buildscript. The trio and the
launcher are built with their package-owned tsdown commands before packing; no
install-time prepare build is required.
3.1 pnpm 11 supply-chain seams
The npm bundle does not require blockExoticSubdeps: false, a Git
prepare allowlist, or dangerouslyAllowAllBuilds in the Profile. The workspace
still allows the native esbuild build and excludes the fast-moving DSH rc
train from minimum-release-age checks:
allowBuilds: esbuildin this workspace;minimumReleaseAgeExclude: ['@deepseek-ai/dsh-*']— the dsh-* rc train ships
inside the 24h window and a name-only entry exempts all versions.
4. Registry dependency policy
The dsh-* host packages publish fast rc trains; this repository tracks them
through registry ranges, and each lesson below came from a real breakage.
4.1 The dsh-compact trap
@deepseek-ai/[email protected] depended on@deepseek-ai/dsh-compact, which was never published (upstream deleted the
package after publishing that runtime). The 0.1.0-rc.x series dropped the
dependency; verified installable end-to-end.
4.2 The missing rc.5
Upstream code is versioned 0.1.0-rc.5, but the registry jumpsrc.3 → rc.6 — rc.5 was never published. Ranges therefore read ^0.1.0-rc.0
(resolving the newest published rc, and rc.0 keeps stable releases in range
too). Peers use the same range, which the host workspace's rc.5 satisfies —
host installs reuse workspace packages instead of registry copies.
4.3 Real host types, not a local contract
The trio once declared a host-contracts.ts facade plus a global@deepseek-ai/cordis Events injection. That broke type-checking across host
packages and was deleted in favor of importing the real @deepseek-ai/dsh-*
types (declared as peers + devDeps) — exactly the upstream shape. ctx.slots
typing comes from dsh-client-runtime's declaration, as upstream.
4.4 Runtime peers of the published libs
With autoInstallPeers: false, the published dsh-* libs' load-time imports
(dsh-scope, dsh-llm, dsh-timeout, dsh-typert-protocol) must be listed
as devDependencies explicitly — each was added after a "Cannot find package"
at test load.
5. Browser client format: the closure factory
The web shell loads /plugins/<id>/client.js as a classic script and resolves
value imports through the loader module table (a synchronous require inside
the factory). Plain ESM bundles cannot load there at all. Consequently both
trio browser halves ship as closure factories:
window.__ModuleLoader__.load({ id: "@oh-my-dsh/stent", factory: (require) => { ...; return module.exports; } })
with @deepseek-ai/cordis external (a platform seed) and everything else
inlined. stent was converted first; stent-dsh followed
(the same gap, fixed after the ex-setting install exposed the first one).
Upstream never notices this — its monorepo builds both through the sharedclientBundle() preset.
5.1 ex-setting's three lessons (same contract, external repo)
The sibling omdsh-dev/ex-setting bundle hit the same contract three times:
- Its
dsh.clientmanifest must be nested ("dsh": { "client": ... }),
not a top-leveldshClientfield — client-modules scans the nested form; - its consumer-side build must use the prepare config, not just the local
one, or git installs serve the old artifact; - cross-bundle value imports must not rely on a disabled row's factory —
ex-setting inlines/avoids what the module table cannot answer, and installs
static styles directly instead of routing them through a Stent publish the
transform could not produce (browser-transform cannot match inside the
closure artifact).
6. Test strategy
The upstream suite resolves src through tsconfig paths; this repository only
has registry lib artifacts, which drove the evolution below.
- serve.spec uses a test-local
node:httpadapter for the hostwebServer
service, so exact/prefix routing and real HTTP responses stay covered without
a DSH host-webserver test dependency. - hmr-e2e-runner drives config HMR by toggling the row's
disabledflag
incordis.yml: the vendored fork'shmr.registerConfigand includeinternal/updateare fork-private and exist in no registry version
(verified against latest 1.0.16/1.0.6). - client specs originally faked
CommandUiRuntime/SlotRegistrybecause
the runtime rc.1 tree was uninstallable and the bundles are closure
factories. After rc.6 became installable the real reason remained the
factory format, so the specs now mount the real services through a test
module loader (packages/stent-dsh/tests/browser/module-loader.ts): happy-dom provideswindow; the__ModuleLoader__sink installs at helper module load; platform seeds
(cordis,ui-slots,react) preload as ESM namespaces (the factoryrequireis synchronous and node cannotrequireESM);ui-primitives— a render-only heavy package — is stubbed;materialize()
executes a factory with the module-table require (recursing into other
registered bundles, memoized,stripClientSuffixnormalizingpkg/client).
LoaderbaseUrland fixture URLs are pinned to file paths because
happy-dom'slocationishttp://localhost:3000.
7. Linting
Each package runs Oxlint from its own package root with the pinned DSH toolchain (oxlint plus oxlint-tsgolint) and selected type-aware TypeScript rules; the root and package configs share a checked-in baseline. Warnings are failures. Generated lib/ output, JavaScript fixture launchers, and build configs stay outside this TypeScript lint face.
Oxfmt is the workspace formatter, with the shared policy in .oxfmtrc.json: two-space indentation, single quotes, no semicolons, trailing commas, and a 120-column print width. Each package owns its fmt and fmt:check commands; the carrier root's pack:fmt:check orchestrates the check across the root and all implementation packages. Generated lib/ output, fixture trees, JavaScript launcher fixtures, and build configs remain outside the formatting face.
The carrier root owns only the launcher under src/ and its root integration tests under tests/. Its lint, lint:fix, test, build, and knip commands never scan implementation package files; it has no pack:lint:fix command. Each implementation package declares its own toolchain and exposes independent lint, lint:fix, test, build, and knip commands scoped to that package; type checking is provided by each package's type-aware lint command rather than a separate typecheck script. The pack:* scripts at the carrier root are orchestration only: they keep the root-package checks separate from the package-owned commands and invoke the latter with pnpm --filter.
8. Timeline (abridged)
| Commit | Decision |
|---|---|
1e04b1a..2a42254 |
externalization: standalone Stent bundle, self-contained template |
4018661, 8ffaac4 |
port the upstream three-package split + full host patch; HMR e2e |
d9228c4, 40600d4 |
official plugin channel install; source-host install script |
1ba7077, 3331b80 |
web-app bundle composes the rows; rows become disabled opt-ins |
7b8e913, 3fd3106 |
patch rebases: 0812 baseline → 0813 baseline |
9158f5d |
delete host-contracts.ts; real @deepseek-ai/dsh-* types |
30ed5ff, b58c643 |
registry dependency policy (rc.5 peer, installable suites) |
58fbe75, 33955ef |
both browser halves become closure factories |
aa58a52 |
publish publicly (upstream parity) |
62ced22 |
revert the TSX workarounds (environment misdiagnosis) |
3fd1a56 |
happy-dom + ModuleLoader materializer; real browser services in tests |
9. Future work
- If the registry ever publishes node-importable builds (plain ESM or the
srchalves), the test module loader disappears and the specs import
packages directly. - Upstream promoting
createSnapshotStoreout ofdsh-client-runtimeshrinks
the seed table. - Upstream publishing
hmr.registerConfig/internal/updatewould let the
HMR runner mirror the in-tree config flow again.
Install
Install the catalog once, then DeepSeek Harness can find and install any plugin from this site automatically:
dsh plugin add dshbase-catalog Then say "install stent for me" — your agent finds it in the directory and installs it. Docs: dshbase-catalog · verified packs.
This plugin is GitHub source (not published to npm) — install it straight from the repo:
Web profile:
dsh plugin --profile web add github:omdsh-dev/stent Headless (CLI) profile:
dsh plugin --profile headless add github:omdsh-dev/stent Test report
Verified: L1 install + L2 load + L3 runtime from GitHub source on dsh 0.1.0-rc.6.