Merge branch 'master' into feat/workspace-native-folder-picker
This commit is contained in:
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# side as of the last confirmed-consistent state. Both languages carry equal authority;
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# after editing either side, bring the other along and re-record with:
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# pnpm run verify-translation-pairing --write
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2026-06-30-bash-stdin-env-trusted-plugin-surface.md: 284cd45a66294dbc9e8207a1e00e9642d32d4e58
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2026-06-30-bash-stdin-env-trusted-plugin-surface.zh.md: 9486f8c35c5060150b072fb673acca5d4167ec1a
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2026-06-30-bash-stdin-env-trusted-plugin-surface.md: 556d5dd86dfcc92c4628e68c19390f0033560d25
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2026-06-30-bash-stdin-env-trusted-plugin-surface.zh.md: 9d67797f86903e70e7bdcd6f80f19d17c41ac18e
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@@ -18,7 +18,7 @@ Three deliberate choices:
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1. **The model-facing tool omits `stdin` and `env`.** Shell syntax already covers those needs, so duplicate parameters would add surface without authority separation. The tool builds requests only from declared model arguments, signal, and owner; trusted in-process callers may set the seam fields directly. Harness-owned variables use the separate `dshEnv` channel from the [managed environment decision](../feature/2026-07-10-agent-session-identity-and-log-location.md), so ordinary `env` cannot replace them.
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2. **`env` merges AFTER the credential scrub, so an explicit caller entry wins even on a credential-shaped name.** The later managed-namespace decision reserves `DSH_*`: ambient entries are removed, ordinary `env` cannot set them, and trusted `dshEnv` merges last. The complete order is `scrub(process.env, including DSH_*)` → `ENV_OVERRIDES` → ordinary `env` → `dshEnv`.
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2. **`env` merges AFTER the credential scrub, so an explicit caller entry wins even on a credential-shaped name.** The later managed-namespace decision manages `DSH_*`: ambient entries are removed, and trusted `dshEnv` merges last, so an ordinary `env` entry can never displace a managed value. The complete order is `scrub(process.env, including DSH_*)` → `ENV_OVERRIDES` → ordinary `env` → `dshEnv`.
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3. **`stdin`/`env` are required-absent-OK (plain optional) on the resolved spec, NOT required-but-nullable like `owner`.** `owner` is required-but-nullable because a *silently* missing owner yields an unowned, cross-session-readable task — a security footgun that a visible `undefined` guards against. `stdin`/`env` have no such hazard: a missing one means "no stdin / no extra env", which is the safe, ordinary case (every model-driven call). So they stay plain optionals, matching `signal`.
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@@ -18,7 +18,7 @@ Status: implemented
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1. **模型侧工具不暴露 `stdin` 和 `env`。** Shell 语法已覆盖这些需求,重复参数只会增加接口面而不带来权限隔离。工具仅从声明的模型参数、signal 和 owner 构建请求;受信的进程内调用方可以直接设置 seam 字段。harness 自有变量使用[托管环境决策](../feature/2026-07-10-agent-session-identity-and-log-location.md)规定的独立 `dshEnv` 通道,因此普通 `env` 无法替换它们。
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2. **`env` 在凭证擦除之后合并,因此调用方显式设置的条目即使具有凭证形态的名称也会胜出。** 后续的托管命名空间决策保留 `DSH_*`:环境条目会被移除,普通 `env` 无法设置它们,受信的 `dshEnv` 最后合并。完整顺序为 `scrub(process.env, including DSH_*)` → `ENV_OVERRIDES` → 普通 `env` → `dshEnv`。
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2. **`env` 在凭证擦除之后合并,因此调用方显式设置的条目即使具有凭证形态的名称也会胜出。** 后续的托管命名空间决策托管 `DSH_*`:环境条目会被移除,受信的 `dshEnv` 最后合并,因此普通 `env` 条目永远无法顶掉托管值。完整顺序为 `scrub(process.env, including DSH_*)` → `ENV_OVERRIDES` → 普通 `env` → `dshEnv`。
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3. **`stdin`/`env` 在已解析 spec 上是 required-absent-OK(普通 optional),而非像 `owner` 那样 required-but-nullable。** `owner` 之所以是 required-but-nullable,是因为*静默*缺失的 owner 会产生一个无主、跨会话可读的任务——一个安全隐患,显式的 `undefined` 可以防范。`stdin`/`env` 没有这种风险:缺失意味着「无 stdin / 无额外 env」,这是安全的常规情况(所有模型驱动的调用都如此)。因此它们保持普通 optional,与 `signal` 一致。
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@@ -2,5 +2,5 @@
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# side as of the last confirmed-consistent state. Both languages carry equal authority;
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# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-06-timeout-deadline-library.md: 11d4b8cd48dd345d2324b63e01bd726f12d846b4
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2026-07-06-timeout-deadline-library.zh.md: 334914c689adf54a654c5907395c29ceeeb50891
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2026-07-06-timeout-deadline-library.md: 63463a76a65743436d4e78479800c19e257a42de
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2026-07-06-timeout-deadline-library.zh.md: c3d3cdf1c63813fc24c10727e42d326142f3f4de
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@@ -8,7 +8,7 @@ English | [中文](2026-07-06-timeout-deadline-library.zh.md)
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Timeout handling was drifting apart across the tool-bearing capabilities, and the divergence was not superficial — it was the same logic re-implemented three ways, each with its own subtle correctness burden.
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- **bash** ([packages/bash/bash-local/src/run.ts](../../../../packages/bash/bash-local/src/run.ts)) had a full, correct timeout inside the process plumbing: a config-clamped `timeoutMs`, two independent triggers — a `killTimer` for the timeout and an `onAbort` listener for upstream cancellation — each calling one `kill()` closure that escalates SIGTERM→grace→SIGKILL on the process group, and two orthogonal outcome booleans (`timedOut`, `aborted`) latched independently.
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- **bash** (then in the bash-local implementation's `run.ts`) had a full, correct timeout inside the process plumbing: a config-clamped `timeoutMs`, two independent triggers — a `killTimer` for the timeout and an `onAbort` listener for upstream cancellation — each calling one `kill()` closure that escalates SIGTERM→grace→SIGKILL on the process group, and two orthogonal outcome booleans (`timedOut`, `aborted`) latched independently. After this consolidation, the plumbing — today [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts) — only reacts to aborts; [packages/bash/bash-local/src/index.ts](../../../../packages/bash/bash-local/src/index.ts) owns the fused deadline and the `timedOut`/`aborted` classification.
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- **web_fetch** ([packages/web/web-fetch-local/src/provider.ts](../../../../packages/web/web-fetch-local/src/provider.ts)) had a correct but *hand-rolled* timeout: it constructed an `AbortController`, wired `setTimeout(() => controller.abort(new WebError(…, 'WEB_FETCH_TIMEOUT')))`, manually added and removed the upstream-signal listener, cleared the timer in a `finally`, and recovered the timeout reason from `signal.reason` in a `translateAbortOrNetwork` helper because the reader surfaces a bare `AbortError`.
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- **web_search** ([packages/web/tool-web/src/search.ts](../../../../packages/web/tool-web/src/search.ts)) had **no timeout at all**: `WebSearchRequest` ([packages/web/web/src/types.ts](../../../../packages/web/web/src/types.ts)) carries no `timeoutMs` field, and each provider's `search()` only forwards `exec.signal`. (web_search stays untimed here — see Consequences.)
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@@ -8,7 +8,7 @@ Status: implemented
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超时处理在各个承载工具的能力之间逐渐分化,而且这种分化并非表面的:同一套逻辑被以三种方式重新实现,各自带有微妙的正确性负担。
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- **bash**([packages/bash/bash-local/src/run.ts](../../../../packages/bash/bash-local/src/run.ts))在进程管道内部有一套完整、正确的超时实现:一个经配置钳位的 `timeoutMs`,两个独立触发器(用于超时的 `killTimer` 和用于上游取消的 `onAbort` 监听器),各自调用同一个 `kill()` 闭包对进程组执行 SIGTERM→宽限期→SIGKILL 升级,以及两个正交的结果布尔值(`timedOut`、`aborted`)独立锁存。
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- **bash**(当时位于 bash-local 实现的 `run.ts`)在进程管道内部有一套完整、正确的超时实现:一个经配置钳位的 `timeoutMs`,两个独立触发器(用于超时的 `killTimer` 和用于上游取消的 `onAbort` 监听器),各自调用同一个 `kill()` 闭包对进程组执行 SIGTERM→宽限期→SIGKILL 升级,以及两个正交的结果布尔值(`timedOut`、`aborted`)独立锁存。经此次整合之后,这套管道——今天位于 [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts)——只响应中止;[packages/bash/bash-local/src/index.ts](../../../../packages/bash/bash-local/src/index.ts) 拥有融合的 deadline 以及 `timedOut`/`aborted` 分类。
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- **web_fetch**([packages/web/web-fetch-local/src/provider.ts](../../../../packages/web/web-fetch-local/src/provider.ts))有一套正确但*手写*的超时:构造一个 `AbortController`,连接 `setTimeout(() => controller.abort(new WebError(…, 'WEB_FETCH_TIMEOUT')))`,手动添加和移除上游信号监听器,在 `finally` 中清除定时器,并在 `translateAbortOrNetwork` 辅助函数中从 `signal.reason` 恢复超时原因(因为 reader 只抛出裸 `AbortError`)。
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- **web_search**([packages/web/tool-web/src/search.ts](../../../../packages/web/tool-web/src/search.ts))**完全没有超时**:`WebSearchRequest`([packages/web/web/src/types.ts](../../../../packages/web/web/src/types.ts))不携带 `timeoutMs` 字段,各提供方的 `search()` 只转发 `exec.signal`。(web_search 在本次设计中保持无超时——见「后果」。)
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@@ -2,5 +2,5 @@
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# side as of the last confirmed-consistent state. Both languages carry equal authority;
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# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.md: 63e3f45ab2340ee2b732da286117e25be45bed08
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2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.zh.md: 2348e07d58f7f0ed39a1759cc30133c8e15dbc4a
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2026-07-26-subprocess-consumer-migration.md: b31f69f1251a7219e168ed7800ba16ff7d6b328c
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2026-07-26-subprocess-consumer-migration.zh.md: 47e7519a72f5482f255d15d87b483e9295f6cd2c
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# Agent Note: The subprocess seam goes Node-shaped and every eligible spawner rides it
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Status: implemented
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English | [中文](2026-07-26-subprocess-consumer-migration.zh.md)
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## Problem
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The [subprocess seam](2026-07-26-subprocess-seam.md) shipped shaped for exactly one consumer family: batch-collected stdout/stderr, batch stdin, a single escalating `kill()`. That was deliberate scope control, and its own note records "migrate the other spawn sites" as rejected-for-now. Review on the introducing PR reversed that deferral: the stacked follow-up should reshape the interface toward Node's API and move the remaining process-running places onto the service. The remaining spawners each carried a private copy of some slice of the same mechanics — lsp-local had its own detached-tree signalling (POSIX group + Windows taskkill + liveness polling), subagent-subprocess had the dispose ladder and its own scrub, mcp-client and pty-local and the SDK helper each had a third/fourth/fifth copy of the credential scrub — and none of it was swappable or centrally testable.
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## Decision
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The seam's vocabulary is now Node-shaped, and every spawner that can ride the service does:
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- **Per-stream stdio dispositions** on `SubprocessSpawnSpec`: `'pipe'` (the raw `Readable`/`Writable`, for consumer-owned protocol framing), `'inherit'` (diagnostics to the parent's stream), and collect mode `{ maxBytes, spill? }` — the original bounded tail-keep shape, with the spill file now optional so a diagnostic tail (a language server's stderr) buffers without touching disk. stdin is `'ignore'`, `'pipe'`, or `{ data }` (write-and-close batch).
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- **`SubprocessOutcome` carries exit facts only** (Node's close-event vocabulary); collected output stays readable through `handle.collected` after settlement (spill fds seal at the settle boundary), so batch and streaming callers share one access path and nothing is copied into the outcome.
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- **Tree-scoped termination behind one verb**: `terminate()` owns the SIGTERM→grace→SIGKILL escalation (serves the spec's abort signal too, and is a no-op once the tree is gone) — the handle exposes no single-signal `kill(signal?)`, so a consumer cannot skip the grace window; `waitForExit()` polls tree liveness (POSIX group probe; direct-child boundary on Windows); Windows tree termination (`taskkill /T`, injectable) moved in from lsp-local, so tree semantics are platform-correct for every consumer. (The stdin-EOF-first dispose ladder initially absorbed from `subagent-subprocess` later moved back out to its one consumer — see the [ladder-ownership Agent Note](2026-07-27-dispose-ladder-to-consumer.md).)
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- **One scrub definition**: `scrubbedParentEnv()`/`SENSITIVE_ENV_PATTERN` live on the seam. Spawners that cannot route the spawn itself through the service — pty-local (node-pty owns the fork) and mcp-client (the MCP SDK owns the transport spawn) — import the function, so environment policy is single-sourced even where process ownership is not; the SDK helper's `scrubEnvironment()` defaults through it as well.
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Migrations landed with the reshape: **bash-local/bash-sandbox** (collect modes + batch stdin; the bash `kill()` maps to `terminate()` so `task_kill` keeps escalation semantics), **lsp-local** (piped protocol streams + a no-spill collected stderr tail; `LspConnection` takes the seam's spawn function; its private tree-op helpers deleted), **subagent-acp** (piped ndjson streams + inherited stderr; spawn failure surfaces through `done` rejection into the same startup race; disposal is the backend-owned `disposeAcpChild` ladder over the seam's verbs, with the plugin's configured graces). **`dsh-subagent-subprocess` is deleted** — the dispose ladder and scrub are the seam's; the unused isolated-config-dir helper died with it (no consumer existed).
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Compositions mounting lsp-local or subagent-acp now load `dsh-subprocess-local` (the plugins inject `'subprocess'`); the acp/lsp test fixtures gained the row.
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## Alternatives considered
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**Keep the batch-only seam and let stream consumers stay bespoke.** The introducing note's position, rejected by review: it leaves three private copies of tree signalling and five of the scrub, and any future runner (containerized executor, remote process host) would have to pick which private copy to fork. The Node-shaped dispositions cover all three observed stream shapes without widening the outcome type or buffering piped streams.
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**A single `stdio: 'pipe' | 'inherit' | 'collect'` mode for all three streams at once.** Rejected: real consumers mix modes per stream (lsp: pipe/pipe/collect; acp: pipe/pipe/inherit; bash: data/collect/collect). Per-stream dispositions are exactly Node's shape and avoid a second spawn call for the mixed cases.
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**Migrate pty-local and mcp-client spawns too.** Rejected on ownership grounds, not scope: node-pty's `fork()` allocates the terminal itself, and the MCP SDK's `StdioClientTransport` spawns internally — neither call site is ours to route. They adopt the shared scrub (the part that is policy), and their READMEs say why the spawn stays put.
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**Migrate the test-support launchers (acp-snapshot, loader-smoke) and the SDK package-manager runner.** Rejected: the support packages are deliberately dependency-light test infrastructure that must not depend on product seams, and the SDK wizard's `stdio: 'inherit'`-with-redirect semantics plus its out-of-composition lifecycle (no cordis context at all) make the service a poor fit; it shares the scrub instead.
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## Consequences
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Bought: one implementation of tree signalling, escalation, bounded collection, and the scrub, tested once in `dsh-subprocess-local`'s suites (including injected-platform Windows coverage that lsp-local's private copy never had); lsp-local and subagent-acp shed their process plumbing and their children now survive plugin reloads and die with composition teardown like bash's; a whole package (`dsh-subagent-subprocess`) is gone. The seam README's "one consumer family" limitation is retired.
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Cost: the seam is wider — three stdio modes and the terminate/waitForExit/dispose lifecycle surface instead of one mode and one verb — so a future backend implements more surface; the compositions for lsp-local/subagent-acp each carry the subprocess row now; and `SubprocessOutcome` no longer carries output, a breaking shape change inside the still-unreleased stack (the PR2 layer was updated in place rather than shimmed, per the pre-release stance). pty-local/mcp-client/SDK/test-support spawns remain outside the service by ownership, with the scrub as the shared floor.
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# Agent Note: 进程 seam 转向 Node 形状,所有具备条件的 spawn 调用点一并迁入
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Status: implemented
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[English](2026-07-26-subprocess-consumer-migration.md) | 中文
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## 问题
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[进程 seam](2026-07-26-subprocess-seam.md) 交付时恰好只为一个消费方家族塑形:批量收集的 stdout/stderr、批量 stdin、单一的升级式 `kill()`。那是有意的范围控制,其自身的 Agent Note 也把「迁移其余 spawn 调用点」记为暂缓否决项。引入该 seam 的 PR(Pull Request)上的评审推翻了这一暂缓决定:堆叠其上的后续变更应当把接口向 Node 的 API 方向重塑,并把其余运行进程之处迁到该服务上。其余各 spawn 调用点此前各自持有同一套机制中某个切片的私有副本——lsp-local 自带 detached 进程树信号发送(POSIX 进程组 + Windows taskkill + 存活轮询),subagent-subprocess 自带 dispose(资源释放)阶梯和自己的凭据清除,mcp-client、pty-local 与 SDK helper 则各自持有凭据清除的第三、第四、第五份副本——而这一切既不可替换,也无法集中测试。
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## 决策
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这道 seam 的词汇如今已是 Node 形状,凡能接入该服务的 spawn 调用点均已迁入:
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- **按流划分的 stdio 处置方式(disposition)**,位于 `SubprocessSpawnSpec` 上:`'pipe'`(原始的 `Readable`/`Writable`,供消费方自有的协议分帧使用)、`'inherit'`(诊断输出直通父进程的流),以及收集模式(collect)`{ maxBytes, spill? }`——即最初的有界尾部保留形状,只是 spill 文件改为可选,使诊断尾部(例如语言服务器的 stderr)无需落盘即可缓冲。stdin 则为 `'ignore'`、`'pipe'` 或 `{ data }`(写完即关闭的批量形式)。
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- **`SubprocessOutcome` 只承载退出事实**(Node close 事件的词汇);收集到的输出在结算后仍可经 `handle.collected` 读取(spill 文件描述符在结算边界封存),因此批量与流式调用方共用一条访问路径,也没有任何内容被复制进这份结果。
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- **以进程树为范围的终止,集中在一个动词后面**:`terminate()` 拥有 SIGTERM→宽限期→SIGKILL 升级(也承接 spec 的 abort 信号,进程树消亡后为空操作)——句柄不暴露单信号的 `kill(signal?)`,因此消费方无法跳过宽限窗口;`waitForExit()` 轮询进程树存活状态(POSIX 进程组探测;Windows 上以直接子进程为界)。Windows 进程树终止(`taskkill /T`,可注入)自 lsp-local 迁入,因此每个消费方拿到的进程树语义在各平台上都正确。(最初从 `subagent-subprocess` 吸收的以 stdin EOF 打头的 dispose 阶梯,后来又移回其唯一消费方——见[阶梯归属 Agent Note](2026-07-27-dispose-ladder-to-consumer.md)。)
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- **凭据清除只有一份定义**:`scrubbedParentEnv()`/`SENSITIVE_ENV_PATTERN` 定义在 seam 上。无法把 spawn 本身路由到该服务的调用点——pty-local(node-pty 拥有 fork)与 mcp-client(MCP SDK 拥有传输层的 spawn)——改为导入该函数,因此即便进程所有权无法统一,环境策略仍是单一来源;SDK helper 的 `scrubEnvironment()` 默认同样委托给它。
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各项迁移随这次重塑一并落地:**bash-local/bash-sandbox**(收集模式 + 批量 stdin;bash 的 `kill()` 映射到 `terminate()`,因此 `task_kill` 保有升级语义),**lsp-local**(管道化的协议流 + 无 spill 的 stderr 收集尾部;`LspConnection` 改为接收 seam 的 spawn 函数;其私有的进程树操作辅助函数已删除),**subagent-acp**(管道化的 ndjson 流 + inherit 的 stderr;spawn 失败经 `done` 的 reject 汇入同一个启动竞态;dispose 是后端自有的 `disposeAcpChild` 阶梯,经由 seam 的动词运行,携带插件所配置的宽限期)。**`dsh-subagent-subprocess` 已删除**——dispose 阶梯与凭据清除归 seam 所有;无人使用的隔离配置目录辅助函数随之消亡(其消费方本就不存在)。
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挂载 lsp-local 或 subagent-acp 的组合如今都加载 `dsh-subprocess-local`(这两个插件注入 `'subprocess'`);acp/lsp 测试 fixture(测试前置数据)补上了这一行组合配置。
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## 曾考虑的替代方案
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|
||||
**保持只支持批量的 seam,让流式消费方继续各自为政。**这正是引入该 seam 的 Agent Note 当初的立场,评审将其否决:这样会留下三份进程树信号发送的私有副本和五份凭据清除的私有副本,而未来任何运行器(容器化执行器、远程进程宿主)都得挑选去 fork 哪一份私有副本。Node 形状的处置方式覆盖已观察到的全部三种流形状,既不拓宽结果类型,也不缓冲管道化的流。
|
||||
|
||||
**用单个 `stdio: 'pipe' | 'inherit' | 'collect'` 模式一次性统辖全部三条流。**否决:真实消费方按流混用模式(lsp:pipe/pipe/collect;acp:pipe/pipe/inherit;bash:data/collect/collect)。按流划分的处置方式恰好就是 Node 的形状,也免去了混用场景的第二个 spawn 调用。
|
||||
|
||||
**把 pty-local 与 mcp-client 的 spawn 也一并迁移。**基于所有权而非范围否决:node-pty 的 `fork()` 自行分配终端,MCP SDK 的 `StdioClientTransport` 在内部完成 spawn——这两处调用点都不归我们路由。它们采纳共享的凭据清除(那正是属于策略的部分),并在各自的 README 中说明 spawn 为何留在原地。
|
||||
|
||||
**迁移 test-support 启动器(acp-snapshot、loader-smoke)与 SDK package-manager 运行器。**否决:support 各包(package)是刻意保持轻依赖的测试基础设施,不得依赖产品 seam;而 SDK 向导那套附带重定向的 `stdio: 'inherit'` 语义,加上其完全脱离组合的生命周期(根本没有 cordis 上下文),使该服务并不合用;它改为共享凭据清除。
|
||||
|
||||
## 后果
|
||||
|
||||
换来的是:进程树信号发送、升级、有界收集与凭据清除各自只剩一份实现,且只在 `dsh-subprocess-local` 的测试套件中测试一次(其中包括 lsp-local 的私有副本从未有过的、以注入平台方式实现的 Windows 覆盖);lsp-local 与 subagent-acp 卸下了自己的进程管道,其子进程如今像 bash 的一样,在插件重载后存活、随组合拆除而终止;一个完整的包(`dsh-subagent-subprocess`)就此消失。seam README 中「只有一个消费方家族」的限制说明也随之退役。
|
||||
|
||||
代价是:这道 seam 变宽了(stdio 模式从一种变为三种、终止动词换成 terminate/waitForExit/dispose 这组生命周期表面),未来的后端因此要实现更宽的表面;lsp-local/subagent-acp 的各组合如今都多出 subprocess 这一行组合配置;`SubprocessOutcome` 也不再承载输出,这是仍未发布的堆叠变更内部的一次破坏性形状变更(依照预发布立场,PR2 那一层被就地更新,而非加 shim)。pty-local/mcp-client/SDK/test-support 的 spawn 因所有权归属留在该服务之外,以凭据清除作为共享底线。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-26-subprocess-seam.md: ad2f8522be51ba16b0df155aeb334a88f493890f
|
||||
2026-07-26-subprocess-seam.zh.md: d9a0fb56b57b545dd1f94fde0cfb436d58fe00d4
|
||||
@@ -0,0 +1,38 @@
|
||||
# Agent Note: The subprocess service is its own seam under the bash executors (`dsh-subprocess` / `dsh-subprocess-local`)
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-26-subprocess-seam.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
`dsh-bash-local` bundled two capabilities that change for different reasons: *running a bash command* (command defaulting, timeout classification, model-friendly terminal environment, the stdout/stderr merge the bash tool renders) and *running and managing a child process* (detached process groups, bounded tail-keep output with spill files, the credential scrub and `DSH_*` merge order, SIGTERM→grace→SIGKILL escalation, kill-and-join disposal). The process half — `run.ts`, roughly half the package — had no seam of its own: a future non-shell runner (a direct-argv executor, a worker supervisor) would have to re-implement or reach into bash internals, and the shared `DSH_*`/`CollectedOutput` vocabulary lived in a package whose name promises shell semantics. The bundling also tied background-process lifetime to the executor's fiber: reloading the bash executor killed every live background process, unlike the sibling [task registry](2026-07-26-task-registry-seam.md), whose registrations deliberately outlive producer fibers.
|
||||
|
||||
## Decision
|
||||
|
||||
A new `subprocess/` capability family owns "run and manage a process"; the bash family keeps "run a bash command" and consumes it:
|
||||
|
||||
- **`@deepseek-ai/dsh-subprocess` (interface)** — the abstract `SubprocessService` owning `ctx.subprocess` with one method, `spawn(spec): SubprocessHandle`, and the shared vocabulary: the fully-explicit `SubprocessSpawnSpec` (argv, cwd, per-stream stdio dispositions, grace — no defaults; deployment-varying knobs stay with the calling seam's config, per the `dsh-bash` request/spec template and the no-hidden-defaults rule), `SubprocessHandle` with non-consuming offset-based readers, `SubprocessOutcome` with deliberately no timeout/cancel classification, and the shared scrub plus `DSH_ENV_PREFIX`/`DshEnvironment`/`CollectedOutput` types. `argv` is never shell-interpreted. (The [consumer-migration Agent Note](2026-07-26-subprocess-consumer-migration.md) later widened the stdio and termination vocabulary Node-ward.)
|
||||
- **`@deepseek-ai/dsh-subprocess-local` (implementation)** — `LocalSubprocessService` over the former `run.ts` plumbing (`spawn.ts`): detached groups, tail-keep truncation with private bounded spill files, credential scrub with the explicit-env merge after it, group kill escalation, and disposal that kills and joins every still-running managed process. It has no config; every limit arrives on the spec. The terminal `ENV_OVERRIDES` (`TERM=dumb` etc.) did NOT move — that is bash-tool presentation policy and stays in `dsh-bash-local`, merged through the ordinary env channel.
|
||||
- **`dsh-bash-local` (consumer)** — `inject: ['subprocess']`; maps each resolved `BashExecSpec` onto a `SubprocessSpawnSpec` (`['bash', '-c', command]`), keeps its config, `resolve()` defaulting, fused-deadline `timedOut`/`aborted` classification, the `[stderr]`-marked background read merge with its consuming cursor, and the `onProcessDone` subclass hook. `dsh-bash-sandbox` is unchanged apart from redeclaring the inherited inject; it still wraps at the command-string level and re-enters the inherited spawn path.
|
||||
- **`dsh-bash` (seam)** — re-exports the moved vocabulary from `dsh-subprocess`, so no bash consumer changes an import; `BashExecRequest`/`BashExecSpec`/`BashProcess` and the sandbox facts remain bash-owned.
|
||||
|
||||
Every composition that loads a bash executor now also loads `@deepseek-ai/dsh-subprocess-local` (CLI, examples, python bundled runtime, create-sdk's bash feature resources, inline test configs).
|
||||
|
||||
Background-process lifetime moved from the executor to the subprocess service: the executor no longer retains a live-process set, so an executor reload leaves background work running and readable, and composition teardown (the service's disposal) remains the kill-and-join boundary. One behavioral seam shifted with it: a background spawn failure can no longer be buffered as fake stderr inside the plumbing (the service rejects `done` and buffers nothing for a process that never ran), so the executor injects the `spawn failed: …` note into exactly one `readOutput()` delta.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Leave the process plumbing inside `dsh-bash-local` (status quo).** Rejected for the same reason the [task registry split](2026-07-26-task-registry-seam.md) landed: the boundary is stable and already documented in-code (`run.ts`'s module doc said "this layer reacts to an abort signal; the executor owns deadlines and classifies causes"), and keeping it private makes every future non-shell runner either fork the mechanics or depend on a bash-named package for non-bash work. The user-visible driver for this stack was exactly this split.
|
||||
|
||||
**Migrate the repo's other spawn sites (lsp-local, pty-local, subagent-subprocess, sdk package-manager, test-support launchers) onto `ctx.subprocess` in the same change.** Rejected as scope creep with real design risk at this PR's scale: those sites have materially different stream and lifecycle needs — node-pty ownership (pty), LSP framing over long-lived stdio with tree-kill fallbacks (lsp), stdin-EOF-first disposal ladders and no output buffering (subagent transports) — and forcing them under a handle shaped for bounded batch output would either bloat the seam or misfit the consumers. The seam shipped proven against its one real consumer family, per the shape-interfaces-around-current-consumers rule. Review then asked for exactly that follow-up as a stacked PR; the [consumer-migration Agent Note](2026-07-26-subprocess-consumer-migration.md) records the Node-ward reshape and which sites moved (and which stayed, by ownership).
|
||||
|
||||
**Put `run_in_background`/task semantics into the process seam instead.** Rejected: that boundary already exists — `ctx.tasks` owns ids, ownership, and notices, and the bash tool adapts a `BashProcess` into task hooks. The process seam sits *below* the bash executor, not beside the task registry.
|
||||
|
||||
**Move `ENV_OVERRIDES` (TERM=dumb, PAGER=cat …) into the subprocess service.** Rejected: a generic subprocess service must not impose terminal presentation policy on non-terminal consumers; the ambient scrub (credential-shaped and `DSH_*` names) is a security/identity invariant and stays, but terminal friendliness is the bash tool's choice, expressed through the spec's explicit env where a caller's own entry still wins.
|
||||
|
||||
## Consequences
|
||||
|
||||
Bought: "run and manage a process" is a swappable capability with the standard three-package shape (consumer count starts at two: `bash-local`, `bash-sandbox`); a containerized or remote process backend slots in without touching bash semantics; the shared `DSH_*`/output vocabulary has a non-shell home; and background processes survive executor reloads, matching the task registry's lifetime model. The spawn plumbing suite moved wholesale to `dsh-subprocess-local` (argv-based, plus argv-validation and service lifecycle/disposal suites); the executor suite now pins the bash-owned layers (classification, merge, spawn-failure note, service-owned lifetime) against the real service.
|
||||
|
||||
Cost: one more package pair and one more composition row everywhere a bash executor loads — a boot that loads an executor without the subprocess service leaves `ctx.bash` pending on `ctx.subprocess` (standard missing-service behavior). The moved-vocabulary re-exports keep `dsh-bash` imports working but mean two packages now name the same types; the subprocess seam is the owner and the bash seam documents the re-export. The spawn-failure note became single-delivery through the read path where the old plumbing retained it in the stderr buffer for repeated `readFrom(0)` reads — acceptable because the bash background read path was already a consuming cursor, and the note reaches the one reader that exists.
|
||||
@@ -0,0 +1,38 @@
|
||||
# Agent Note: 进程管理器是 bash 执行器之下的独立 seam(`dsh-subprocess` / `dsh-subprocess-local`)
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-26-subprocess-seam.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
`dsh-bash-local` 原先把两项因不同原因而变化的能力捆绑在一起:*运行一条 bash 命令*(命令默认值补全、超时分类、对模型友好的终端环境、bash 工具所渲染的 stdout/stderr 合并)与*运行并管理一个子进程*(detached 进程组、附带 spill 文件的有界尾部保留输出、凭据清除与 `DSH_*` 合并次序、SIGTERM→宽限期→SIGKILL 升级、先终止再等待退出的 dispose(资源释放))。进程这一半(`run.ts`)约占整个包(package)的一半,却没有属于自己的 seam:未来的非 shell 运行器(直接执行 argv 的执行器、worker supervisor)将不得不重新实现这套机制,或者探入 bash 内部;而共享的 `DSH_*`/`CollectedOutput` 词汇则存放在一个名字承诺 shell 语义的包里。这种捆绑还把后台进程的存续期系在执行器的 fiber 上:重载 bash 执行器会杀死每一个存活的后台进程。这一点不同于兄弟的[任务注册表](2026-07-26-task-registry-seam.md):后者的注册存续期刻意长于生产方 fiber。
|
||||
|
||||
## 决策
|
||||
|
||||
新的 `subprocess/` 能力家族拥有「运行并管理一个进程」;bash 家族保留「运行一条 bash 命令」,并成为前者的消费方:
|
||||
|
||||
- **`@deepseek-ai/dsh-subprocess`(接口)**——拥有 `ctx.subprocess` 的抽象 `SubprocessService`(仅一个方法:`spawn(spec): SubprocessHandle`),以及共享词汇:完全显式的 `SubprocessSpawnSpec`(argv、cwd、按流划分的 stdio 处置方式(disposition)、宽限期,一律不设默认值;随部署变化的旋钮依照 `dsh-bash` 的 request/spec 模板与无隐藏默认值规则,留在调用方 seam 的配置里)、携带基于偏移量的非消费式读取器的 `SubprocessHandle`、刻意不含超时/取消分类的 `SubprocessOutcome`,以及共享的凭据清除与 `DSH_ENV_PREFIX`/`DshEnvironment`/`CollectedOutput` 类型。`argv` 绝不经过 shell 解释。([消费方迁移 Agent Note](2026-07-26-subprocess-consumer-migration.md) 其后将 stdio 与终止词汇拓宽为 Node 形状。)
|
||||
- **`@deepseek-ai/dsh-subprocess-local`(实现)**——`LocalSubprocessService`,构建在原 `run.ts` 管道(现为 `spawn.ts`)之上:detached 进程组、带私有有界 spill 文件的尾部保留截断、清除之后合并显式 env 的凭据清除、进程组 kill 升级,以及会终止每个仍在运行的受管进程并等待其退出的 dispose。该实现没有任何配置;每项限制都随 spec 到达。终端相关的 `ENV_OVERRIDES`(`TERM=dumb` 等)并未迁移:那是 bash 工具的呈现策略,留在 `dsh-bash-local` 里,经普通 env 通道合并。
|
||||
- **`dsh-bash-local`(消费方)**——`inject: ['subprocess']`;把每个解析后的 `BashExecSpec` 映射为一个 `SubprocessSpawnSpec`(`['bash', '-c', command]`),并保留自身配置、`resolve()` 默认值补全、基于融合 deadline 的 `timedOut`/`aborted` 分类、带 `[stderr]` 标记的后台读取合并及其消费游标,以及 `onProcessDone` 子类钩子。`dsh-bash-sandbox` 除了重新声明继承来的 inject 之外没有变化;它仍在命令字符串层面做包装,并重新进入继承的 spawn 路径。
|
||||
- **`dsh-bash`(seam)**——把迁走的词汇从 `dsh-subprocess` 重导出,因此没有任何 bash 消费方需要改动导入;`BashExecRequest`/`BashExecSpec`/`BashProcess` 与沙箱事实仍归 bash 所有。
|
||||
|
||||
如今,每个加载 bash 执行器的组合都同时加载 `@deepseek-ai/dsh-subprocess-local`:CLI(命令行界面)、各示例、Python 捆绑运行时、create-sdk 的 bash 功能资源,以及各内联测试配置。
|
||||
|
||||
后台进程的存续期从执行器移到了管理器:执行器不再保有存活进程集合,于是重载执行器后,后台工作会继续运行且仍可读取,而组合拆除(管理器的 dispose)仍是先终止再等待退出的边界。一条行为 seam 随之挪动:后台 spawn 失败不再能在管道内部被缓冲成伪造的 stderr(对一个从未真正运行的进程,管理器会 reject `done`,且不缓冲任何内容),因此执行器把 `spawn failed: …` 提示注入恰好一个 `readOutput()` 增量。
|
||||
|
||||
## 曾考虑的替代方案
|
||||
|
||||
**把进程管道留在 `dsh-bash-local` 里(维持现状)。**否决的理由与[任务注册表拆分](2026-07-26-task-registry-seam.md)得以落地的理由相同:这条边界既稳定,也早已记录在代码里(`run.ts` 的模块文档曾写明「this layer reacts to an abort signal; the executor owns deadlines and classifies causes」),而若继续将它保持私有,未来每个非 shell 运行器就只能要么 fork 这套机制,要么为非 bash 工作去依赖一个以 bash 命名的包。这组堆叠变更对用户可见的动因正是这一拆分。
|
||||
|
||||
**在同一变更中把仓库其余 spawn 调用点(lsp-local、pty-local、subagent-subprocess、sdk package-manager、test-support 各启动器)迁到 `ctx.subprocess` 上。**在本 PR(Pull Request)的规模下,作为带有真实设计风险的范围蔓延否决。这些调用点在流与生命周期上的需求存在实质差异:node-pty 所有权(pty)、长生命周期 stdio 上的 LSP 分帧加进程树终止回退(lsp)、以 stdin EOF 打头的 dispose 阶梯和完全不缓冲输出(subagent 传输层)。把它们强行纳入一个按有界批量输出塑形的句柄之下,要么会让这道 seam 膨胀,要么会让句柄与消费方错配。依照「接口围绕当前消费方塑形」的规则,该 seam 当时在其唯一真实的消费方家族上得到验证后交付。评审随后恰恰要求以堆叠 PR 的形式完成这项后续工作;[消费方迁移 Agent Note](2026-07-26-subprocess-consumer-migration.md) 记录了向 Node 形状的重塑,以及哪些调用点迁入(哪些因所有权归属而留在原地)。
|
||||
|
||||
**改把 `run_in_background`/任务语义放进进程 seam。**否决:那条边界已经存在。`ctx.tasks` 拥有 id、所有权与通知,bash 工具则把 `BashProcess` 适配成任务钩子。进程 seam 位于 bash 执行器*之下*,而不是与任务注册表并列。
|
||||
|
||||
**把 `ENV_OVERRIDES`(TERM=dumb、PAGER=cat 等)移入管理器。**否决:通用进程管理器不得把终端呈现策略强加给非终端消费方;对环境中凭据形态名称与 `DSH_*` 名称的清除是安全与身份不变式,予以保留,但终端友好性是 bash 工具自己的选择,经 spec 的显式 env 表达,而调用方自己的条目依旧优先。
|
||||
|
||||
## 后果
|
||||
|
||||
换来的是:「运行并管理一个进程」成为一项具备标准三包形态的可替换能力(消费方起步就有两个:`bash-local`、`bash-sandbox`);容器化或远程进程后端可以直接接入,而不触碰 bash 语义;共享的 `DSH_*`/输出词汇有了一个不带 shell 含义的归属;后台进程也能在执行器重载后存活,与任务注册表的存续期模型一致。spawn 管道测试套件整体迁至 `dsh-subprocess-local`(现以 argv 为基础,外加 argv 校验与管理器生命周期/dispose 套件);执行器测试套件如今对着真实管理器固定 bash 所有的各层(分类、合并、spawn 失败提示、归管理器所有的存续期)。
|
||||
|
||||
代价是:多出一对包,而且凡加载 bash 执行器之处都多一行组合配置。若某次启动加载了执行器却没有加载管理器,`ctx.bash` 会因等待 `ctx.subprocess` 而保持挂起(标准的服务缺失行为)。迁移词汇的重导出让 `dsh-bash` 的导入继续可用,但也意味着两个包如今命名同一批类型;进程 seam 是所有者,bash seam 则记录这层重导出。spawn 失败提示经由读取路径变为单次交付,而旧管道曾把它保留在 stderr 缓冲区里,供重复的 `readFrom(0)` 读取;这一点可以接受,因为 bash 的后台读取路径本就是消费游标,该提示能到达唯一存在的那个读取方。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-27-dispose-ladder-to-consumer.md: 97b551ff509e3b424f6bf5725939cf54acc961a7
|
||||
2026-07-27-dispose-ladder-to-consumer.zh.md: b6849ad393737f2fef06e2007991583b12a04d7a
|
||||
@@ -0,0 +1,23 @@
|
||||
# Agent Note: The dispose ladder belongs to its consumer, not the subprocess seam
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-27-dispose-ladder-to-consumer.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
`SubprocessHandle.dispose(graces)` and `SubprocessDisposeGraces` put a full teardown *policy* — stdin-EOF wait, then SIGTERM, then SIGKILL, each tier bounded by a caller-supplied window — on a seam whose other verbs are single mechanisms. Only one consumer ever called it (the ACP subagent backend); bash rides `terminate()` and service teardown, and the LSP host runs its own protocol-first shutdown. Every future backend nonetheless had to implement the ladder to satisfy the interface, and the implementation carried a `dsh-timeout` dependency solely for the ladder's tier bounds.
|
||||
|
||||
## Decision
|
||||
|
||||
The ladder moves to its one consumer. `dsh-subagent-acp` owns `disposeAcpChild(child, eofGraceMs, graceMs)`, built entirely on the seam's public verbs: close `stdin`, bound a `waitForExit` on `eofGraceMs`, then `terminate()` (whose SIGTERM→spec-grace→SIGKILL escalation already encodes the signal tiers), then a final bounded whole-tree wait that throws if survivors remain. The seam keeps `kill`/`terminate`/`waitForExit` — mechanisms, not policy — and `waitForExit(signal?)` is exactly the quiescence probe a consumer ladder needs to hold each tier on real tree exit. `dsh-subprocess-local` drops its `dsh-timeout` dependency; the seam's handle loses one method and one exported interface.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Keep the ladder on the handle as a convenience.** Rejected: a seam method every implementation must provide is not a convenience, it is contract surface — and this one encodes one consumer's cooperation shape (stdin-EOF-first) as if it were process vocabulary. The seam's own README already had to caveat that children quiescing on other signals need "their own tier-1", which is the admission that the ladder is policy.
|
||||
|
||||
**Move the ladder to a shared helper package.** Rejected: one consumer. A second out-of-process backend with the same stdin-EOF cooperation shape can lift `disposeAcpChild` to shared code when it exists; extracting now would recreate `dsh-subagent-subprocess`, the single-purpose library this stack just deleted.
|
||||
|
||||
## Consequences
|
||||
|
||||
Bought: the seam is one method and one type smaller; implementations owe four verbs and no teardown policy; `dsh-subprocess-local` loses a dependency; the ladder's tier windows live beside the config fields that tune them. Cost: a future backend wanting EOF-first teardown writes ~20 lines against the verbs (or lifts the ACP helper); the ladder's tier-tier tests moved from the seam suite to the ACP suite, and the seam suite pins the verbs the ladder composes (bounded `waitForExit` false-then-true across an escalation) instead of the composed policy.
|
||||
@@ -0,0 +1,23 @@
|
||||
# Agent Note: dispose 阶梯归其消费方所有,而非 subprocess seam
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-27-dispose-ladder-to-consumer.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
`SubprocessHandle.dispose(graces)` 与 `SubprocessDisposeGraces` 把一整套拆卸*策略*——等待 stdin EOF、再 SIGTERM、再 SIGKILL,每一层由调用方提供的时间窗约束——放在了一个其余动词均为单一机制的 seam 上。它始终只有一个调用方(ACP subagent 后端);bash 走 `terminate()` 与服务拆卸,LSP 主机运行自己的协议优先关闭流程。然而每个未来后端都必须实现该阶梯才能满足接口,实现包也仅为阶梯的层级时限背上了 `dsh-timeout` 依赖。
|
||||
|
||||
## 决策
|
||||
|
||||
阶梯移入其唯一消费方。`dsh-subagent-acp` 拥有 `disposeAcpChild(child, eofGraceMs, graceMs)`,完全构建在 seam 的公开动词之上:关闭 `stdin`,以 `eofGraceMs` 约束一次 `waitForExit`,随后 `terminate()`(其 SIGTERM→spec 宽限期→SIGKILL 升级已编码了信号层级),最后进行有界的整树等待,若仍有存活进程则抛出。seam 保留 `kill`/`terminate`/`waitForExit`——机制而非策略——而 `waitForExit(signal?)` 恰是消费方阶梯在每一层确认进程树真正退出所需的停稳探针。`dsh-subprocess-local` 卸下 `dsh-timeout` 依赖;seam 的句柄少了一个方法和一个导出接口。
|
||||
|
||||
## 曾考虑的替代方案
|
||||
|
||||
**把阶梯作为便利方法留在句柄上。**否决:一个每个实现都必须提供的 seam 方法不是便利,而是契约表面——而这一个把某一消费方的配合形状(stdin EOF 打头)当作进程词汇来编码。seam 自己的 README 早已不得不加注「依赖其他信号停稳的子进程需要自己的第一阶」,这本身就是承认该阶梯是策略。
|
||||
|
||||
**把阶梯移到共享辅助包。**否决:只有一个消费方。当第二个具有相同 stdin EOF 配合形状的进程外后端出现时,可以再把 `disposeAcpChild` 提升为共享代码;现在抽取只会重造 `dsh-subagent-subprocess`——这组堆叠变更刚刚删掉的那个单一用途库。
|
||||
|
||||
## 后果
|
||||
|
||||
买到的:seam 少了一个方法和一个类型;实现只欠四个动词,不欠拆卸策略;`dsh-subprocess-local` 少了一个依赖;阶梯的层级时间窗与调节它们的配置字段住在一起。代价:未来想要 EOF 打头拆卸的后端需针对这些动词写约 20 行(或直接搬 ACP 的辅助函数);阶梯的层级测试从 seam 套件移入 ACP 套件,seam 套件转而钉住阶梯所组合的动词(升级前后有界 `waitForExit` 先假后真),而非组合后的策略。
|
||||
@@ -2,5 +2,5 @@
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-10-agent-session-identity-and-log-location.md: a55bf276bff998a94f84ec1af078022e4881903c
|
||||
2026-07-10-agent-session-identity-and-log-location.zh.md: 84b8b22187ccd1078ff13e39f4a345efbecfaeac
|
||||
2026-07-10-agent-session-identity-and-log-location.md: 7b51ae41ac00c12a496940c891092580003646fa
|
||||
2026-07-10-agent-session-identity-and-log-location.zh.md: 2574e1327f424069cdff68ef9b8de20c490077f0
|
||||
|
||||
@@ -40,7 +40,7 @@ The registry rebuilds a trusted overlay for every foreground and background bash
|
||||
|
||||
Session persistence remains the fact owner: JSONL does not depend on tool-bash or register shell variables itself, and hooks continue to consume `locate()` directly. Tool-bash is the translation layer from the persistence fact into a shell convention. Other plugins that need shell-visible facts depend on the registry and register their own keys; they do not modify `process.env`.
|
||||
|
||||
The bash seam exports `DSH_ENV_PREFIX` as the single namespace source and derives `DshEnvironmentKey` from its `typeof`. Tool-bash derives built-in names and model guidance from that constant, while executors use it for filtering and channel validation. The seam carries the managed overlay separately as `BashExecRequest.dshEnv` / `BashExecSpec.dshEnv`. Ordinary `env` remains the general in-process plugin surface used by hooks, but cannot contain managed keys; symmetrically, `dshEnv` cannot contain ordinary keys. The local executor rejects either wrong channel before spawn, removes every inherited ambient managed key, applies its ordinary scrub/terminal environment/explicit `env`, and finally merges the trusted `dshEnv` snapshot. This guarantees that a missing value means absent now rather than inherited from an outer or previous harness. The model-facing tool still ignores model-supplied `env`/`stdin` arguments.
|
||||
The bash seam exports `DSH_ENV_PREFIX` as the single namespace source and derives `DshEnvironmentKey` from its `typeof`. Tool-bash derives built-in names and model guidance from that constant, while executors use it for ambient filtering. The seam carries the managed overlay separately as `BashExecRequest.dshEnv` / `BashExecSpec.dshEnv`: ordinary `env` remains the general in-process plugin surface used by hooks, while `dshEnv` is typed to managed keys. The local executor removes every inherited ambient managed key, applies its ordinary scrub/terminal environment/explicit `env`, and finally merges the trusted `dshEnv` snapshot, so an `env` entry can never displace a managed value. This guarantees that a missing value means absent now rather than inherited from an outer or previous harness. The model-facing tool still ignores model-supplied `env`/`stdin` arguments.
|
||||
|
||||
The bash tool description teaches only the durable convention: current harness environment facts are available through managed `$DSH_*` variables and may be inspected when needed. It does not enumerate persistence-specific keys or add a permanent system-prompt section. Tool schemas are already logged in request headers and tool output is logged as `tool/result`, so no new session event is required.
|
||||
|
||||
@@ -82,6 +82,6 @@ A keyless full-loop integration drives the real agent loop, JSONL persistence, t
|
||||
|
||||
## Consequences
|
||||
|
||||
Every model bash child receives current Harness home and shell identity, and agent calls additionally receive stable session identity. JSONL-backed calls get an optional target path; non-file persistence omits it honestly. The complete `DSH_*` namespace inside these children is managed by the harness: ambient values are removed, current trusted values are re-added, and ordinary callers cannot use `env` to bypass ownership checks.
|
||||
Every model bash child receives current Harness home and shell identity, and agent calls additionally receive stable session identity. JSONL-backed calls get an optional target path; non-file persistence omits it honestly. The managed `DSH_*` facts inside these children come from the harness: ambient values are removed, current trusted values are re-added last, and an ordinary caller's `env` entry cannot displace them.
|
||||
|
||||
The namespace is discoverable but not secret. Paths can reveal configured roots, lazy targets can be absent or stale, and a command can override variables inside its own shell syntax. Consumers treat them as correlation and environment facts, verify transcript metadata when attribution matters, and rely on sandbox/filesystem policy rather than variable secrecy for authorization.
|
||||
|
||||
@@ -40,7 +40,7 @@ interface SessionPersistence {
|
||||
|
||||
会话持久化仍然是事实所有者:JSONL 不依赖 tool-bash,也不会自行注册 shell 变量;钩子继续直接使用 `locate()`。tool-bash 是把持久化事实转换为 shell 约定的转换层。其他需要向 shell 公开事实的插件依赖该注册表,并注册各自的键;它们不修改 `process.env`。
|
||||
|
||||
bash seam 导出 `DSH_ENV_PREFIX` 作为唯一的命名空间来源,并派生 `DshEnvironmentKey`,其来源是该常量的 `typeof`。tool-bash 从该常量派生内置名称与模型指引,执行器则使用该常量进行过滤和通道校验。seam 通过 `BashExecRequest.dshEnv`/`BashExecSpec.dshEnv` 单独传递受管理的覆盖层。普通 `env` 仍是钩子所用的通用进程内插件接口,但不能包含受管理的键;对称地,`dshEnv` 不能包含普通键。本地执行器会在 spawn 前拒绝任一错误通道,移除环境中继承的全部受管理键,依次应用普通清理、终端环境和显式 `env`,最后合并受信任的 `dshEnv` 快照。这保证了值缺失表示它当前确实不存在,而不是从外层或先前的 harness 继承而来。面向模型的工具仍忽略模型提供的 `env`/`stdin` 参数。
|
||||
bash seam 导出 `DSH_ENV_PREFIX` 作为唯一的命名空间来源,并派生 `DshEnvironmentKey`,其来源是该常量的 `typeof`。tool-bash 从该常量派生内置名称与模型指引,执行器则使用该常量过滤环境中已有的值。seam 通过 `BashExecRequest.dshEnv`/`BashExecSpec.dshEnv` 单独传递受管理的覆盖层:普通 `env` 仍是钩子所用的通用进程内插件接口,`dshEnv` 则以类型约束为受管理键。本地执行器移除环境中继承的全部受管理键,依次应用普通清理、终端环境和显式 `env`,最后合并受信任的 `dshEnv` 快照,因此 `env` 条目永远无法顶掉受管理的值。这保证了值缺失表示它当前确实不存在,而不是从外层或先前的 harness 继承而来。面向模型的工具仍忽略模型提供的 `env`/`stdin` 参数。
|
||||
|
||||
bash 工具说明只讲解持久约定:当前 harness 环境事实通过受管理的 `$DSH_*` 变量提供,可以在需要时查看。它不会枚举持久化专用键,也不会添加永久的系统提示词章节。工具 schema 已记录在请求 header 中,工具输出则记录为 `tool/result`,因此无需新增会话事件。
|
||||
|
||||
@@ -82,6 +82,6 @@ bash 工具说明只讲解持久约定:当前 harness 环境事实通过受管
|
||||
|
||||
## 影响
|
||||
|
||||
每个面向模型的 bash 子进程都会收到当前 Harness home 和 shell 标识,关联 agent 的调用还会收到稳定的会话标识。使用 JSONL 后端的调用可以获得可选的目标路径;非文件持久化会如实省略该值。这些子进程中的完整 `DSH_*` 命名空间由 harness 管理:系统移除环境中已有的受管理值、重新加入当前受信任的值,并禁止普通调用方通过 `env` 绕过所有权检查。
|
||||
每个面向模型的 bash 子进程都会收到当前 Harness home 和 shell 标识,关联 agent 的调用还会收到稳定的会话标识。使用 JSONL 后端的调用可以获得可选的目标路径;非文件持久化会如实省略该值。这些子进程中受管理的 `DSH_*` 事实来自 harness:系统移除环境中已有的受管理值、在最后重新加入当前受信任的值,普通调用方的 `env` 条目无法顶掉它们。
|
||||
|
||||
该命名空间可被发现,但并非秘密。路径可能泄露配置的根目录,延迟创建的目标也可能不存在或处于陈旧状态,而且命令可以在自己的 shell 语法中覆盖变量。消费方应把这些值视为关联信息和环境事实,在归属关系重要时校验 transcript 元数据,并依靠沙箱/文件系统策略而不是变量保密性来完成授权。
|
||||
|
||||
@@ -2,5 +2,5 @@
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/feature/2026-07-16-persistent-pty-sessions.md
|
||||
2026-07-16-persistent-pty-sessions.md: 43c87bb159cfe1ab9f8d3a80c2adf25a57ae6e3b
|
||||
2026-07-16-persistent-pty-sessions.zh.md: 8afc2103447cc58b1fcbc1062b9564e8ed643477
|
||||
2026-07-16-persistent-pty-sessions.md: 4fff1742721fa13ea11f1b8ec833e5e5b7e68df8
|
||||
2026-07-16-persistent-pty-sessions.zh.md: 88e7a0bc4b8af21dc51b6a654a1c9f93760b3e81
|
||||
|
||||
@@ -80,6 +80,8 @@ On macOS there is no exact syscall tier. Output silence returns `inferred_idle`
|
||||
|
||||
Tier 2 returns `inferred_idle` after `idleSilenceMs` without output. A sleeping or network-blocked command can therefore look ready. Tier 3 returns `timeout` after `timeoutMs` so a foreground tool call cannot hold the agent indefinitely. The result preserves the distinction; callers may wait through `ctx.tasks`, signal the foreground group, or inspect from another session.
|
||||
|
||||
Once a send settles under any tier, `PtySendOperation.append` stops accepting output, so later child output no longer reaches that settled operation; it still reaches the scrollback, and any send that is active when it arrives. A test that waits for a marker on the operation it started must therefore set `idleSilenceMs` and `timeoutMs` above the child's own startup latency; interpreter startup on a loaded macOS runner otherwise ends the send before the marker is printed.
|
||||
|
||||
`node-pty` data notifications feed one terminal parser. Parser carry state handles control sequences and a trailing carriage return split across callbacks, so a divided CRLF produces one newline rather than a pagination-changing blank line. The implementation normalizes line-oriented output, but it does not promise correct interaction with a full-screen application.
|
||||
|
||||
### Model-visible output and durability
|
||||
|
||||
@@ -80,6 +80,8 @@ macOS 没有精确 syscall 层。任何前台进程组输出静默都会返回 `
|
||||
|
||||
Tier 2 在持续 `idleSilenceMs` 没有输出后返回 `inferred_idle`,因此 sleep 或网络阻塞的命令可能看似 ready。Tier 3 在 `timeoutMs` 后返回 `timeout`,避免前台工具调用无限占住 agent。结果保留这些区别;调用方可以通过 `ctx.tasks` 等待、向前台组发信号,或从另一个会话排查。
|
||||
|
||||
一次 send 在任一层级 settle 之后,`PtySendOperation.append` 就不再接受输出,此后子进程的输出不会再进入那个已 settle 的 operation;它仍然会进入 scrollback,以及此时恰好处于活跃状态的任何 send。因此,等待自己所启动的 operation 上出现标记的测试,必须把 `idleSilenceMs` 与 `timeoutMs` 设得高于子进程自身的启动耗时;否则在负载较高的 macOS runner 上,解释器启动会在标记打印之前就结束这次 send。
|
||||
|
||||
`node-pty` data 通知进入同一个终端 parser。parser 的 carry state 会处理跨 callback 的控制序列和位于 callback 末尾的回车;因此,即使 CRLF 被拆开,也只会生成一个换行,而不会产生改变分页的空行。实现会规范化行式输出,但不承诺正确操作全屏应用。
|
||||
|
||||
### 模型可见输出与持久性
|
||||
|
||||
@@ -2,5 +2,5 @@
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write
|
||||
2026-07-25-semantic-pr-label-taxonomy.md: 61b7a829b8c44836cf9c6d0d8a7df463df309d89
|
||||
2026-07-25-semantic-pr-label-taxonomy.zh.md: cc0c5e7a8953bc97de51f90349a0e2542be5b77e
|
||||
2026-07-25-semantic-pr-label-taxonomy.md: 3217b405e968d4d2c1eba1f1a5a08008b18ba514
|
||||
2026-07-25-semantic-pr-label-taxonomy.zh.md: 4cc603daa52bc9e6b0a85e33086a559a21dcc621
|
||||
|
||||
@@ -30,13 +30,13 @@ Areas record semantic repository domains rather than temporary initiatives, owne
|
||||
|
||||
### Current areas
|
||||
|
||||
The 45 current areas are listed below. The group names organize the list for readability; they are not labels or another taxonomy level.
|
||||
The 46 current areas are listed below. The group names organize the list for readability; they are not labels or another taxonomy level.
|
||||
|
||||
| Group | Areas |
|
||||
|---|---|
|
||||
| Agent and model | `agent`, `agent-loop`, `session`, `llm`, `model-context`, `compaction`, `tools`, `persistence` |
|
||||
| Orchestration | `subagent`, `workflow`, `planning`, `tasks`, `schedule`, `telemetry`, `storage`, `workspace` |
|
||||
| Capabilities | `bash`, `pty`, `filesystem`, `lsp`, `skills`, `web-search`, `code-mode`, `artifact`, `attachment`, `sandbox`, `mcp`, `hooks`, `cordis` |
|
||||
| Capabilities | `bash`, `subprocess`, `pty`, `filesystem`, `lsp`, `skills`, `web-search`, `code-mode`, `artifact`, `attachment`, `sandbox`, `mcp`, `hooks`, `cordis` |
|
||||
| Interfaces | `ui`, `gui`, `tui`, `acp`, `json-rpc`, `cli`, `python-sdk`, `vscode`, `website` |
|
||||
| Repository and release | `dev-infra`, `ci`, `build`, `dependencies`, `platform`, `i18n`, `release` |
|
||||
|
||||
|
||||
@@ -30,13 +30,13 @@ PR(Pull Request)需要传达两个不同的信号:它带来哪一类变更
|
||||
|
||||
### 当前领域
|
||||
|
||||
当前的 45 个领域如下。分组名称仅用于提高列表的可读性;它们既不是标签,也不是分类体系中的另一个层级。
|
||||
当前的 46 个领域如下。分组名称仅用于提高列表的可读性;它们既不是标签,也不是分类体系中的另一个层级。
|
||||
|
||||
| 分组 | 领域 |
|
||||
|---|---|
|
||||
| agent(智能体)与模型 | `agent`, `agent-loop`, `session`, `llm`, `model-context`, `compaction`, `tools`, `persistence` |
|
||||
| 编排 | `subagent`, `workflow`, `planning`, `tasks`, `schedule`, `telemetry`, `storage`, `workspace` |
|
||||
| 能力 | `bash`, `pty`, `filesystem`, `lsp`, `skills`, `web-search`, `code-mode`, `artifact`, `attachment`, `sandbox`, `mcp`, `hooks`, `cordis` |
|
||||
| 能力 | `bash`, `subprocess`, `pty`, `filesystem`, `lsp`, `skills`, `web-search`, `code-mode`, `artifact`, `attachment`, `sandbox`, `mcp`, `hooks`, `cordis` |
|
||||
| 接口 | `ui`, `gui`, `tui`, `acp`, `json-rpc`, `cli`, `python-sdk`, `vscode`, `website` |
|
||||
| 仓库与发布 | `dev-infra`, `ci`, `build`, `dependencies`, `platform`, `i18n`, `release` |
|
||||
|
||||
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/process/2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.md
|
||||
2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.md: 006360cedfd4d1e2c2b67ede98062a375e316f47
|
||||
2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.zh.md: d511e7a2b89788fe8addd2cc47634742c7a87fe4
|
||||
@@ -0,0 +1,34 @@
|
||||
# Agent Note: Provision CI pnpm via pnpm/action-setup
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
Outside `landlock-run.yml`, each workflow that installed pnpm hand-provisioned it with `corepack enable`, and five of them further repeated a hand-rolled cache setup — `pnpm store path --silent >> $GITHUB_OUTPUT`, then `actions/cache@v4` keyed on `pnpm-lock.yaml`: `e2e.yml`, `docs-pages.yml`, `pi-ai-provider-e2e.yml`, `build-exe-for-python-sdk.yml`, and the node-compat, serial-linux, and benchmark jobs of `ci.yml`. The maintained equivalent — `pnpm/action-setup@v4` (reads `packageManager` from package.json) plus `actions/setup-node` with `cache: pnpm` — was already proven in-repo in `landlock-run.yml`, and corepack's removal from newer Node distributions made every `corepack enable` a known future break.
|
||||
|
||||
## Decision
|
||||
|
||||
`pnpm/action-setup@v4` is the only pnpm provisioning mechanism in CI: no workflow runs `corepack enable`. The root dev dependency on `@yarnpkg/cli-dist` separately supplies the modern Yarn CLI exercised by the generated-project e2e; package-manager coverage therefore does not inherit the runner image's Yarn Classic. Caching remains per-job policy on top of pnpm provisioning, in three deliberate shapes:
|
||||
|
||||
- **Symmetric cache** (restore and save): `actions/setup-node` with `cache: pnpm` — `e2e.yml`, `docs-pages.yml`, `pi-ai-provider-e2e.yml`, `build-exe-for-python-sdk.yml`, and the node-compat and two benchmark jobs of `ci.yml`. The larger-runner benchmark keeps its store cache Linux-only through a conditional `cache:` input; the consolidated benchmark caches on both platforms.
|
||||
- **Restore-only / producer pairing** (hand-rolled `actions/cache` steps): the three enterprise-runner PR jobs and the Wine-based pull-request Windows job restore without saving, keeping cache compression/upload off their latency-sensitive paths — an asymmetry `setup-node`'s cache cannot express. Each configures a store outside the action's replaceable install directory and resolves that path, matching the master-push serial-linux producer's path and exact key; the enterprise jobs skip restore during self-hosted failover because that VM's persistent store is already warm.
|
||||
- **Cache-less or persistent** (no store-cache action): native serial-windows and serial-macos plus `sandbox.yml` install from a cold or runner-local store. The self-hosted standby and failover jobs reuse their VM's persistent pnpm store without transferring a hosted cache archive.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
- **Keep the hand-rolled steps.** They worked, but they were drifting copies of setup boilerplate, and the corepack dependency was a known future break.
|
||||
- **Convert the enterprise jobs' caching to `cache: pnpm`.** Rejected: the restore-only asymmetry is a documented latency decision in `ci.yml`'s comments; erasing it to unify tooling inverts the priority.
|
||||
- **Convert serial-linux's store cache.** Rejected during implementation: the original proposal counted serial-linux among the symmetric setups, but its cache step is the producer half of the enterprise jobs' restore-only pairing — moving it to `setup-node`'s key format is the enterprise conversion by another route.
|
||||
- **Stop at the cache-bearing workflows and leave the other `corepack enable` sites.** Rejected on review follow-up: provisioning and caching are separable concerns, and leaving corepack in the cache-less jobs kept the future break and two provisioning idioms for no benefit.
|
||||
- **Rely on the runner image's Yarn.** Rejected: the hosted image exposes Yarn 1.22 after Corepack is removed, while the generated-project e2e requires Yarn 2 or newer. A locked root dev dependency makes that coverage independent of runner image contents.
|
||||
- **A composite action wrapping action-setup + setup-node.** Rejected for now: the remaining per-job variation (node-version matrices, per-platform conditional caching, the restore-only pairing) is deliberate policy, not boilerplate — a wrapper would grow mirroring inputs or flatten a real asymmetry, and the two-line pair is already near the floor.
|
||||
|
||||
## Consequences
|
||||
|
||||
- The corepack dependency is gone from CI entirely; pnpm arrives via the pnpm team's official action everywhere, and the version pin stays single-sourced in `package.json`'s `packageManager` field.
|
||||
- The generated-project e2e runs the root-pinned Yarn 4 CLI instead of inheriting or silently skipping the runner image's Yarn version.
|
||||
- The cache-key format changed once for converted lanes; one cold run repopulated it, after which hit rates match the old steps. The built-in key spans platform, arch, and the lockfile hash but not the Node version, so the node-compat matrix legs share one store entry — safe, because the pnpm store is Node-version-independent.
|
||||
- `setup-node`'s built-in pnpm cache restores by exact key only, with no `restore-keys` prefix fallback: a `pnpm-lock.yaml` change starts a converted lane from a cold store instead of seeding from the previous entry.
|
||||
- `pnpm/action-setup` deletes its install directory on every run and places the default store beneath the resulting `PNPM_HOME`. Linux jobs that need cache pairing or self-hosted persistence therefore set `PNPM_CONFIG_STORE_DIR` to `$HOME/.local/share/pnpm/store`, outside the action directory; the restore-only jobs and serial-linux resolve and share that stable path and exact key.
|
||||
@@ -0,0 +1,34 @@
|
||||
# Agent Note: 经由 pnpm/action-setup 提供 CI 的 pnpm
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
除 `landlock-run.yml` 外,每个安装 pnpm 的工作流都曾用 `corepack enable` 手工提供 pnpm,其中五个还各自重复着一套手写(hand-rolled)的缓存设置——`pnpm store path --silent >> $GITHUB_OUTPUT`、再加以 `pnpm-lock.yaml` 为缓存键的 `actions/cache@v4`:`e2e.yml`、`docs-pages.yml`、`pi-ai-provider-e2e.yml`、`build-exe-for-python-sdk.yml`,以及 `ci.yml` 的 node-compat、serial-linux 与 benchmark 作业。与之等价、由官方维护的做法——`pnpm/action-setup@v4`(从 package.json 读取 `packageManager`)加带 `cache: pnpm` 的 `actions/setup-node`——当时已在仓库内的 `landlock-run.yml` 中得到验证,而 corepack 被从较新 Node 发行版中移除,使每一处 `corepack enable` 都成了已知的未来失效点。
|
||||
|
||||
## 决策
|
||||
|
||||
`pnpm/action-setup@v4` 是 CI 中提供 pnpm 的唯一机制:没有任何工作流运行 `corepack enable`。根目录的 `@yarnpkg/cli-dist` 开发依赖另行提供 generated-project e2e 所运行的现代 Yarn CLI(命令行界面);因此,用于包管理器覆盖率的 Yarn 不会沿用 runner 镜像里的 Yarn Classic。缓存仍是叠加在 pnpm 提供机制上的按作业政策,保持三种刻意的形态:
|
||||
|
||||
- **对称缓存**(既恢复也保存):带 `cache: pnpm` 的 `actions/setup-node`——`e2e.yml`、`docs-pages.yml`、`pi-ai-provider-e2e.yml`、`build-exe-for-python-sdk.yml`,以及 `ci.yml` 的 node-compat 与两个 benchmark 作业。larger-runner benchmark 通过条件化的 `cache:` 输入让 store 缓存仅限 Linux;consolidated benchmark 在两个平台上都启用缓存。
|
||||
- **只恢复不上传/生产者配对**(手写的 `actions/cache` 步骤):企业 runner 上的三个 PR(Pull Request)作业与基于 Wine 的拉取请求 Windows 作业只恢复不保存,把缓存压缩/上传挡在它们的延迟敏感路径之外——这种不对称是 `setup-node` 的缓存无法表达的。每个作业都在 action 可替换的安装目录之外配置 store,并解析该路径,从而与 master 推送触发的 serial-linux 生产者所用的路径和精确键匹配;企业作业在自托管故障切换期间跳过恢复,因为该 VM 的持久 store 已能直接提供热安装。
|
||||
- **无缓存或持久化**(不使用 store 缓存 action):原生 serial-windows 和 serial-macos 加上 `sandbox.yml` 从冷 store 或 runner 本地 store 安装。自托管热备与故障切换作业复用其 VM 的持久 pnpm store,不传输托管缓存归档。
|
||||
|
||||
## 曾考虑的替代方案
|
||||
|
||||
- **保留手写步骤。** 它们能用,但那是会各自漂移的设置样板副本,而且对 corepack 的依赖是已知的未来失效点。
|
||||
- **把企业作业的缓存也转换成 `cache: pnpm`。** 否决:只恢复不上传的不对称是 `ci.yml` 注释中有记录的延迟决策;为统一工具而抹掉它,属于颠倒优先级。
|
||||
- **转换 serial-linux 的 store 缓存。** 实现期间否决:原提案曾把 serial-linux 计入对称设置,但其缓存步骤是企业作业只恢复不上传配对中的生产者一半——把它改成 `setup-node` 的键格式,等于换条路径做了企业作业的转换。
|
||||
- **只转换带缓存的工作流,留下其余 `corepack enable` 站点。** 评审跟进时否决:提供 pnpm 与缓存是可分离的关注点,在无缓存作业里留下 corepack 只会保留未来失效点和两套并存的提供方式,毫无收益。
|
||||
- **依赖 runner 镜像自带的 Yarn。** 否决:Corepack 移除后,托管镜像提供的是 Yarn 1.22,而 generated-project e2e 要求 Yarn 2 或更高版本。锁定版本的根开发依赖让该项覆盖率不再受 runner 镜像内容影响。
|
||||
- **用一个组合 action 包装 action-setup + setup-node。** 暂不采纳:剩余的按作业差异(node 版本矩阵、按平台的条件缓存、只恢复不上传配对)是刻意的政策而非样板——包装层要么长出镜像这些差异的输入,要么抹平一处真实的不对称,而两行的组合已接近下限。
|
||||
|
||||
## 后果
|
||||
|
||||
- corepack 依赖已从 CI 中彻底消失;pnpm 在所有工作流中都经由 pnpm 团队的官方 action 提供,版本锁定继续单一来源于 `package.json` 的 `packageManager` 字段。
|
||||
- generated-project e2e 运行根目录锁定的 Yarn 4 CLI,既不再沿用 runner 镜像中的 Yarn 版本,也不会因此悄然跳过。
|
||||
- 已转换泳道的缓存键格式变更了一次;各跑一次冷运行重建缓存后,命中率与旧步骤持平。内建缓存键涵盖平台、架构与锁文件哈希,但不含 Node 版本,因此 node-compat 矩阵的各条腿共享同一条 store 缓存记录——这是安全的,因为 pnpm store 与 Node 版本无关。
|
||||
- `setup-node` 内建的 pnpm 缓存只按精确键恢复,没有 `restore-keys` 前缀回退:`pnpm-lock.yaml` 一旦变更,已转换泳道会从冷 store 起步,而不是从上一条缓存记录播种。
|
||||
- `pnpm/action-setup` 每次运行都会删除其安装目录,并把默认 store 放在由此产生的 `PNPM_HOME` 下。因此,需要缓存配对或自托管持久化的 Linux 作业会把 `PNPM_CONFIG_STORE_DIR` 设为 `$HOME/.local/share/pnpm/store`,置于 action 目录之外;只恢复不上传的作业与 serial-linux 会解析并共享这一稳定路径及精确键。
|
||||
@@ -2,5 +2,5 @@
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/process/2026-07-27-wine-windows-gates-experiment.md
|
||||
2026-07-27-wine-windows-gates-experiment.md: aab8aecdfca06c1f15641044a071015f543a84b6
|
||||
2026-07-27-wine-windows-gates-experiment.zh.md: 5239b185e1e0c63aa626ee3f20f3f298c0c8579d
|
||||
2026-07-27-wine-windows-gates-experiment.md: 640c8e455b1a35ea4ac83454227147b9979316dc
|
||||
2026-07-27-wine-windows-gates-experiment.zh.md: f30e09ca7411ef83d02faf012ce54d6c6c65dff1
|
||||
|
||||
@@ -18,7 +18,9 @@ Dependencies install natively on Linux with `supportedArchitectures` extended to
|
||||
|
||||
The lane holds the wall clock of the Linux CI jobs through four levers: the master-refreshed pnpm store cache (restore-only, same key as the Linux jobs), Wine provisioning (apt install, Windows Node download, `wineboot`) running concurrently with `pnpm install`, the two blocking surfaces running concurrently — the same shape `run-gates` gives them on native Windows — and an apt-archive cache keyed on the runner image, seeded from master by the `wine apt cache` job so every pull request restores from the default-branch scope.
|
||||
|
||||
Four environment constraints shape the job, each found as a red run: Ubuntu's `wine64` package alone puts nothing on PATH (install `wine`, the dispatcher); Node under Wine cannot attach stdio to the Actions runner's pipes (`Socket open EBADF` at bootstrap — every invocation routes stdio through a file); Wine does not realpath pnpm's isolated-layout Unix symlinks (the hoisted layout above); and Wine cannot create Windows symlinks (`ENOTSUP` from VitePress's `linkVue` — the `vue` link is laid down host-side before the gate).
|
||||
The gate logic lives in one script, [scripts/wine-windows-gates.sh](../../../../scripts/wine-windows-gates.sh): the ci.yml job provisions runner state (caches, apt Wine) and calls it, and the optional local gate `pnpm run check:windows-wine` runs the identical script on a developer machine that has Wine installed — one implementation, so local reproduction of a red CI lane needs no translation between environments. The local gate is a diagnosis tool, not a routine check: run it only when investigating a known Windows-related failure; CI owns the everyday win32 signal, and [dsh-pre-push-checks](../../../skills/dsh-pre-push-checks/SKILL.md) never selects it. The script never mutates the working tree: it snapshots tracked plus untracked-unignored files into a scratch directory, applies the Wine-specific pnpm overrides to the snapshot only, and installs there against the shared store; the Wine prefix and the checksum-verified Windows Node zip persist under `.cache/wine-windows/` so local reruns skip provisioning, with an offline fallback to the newest cached zip when nodejs.org is unreachable.
|
||||
|
||||
Five environment constraints shape CI and local execution, each found as a red run: Ubuntu's `wine64` package alone puts nothing on PATH (install `wine`, the dispatcher); Node under Wine cannot attach stdio to the caller's pipes (`Socket open EBADF` at bootstrap — every invocation routes stdio through a file); Wine does not realpath pnpm's isolated-layout Unix symlinks (the hoisted layout above); macOS Wine also exposes hoisted workspace links as ordinary directories, so the client test aggregate includes every package-local CSS module declaration instead of relying on project-reference realpaths; and Wine cannot create Windows symlinks (`ENOTSUP` from VitePress's `linkVue` — the `vue` link is laid down host-side before the gate).
|
||||
|
||||
## Measured results
|
||||
|
||||
|
||||
@@ -18,7 +18,9 @@ Pull request 的 Windows 通道存在的意义是证明两个阻断性 win32 表
|
||||
|
||||
该通道靠四个杠杆保持 Linux CI 作业的墙钟:master 刷新的 pnpm store 缓存(只恢复,与 Linux 作业同键)、Wine 供给(apt 安装、Windows Node 下载、`wineboot`)与 `pnpm install` 并发运行、两个阻断表面并发运行——与 `run-gates` 在原生 Windows 上给它们的形状相同——以及按 runner 镜像为键的 apt 归档缓存,由 master 的 `wine apt cache` 作业播种,使每个 pull request 都能从默认分支作用域恢复。
|
||||
|
||||
四条环境约束塑造了该作业,每条都以一次红色运行被发现:Ubuntu 的 `wine64` 包本身不往 PATH 放任何东西(要装 `wine` 调度器);Wine 下的 Node 无法把 stdio 接到 Actions runner 的管道上(引导期 `Socket open EBADF`——所有调用都经文件中转 stdio);Wine 不对 pnpm isolated 布局的 Unix 符号链接做 realpath(即上文的 hoisted 布局);Wine 无法创建 Windows 符号链接(VitePress 的 `linkVue` 报 `ENOTSUP`——`vue` 链接在门禁前由宿主侧铺好)。
|
||||
门禁逻辑集中在一个脚本里,[scripts/wine-windows-gates.sh](../../../../scripts/wine-windows-gates.sh):ci.yml 作业只供给 runner 状态(缓存、apt Wine)然后调用它,可选的本地门禁 `pnpm run check:windows-wine` 在装有 Wine 的开发机上运行同一个脚本——单一实现,因此本地复现红色 CI 通道不需要在环境之间做任何转译。该本地门禁是诊断工具而非例行检查:仅在排查已知的 Windows 相关失败时运行;日常 win32 信号归 CI 所有,[dsh-pre-push-checks](../../../skills/dsh-pre-push-checks/SKILL.md) 也从不选择它。脚本从不改动工作树:把被跟踪加未跟踪未忽略的文件快照进一个临时目录,只对快照施加 Wine 特有的 pnpm 覆盖,并在那里对着共享 store 安装;Wine prefix 与校验和验证过的 Windows Node zip 持久存放在 `.cache/wine-windows/` 下,本地重跑跳过供给,nodejs.org 不可达时回退到最新的已缓存 zip。
|
||||
|
||||
五条环境约束塑造了 CI 与本地执行,每条都以一次红色运行被发现:Ubuntu 的 `wine64` 包本身不往 PATH 放任何东西(要装 `wine` 调度器);Wine 下的 Node 无法把 stdio 接到调用方的管道上(引导期 `Socket open EBADF`——所有调用都经文件中转 stdio);Wine 不对 pnpm isolated 布局的 Unix 符号链接做 realpath(即上文的 hoisted 布局);macOS Wine 也会把 hoisted workspace 链接暴露为普通目录,因此 client 测试聚合会纳入每个包自己的 CSS 模块声明,而不依赖 project-reference realpath;Wine 无法创建 Windows 符号链接(VitePress 的 `linkVue` 报 `ENOTSUP`——`vue` 链接在门禁前由宿主侧铺好)。
|
||||
|
||||
## 实测结果
|
||||
|
||||
|
||||
@@ -1,31 +0,0 @@
|
||||
# Agent Note: Use pnpm/action-setup for symmetric CI pnpm caching
|
||||
|
||||
Status: proposed
|
||||
|
||||
English | [中文](2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
Five workflows repeat a hand-rolled three-step pnpm setup — `corepack enable`, `pnpm store path --silent >> $GITHUB_OUTPUT`, then `actions/cache@v4` keyed on `pnpm-lock.yaml`: `e2e.yml`, `docs-pages.yml`, `pi-ai-provider-e2e.yml`, `build-exe-for-python-sdk.yml`, and the node-compat, serial-linux, and benchmark jobs of `ci.yml` (~40–60 YAML lines total). The maintained equivalent — `pnpm/action-setup@v4` (reads `packageManager` from package.json) plus `actions/setup-node` with `cache: pnpm` — is already proven in-repo in `landlock-run.yml`, and also insulates against corepack's removal from newer Node distributions.
|
||||
|
||||
## Proposal
|
||||
|
||||
Convert the symmetric-cache workflows to `pnpm/action-setup@v4` + `setup-node` `cache: pnpm`. Explicitly do NOT convert:
|
||||
|
||||
- the three enterprise-runner PR jobs in `ci.yml` — they deliberately use `actions/cache/restore` only, keeping cache compression/upload off the paid latency-critical path, an asymmetry `setup-node`'s cache cannot express;
|
||||
- the Windows job, which deliberately skips the store cache.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
- **Keep the hand-rolled steps.** They work, but they are five drifting copies of setup boilerplate, and the corepack dependency is a known future break.
|
||||
- **Convert everything including the enterprise jobs.** Rejected: the restore-only asymmetry is a documented latency decision in `ci.yml`'s comments; erasing it to unify tooling inverts the priority.
|
||||
|
||||
## Acceptance criteria
|
||||
|
||||
- The five symmetric workflows set up pnpm via the actions; one cold run per lane repopulates the new cache-key format, after which cache hit rates match the old steps.
|
||||
- The enterprise-runner PR jobs and the Windows job are untouched.
|
||||
|
||||
## Risks
|
||||
|
||||
- Cache-key format changes once (one cold run per lane).
|
||||
- A third-party action in more workflows; it is already trusted in-repo (`landlock-run.yml`) and is the pnpm team's official action.
|
||||
@@ -1,31 +0,0 @@
|
||||
# Agent Note: 用 pnpm/action-setup 实现对称的 CI pnpm 缓存
|
||||
|
||||
Status: proposed
|
||||
|
||||
[English](2026-07-26-pnpm-action-setup-for-symmetric-ci-caching.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
五个工作流重复着同一套手写(hand-rolled)的三步 pnpm 设置——`corepack enable`、`pnpm store path --silent >> $GITHUB_OUTPUT`、再加以 `pnpm-lock.yaml` 为缓存键的 `actions/cache@v4`:`e2e.yml`、`docs-pages.yml`、`pi-ai-provider-e2e.yml`、`build-exe-for-python-sdk.yml`,以及 `ci.yml` 的 node-compat、serial-linux 与 benchmark 作业(合计约 40–60 行 YAML)。与之等价、由官方维护的做法——`pnpm/action-setup@v4`(从 package.json 读取 `packageManager`)加带 `cache: pnpm` 的 `actions/setup-node`——已在仓库内的 `landlock-run.yml` 中得到验证,同时还能隔绝 corepack 被从较新 Node 发行版中移除的影响。
|
||||
|
||||
## 提案
|
||||
|
||||
将各对称缓存工作流改为 `pnpm/action-setup@v4` + `setup-node` `cache: pnpm`。以下明确不做转换:
|
||||
|
||||
- `ci.yml` 中运行在企业 runner 上的三个 PR(Pull Request)作业——它们刻意只用 `actions/cache/restore`,把缓存压缩/上传挡在付费且延迟敏感的关键路径之外,这种不对称是 `setup-node` 的缓存无法表达的;
|
||||
- Windows 作业,它刻意跳过 store 缓存。
|
||||
|
||||
## 曾考虑的替代方案
|
||||
|
||||
- **保留手写步骤。** 它们能用,但那是五份会各自漂移的设置样板副本,而且对 corepack 的依赖是已知的未来失效点。
|
||||
- **连企业作业在内全部转换。** 否决:只恢复不上传(restore-only)的不对称是 `ci.yml` 注释中有记录的延迟决策;为统一工具而抹掉它,属于颠倒优先级。
|
||||
|
||||
## 验收标准
|
||||
|
||||
- 五个对称工作流经由上述 action 完成 pnpm 设置;每条泳道各跑一次冷运行以重建新的缓存键格式,此后缓存命中率与旧步骤持平。
|
||||
- 企业 runner 上的 PR 作业与 Windows 作业保持原样不动。
|
||||
|
||||
## 风险
|
||||
|
||||
- 缓存键格式变更一次(每条泳道各一次冷运行)。
|
||||
- 更多工作流引入一个第三方 action;它已在仓库内获得信任(`landlock-run.yml`),且是 pnpm 团队的官方 action。
|
||||
Reference in New Issue
Block a user