diff --git a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.i18n.yaml b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.i18n.yaml index 1c4eadabc1..a54457715b 100644 --- a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.i18n.yaml @@ -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/architecture/2026-06-13-capability-seams.md -2026-06-13-capability-seams.md: 46a2c39e927e859c7eb95956d8586f3bf04c7b1c -2026-06-13-capability-seams.zh.md: f44e3e68d2153149435b0fd0aaa5fd121cf3ecad +2026-06-13-capability-seams.md: 3c552c474b499b9f1c9f60242f4773750faadafb +2026-06-13-capability-seams.zh.md: 4e6100a2ce557d91fa18b5630c267f37f1bc0f00 diff --git a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.md b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.md index 46a2c39e92..3c552c474b 100644 --- a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.md +++ b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.md @@ -15,7 +15,7 @@ This is distinct from "who provides vs. needs a capability at runtime", which Co A swappable capability has **three roles**: 1. **Service Definition** — the Cordis `Service` and vocabulary types owning `ctx.` and depending only on the vocabulary the contract needs (e.g. `dsh-shell`: `ShellExecutor`, `ShellRunResult`, `ShellProcess`). A definition may be an abstract class or a concrete registry service; it is never a TypeScript `interface`. -2. **Service Provider** — a plugin that supplies or registers an implementation (e.g. `dsh-bash-local`: subprocesses, process-group kills, spill-file truncation). Sandboxed and remote providers are sibling packages implementing or registering against the same Service Definition. +2. **Service Provider** — a plugin that supplies or registers an implementation (e.g. `dsh-bash-local`: subprocesses, provider-managed range termination, spill-file truncation). The [native-containment decision](2026-08-28-subprocess-native-containment.md) owns the local provider's OS-specific range mechanics. Sandboxed and remote providers are sibling packages implementing or registering against the same Service Definition. 3. **Consumer** — what the model and plugins program against (e.g. `dsh-tool-bash`: the `bash` schema, with background handles registered into the generic job runtime). Consumers inject the service key and never import provider-specific types. The role names use title case: **Service Definition**, **Service Provider**, and **Consumer**. Generic uses of `provider` and `consumer` remain lowercase. diff --git a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.zh.md b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.zh.md index f44e3e68d2..4e6100a2ce 100644 --- a/.agents/notes/implemented/architecture/2026-06-13-capability-seams.zh.md +++ b/.agents/notes/implemented/architecture/2026-06-13-capability-seams.zh.md @@ -15,7 +15,7 @@ harness 具有可替换的能力,包括 shell 执行和模型提供方。一 一项可替换的能力包含**三个角色**: 1. **Service Definition**——拥有 `ctx.` 的 Cordis `Service` 和词汇类型,仅依赖约定所需的词汇(例如 `dsh-shell`:`ShellExecutor`、`ShellRunResult`、`ShellProcess`)。Service Definition 可以是抽象类,也可以是具体的注册表服务;绝不是 TypeScript `interface`。 -2. **Service Provider**——提供或注册实现的插件(例如 `dsh-bash-local`:子进程、进程组 kill、spill 文件截断)。沙箱化和远程 Service Provider 是依据同一 Service Definition 实现或注册的兄弟包。 +2. **Service Provider**——提供或注册实现的插件(例如 `dsh-bash-local`:子进程、由提供方管理的范围终止、spill 文件截断)。[原生 containment 决策](2026-08-28-subprocess-native-containment.zh.md)负责本地提供方的 OS 特有范围机制。沙箱化和远程 Service Provider 是依据同一 Service Definition 实现或注册的兄弟包。 3. **Consumer**——模型和插件编程所面向的内容(例如 `dsh-tool-bash`:`bash` schema,后台句柄注册到通用任务运行时)。Consumer 注入服务键,从不导入 Service Provider 特有的类型。 角色名使用标题式大小写:**Service Definition**、**Service Provider** 和 **Consumer**。泛指的 `provider` 和 `consumer` 仍使用小写。 diff --git a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.i18n.yaml index aaa3f9f1d1..b2ebf2057f 100644 --- a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.i18n.yaml @@ -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/architecture/2026-07-06-timeout-deadline-library.md -2026-07-06-timeout-deadline-library.md: 24dcabfd039e553af28fd3cc1d2c7f717ee66509 -2026-07-06-timeout-deadline-library.zh.md: 5f31cf21606345bb323ce3f839b5cb939def5a48 +2026-07-06-timeout-deadline-library.md: 6f726938731f18386105ff1180c79fef981c95bf +2026-07-06-timeout-deadline-library.zh.md: 48bd7b4b91efd0045c03e3e1e1e9e37656b4dcf6 diff --git a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.md b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.md index 24dcabfd03..6f72693873 100644 --- a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.md +++ b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.md @@ -8,11 +8,11 @@ English | [中文](2026-07-06-timeout-deadline-library.zh.md) 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. -- **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 — [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts) — only reacts to aborts; [packages/shell/bash-local/src/index.ts](../../../../packages/shell/bash-local/src/index.ts) owns the fused deadline and the `timedOut`/`aborted` classification. +- **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 drove the subprocess termination path, and two orthogonal outcome booleans (`timedOut`, `aborted`) latched independently. After this consolidation, the plumbing — [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts) — only reacts to aborts; [packages/shell/bash-local/src/index.ts](../../../../packages/shell/bash-local/src/index.ts) owns the fused deadline and the `timedOut`/`aborted` classification. - **web_fetch** ([packages/web/web-fetch-http/src/provider.ts](../../../../packages/web/web-fetch-http/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`. - **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.) -Each new external-process or network tool re-derived the same four things — clamp the requested value, start a timer, fuse the timeout with upstream cancellation, and distinguish "timed out" from "cancelled" on the way out — and the fusion and reason-recovery are exactly the parts that are easy to get subtly wrong (web_fetch's `signal.reason` dance is evidence). At the same time, the *termination* each performs is irreducibly different: bash kills an OS process group (work runs in a child process, outside this runtime, reachable only by signal), while web aborts an in-process `fetch` (undici tears down the socket). There is no single mechanism that can stop all of them. +Each new external-process or network tool re-derived the same four things — clamp the requested value, start a timer, fuse the timeout with upstream cancellation, and distinguish "timed out" from "cancelled" on the way out — and the fusion and reason-recovery are exactly the parts that are easy to get subtly wrong (web_fetch's `signal.reason` dance is evidence). At the same time, the *termination* each performs is irreducibly different: bash asks its subprocess provider to terminate an OS-owned range, while web aborts an in-process `fetch` and lets undici tear down the socket. The [native-containment decision](2026-08-28-subprocess-native-containment.md) owns the local scope, Job, and fallback mechanisms; there is no single mechanism that can stop every capability's work. ## Decision @@ -87,17 +87,17 @@ export function timeoutOf(x: AbortSignal | { reason?: unknown }, code?: string): | The default/max *values* | the capability's config | | The timeout `code` string | the capability (`WEB_FETCH_TIMEOUT` ≠ `BASH_TIMEOUT`) | -The signal only *notifies*; termination is always the listener's job, and the listener differs by capability. bash writes its own `addEventListener('abort', kill)` because the OS process lives outside this runtime and nothing else will kill it; web hands `d.signal` to `fetch` and undici tears down the socket. This is why file read/write/edit take **no** `timeoutMs`: a local syscall is best-effort-abortable at most, a timeout could not force `fsync`/`rename` to stop, and adding one would be an implicit default that violates explicit-over-implicit. Both reference agents leave file I/O untimed for the same reason. +The signal only *notifies*; termination is always the listener's job, and the listener differs by capability. bash writes its own `addEventListener('abort', kill)` because the OS process lives outside this runtime and its subprocess provider must drive the owned range to settlement; web hands `d.signal` to `fetch` and undici tears down the socket. This is why file read/write/edit take **no** `timeoutMs`: a local syscall is best-effort-abortable at most, a timeout could not force `fsync`/`rename` to stop, and adding one would be an implicit default that violates explicit-over-implicit. Both reference agents leave file I/O untimed for the same reason. ### How each capability consumes it - **web_fetch** — the tool stays validate-and-forward; the provider's hand-rolled controller + `setTimeout` + manual listener + `finally` + `signal.reason` recovery is replaced by provider-owned `deadline`/`timeoutOf`. A pre-aborted upstream signal still throws `WEB_ABORTED` up front; otherwise `fetch` runs against the fused `d.signal`, and `translateAbortOrNetwork` classifies a thrown error by the signal (`timeoutOf` → `WEB_FETCH_TIMEOUT`, else aborted → `WEB_ABORTED`, else network → `WEB_PROVIDER_ERROR`). The public error-code contract is unchanged, and `TimeoutReason` never crosses the web seam as the public error. -- **bash** — `resolve()` clamps the request into an explicit spec. Foreground `run()` creates the deadline and passes its signal to process execution, whose existing abort listener performs the process-group kill. The executor classifies the first abort as timeout or cancellation. Background starts remain timeout-free and forward only upstream cancellation. +- **bash** — `resolve()` clamps the request into an explicit spec. Foreground `run()` creates the deadline and passes its signal to process execution, whose abort listener calls `SubprocessHandle.terminate()` and awaits the same provider-managed range. The executor classifies the first abort as timeout or cancellation. Background starts remain timeout-free and forward only upstream cancellation. - **LLM adapters** — `dsh-llm-deepseek` and `dsh-llm-pi-ai` wrap actual transport iteration with `idleWatchdog`. The five-minute configured interval covers only outstanding provider demand, not time the downstream consumer spends between chunks. The direct DeepSeek adapter also pulses that outstanding demand when its SSE parser observes a comment, without yielding the comment as a `StreamChunk` or writing it to the session log. The pi-ai SDK does not expose comment activity to its adapter, so that path can rearm only when the SDK yields. The stable signal reaches `fetch` or the SDK for the whole call, so timeout closes the underlying request and maps to `TIMEOUT`, while an earlier caller abort maps to `ABORTED`. ## Consequences -- `runBash`'s outcome no longer independently latches `timedOut` and `aborted`; a timeout and a user abort racing before process close now report a single first-abort cause instead of both being true. The uniform SIGTERM→grace→SIGKILL kill is unchanged, and the Service Definition type `ShellRunResult` keeps both booleans (now mutually exclusive), so `dsh-tool-bash`'s result rendering is untouched. +- `runBash`'s outcome no longer independently latches `timedOut` and `aborted`; a timeout and a user abort racing before process close now report a single first-abort cause instead of both being true. Timeout classification does not alter provider-owned termination: local POSIX ranges use TERM→grace→KILL, while Windows ordinary ranges terminate immediately. The Service Definition type `ShellRunResult` keeps both booleans (now mutually exclusive), so `dsh-tool-bash`'s result rendering is untouched. - `SpawnSpec.timeoutMs` and `SpawnOutcome.timedOut`/`aborted` were removed rather than kept as always-zero/always-false vestiges: with `runBash` owning no timer and the executor owning classification, they were read nowhere. An always-0 field read by nothing is dead weight under the per-file coverage gate. - web_fetch shed its bespoke controller/timer/listener/reason-recovery; the classifier now keys off the deadline signal (`timeoutOf` + `aborted`) rather than the thrown error's shape, which is robust across both the request-phase reject-with-reason and the read-phase bare-`AbortError`. - `AbortSignal.any` and `using`/`Symbol.dispose` enter the repo for the first time here (Node ≥ 24 baseline, already met). @@ -107,10 +107,10 @@ Out of scope, named to mark the boundary: `web_search` can gain an optional mode ## Alternatives considered -**A unified timeout *plugin* / `ctx.timeout` service.** Rejected on microkernel grounds. A service that could stop any tool's work would have to understand every capability's termination mechanism (process-group SIGKILL, socket teardown, syscall-boundary checks) — the "kernel knows too much" the architecture forbids. Codex's `ExecExpiration` is scoped to the exec family precisely because the kill it drives (`killpg`) is process-family-specific; MCP and model-stream keep their own. There is no coherent middle layer that owns termination for everything, so the shared piece can only be the pure timing/classification half — a library, not a service. +**A unified timeout *plugin* / `ctx.timeout` service.** Rejected on microkernel grounds. A service that could stop any tool's work would have to understand every capability's termination mechanism (native scope or Job termination, fallback process-group signalling, socket teardown, syscall-boundary checks) — the "kernel knows too much" the architecture forbids. Codex's `ExecExpiration` is scoped to the exec family precisely because the kill it drives (`killpg`) is process-family-specific; MCP and model-stream keep their own. There is no coherent middle layer that owns termination for everything, so the shared piece can only be the pure timing/classification half — a library, not a service. **Per-tool ad-hoc timeout, no shared code (the prior status quo, and Claude Code's choice).** Rejected because it was already producing divergence and duplicated correctness burden: web_fetch hand-rolled the exact controller/reason logic that future network/process-backed tools would each have to re-derive, and the fusion + `signal.reason` recovery are the error-prone parts. Claude Code tolerates full duplication; this repo has a single shared abort channel (`exec.signal` on every `execute`) that makes a small shared primitive strictly cleaner, so the cost/benefit differs. **A `withTimeout(promise, ms)` wrapper instead of a signal factory.** Rejected because racing a promise against a timer resolves the *tool-call* promise on deadline without stopping the underlying work — the child process or fetch socket leaks on. Handing out a signal and requiring the capability to listen is what forces a real termination path to exist. This mirrors the "dispose must reach quiescence, not just request it" defensive rule. -**Keep separate bash timeout and cancellation triggers.** Rejected because one deadline signal removes the bespoke timer and standardizes classification. Racing causes report whichever abort arrived first, while the existing SIGTERM-to-SIGKILL termination path remains unchanged. +**Keep separate bash timeout and cancellation triggers.** Rejected because one deadline signal removes the bespoke timer and standardizes classification. Racing causes report whichever abort arrived first, while the provider-owned termination path is independent of which cause won. diff --git a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.zh.md b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.zh.md index 5f31cf2160..48bd7b4b91 100644 --- a/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-06-timeout-deadline-library.zh.md @@ -8,11 +8,11 @@ Status: implemented 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。 -- **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——位于 [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts)——只响应中止;[packages/shell/bash-local/src/index.ts](../../../../packages/shell/bash-local/src/index.ts) 拥有融合的 deadline 以及 `timedOut`/`aborted` 分类。 +- **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()` 闭包驱动子进程终止路径,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——位于 [packages/subprocess/subprocess-local/src/spawn.ts](../../../../packages/subprocess/subprocess-local/src/spawn.ts)——只响应中止;[packages/shell/bash-local/src/index.ts](../../../../packages/shell/bash-local/src/index.ts) 拥有融合的 deadline 以及 `timedOut`/`aborted` 分类。 - **web_fetch**([packages/web/web-fetch-http/src/provider.ts](../../../../packages/web/web-fetch-http/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`)。 - **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」。) -每个新的外部进程或网络工具都要重新推导同样四件事:钳位请求值、启动定时器、将超时与上游取消融合、在出口处区分「超时」与「已取消」。而融合与原因恢复恰恰是最容易出微妙错误的部分(web_fetch 的 `signal.reason` 处理就是证据)。与此同时,各能力执行的*终止*操作不可归约地不同:bash 杀死一个 OS 进程组(工作运行在子进程中,在本运行时之外,只能通过信号触达),而 web 中止一个进程内的 `fetch`(undici 拆除 socket)。不存在一个能停止所有能力工作的单一机制。 +每个新的外部进程或网络工具都要重新推导同样四件事:钳位请求值、启动定时器、将超时与上游取消融合、在出口处区分「超时」与「已取消」。而融合与原因恢复恰恰是最容易出微妙错误的部分(web_fetch 的 `signal.reason` 处理就是证据)。与此同时,各能力执行的*终止*操作不可归约地不同:bash 请求其子进程提供方终止由 OS 拥有的范围,而 web 中止一个进程内的 `fetch`,由 undici 拆除 socket。[原生 containment 决策](2026-08-28-subprocess-native-containment.zh.md)负责本地 scope、Job 与 fallback 机制;不存在一个能停止所有能力工作的单一机制。 ## 决策 @@ -87,17 +87,17 @@ export function timeoutOf(x: AbortSignal | { reason?: unknown }, code?: string): | 默认值/最大值*数值* | 各能力的配置 | | 超时 `code` 字符串 | 各能力(`WEB_FETCH_TIMEOUT` ≠ `BASH_TIMEOUT`) | -信号只*通知*;终止始终是监听方的职责,而监听方因能力而异。bash 自行编写 `addEventListener('abort', kill)`,因为 OS 进程存在于本运行时之外,没有别的东西会杀死它;web 将 `d.signal` 交给 `fetch`,由 undici 拆除 socket。这也是文件读/写/编辑**不接受** `timeoutMs` 的原因:本地系统调用最多只能尽力中止,超时无法强制 `fsync`/`rename` 停止,添加超时将是一个违反「显式优于隐式」的隐式默认值。两个参考 agent(智能体)出于同样的原因对文件 I/O 不设超时。 +信号只*通知*;终止始终是监听方的职责,而监听方因能力而异。bash 自行编写 `addEventListener('abort', kill)`,因为 OS 进程存在于本运行时之外,必须由子进程提供方驱动其拥有的范围达到完全停稳;web 将 `d.signal` 交给 `fetch`,由 undici 拆除 socket。这也是文件读/写/编辑**不接受** `timeoutMs` 的原因:本地系统调用最多只能尽力中止,超时无法强制 `fsync`/`rename` 停止,添加超时将是一个违反「显式优于隐式」的隐式默认值。两个参考 agent(智能体)出于同样的原因对文件 I/O 不设超时。 ### 各能力如何消费该库 - **web_fetch**:工具层保持校验并转发;提供方手写的 controller + `setTimeout` + 手动监听器 + `finally` + `signal.reason` 恢复被替换为提供方自有的 `deadline`/`timeoutOf`。已预先中止的上游信号仍然立即抛出 `WEB_ABORTED`;否则 `fetch` 使用融合后的 `d.signal` 运行,`translateAbortOrNetwork` 根据信号分类抛出的错误(`timeoutOf` → `WEB_FETCH_TIMEOUT`,否则已中止 → `WEB_ABORTED`,否则网络错误 → `WEB_PROVIDER_ERROR`)。公开的错误码约定不变,`TimeoutReason` 永远不会作为公开错误跨越 web seam。 -- **bash**:`resolve()` 将请求钳位为显式规格。前台 `run()` 创建 deadline 并将其信号传给进程执行,后者既有的 abort 监听器执行进程组 kill。执行器将首个 abort 分类为超时或取消。后台启动保持无超时,仅转发上游取消。 +- **bash**:`resolve()` 将请求钳位为显式规格。前台 `run()` 创建 deadline 并将其信号传给进程执行,后者的 abort 监听器调用 `SubprocessHandle.terminate()`,并等待同一个由提供方管理的范围。执行器将首个 abort 分类为超时或取消。后台启动保持无超时,仅转发上游取消。 - **LLM(大语言模型)适配器**:`dsh-llm-deepseek` 和 `dsh-llm-pi-ai` 用 `idleWatchdog` 包装实际的传输迭代。配置的五分钟间隔只覆盖尚未结算的提供方 demand,不包括下游消费方在分片之间花费的时间。DeepSeek 直连适配器还会在其 SSE(Server-Sent Events)解析器观察到注释时,对该项尚未结算的 demand 调用 `pulse()`;该注释既不会作为 `StreamChunk` 产出,也不会写入会话日志。pi-ai SDK 不会向其适配器暴露注释活动,因此该路径只能在 SDK 产出值时重新启动定时器。稳定信号在整个调用期间传给 `fetch` 或 SDK,因此超时会关闭底层请求并映射为 `TIMEOUT`,而更早的调用方中止映射为 `ABORTED`。 ## 后果 -- `runBash` 的结果不再独立锁存 `timedOut` 和 `aborted`;超时与用户中止在进程关闭前竞争时,现在报告单一的首个 abort 原因,而非两者同时为 true。统一的 SIGTERM→宽限期→SIGKILL 终止路径不变,Service Definition 类型 `ShellRunResult` 保留两个布尔值(现在互斥),因此 `dsh-tool-bash` 的结果渲染不受影响。 +- `runBash` 的结果不再独立锁存 `timedOut` 和 `aborted`;超时与用户中止在进程关闭前竞争时,现在报告单一的首个 abort 原因,而非两者同时为 true。超时分类不改变由提供方管理的终止:本地 POSIX 范围使用 TERM→宽限期→KILL,Windows 普通范围则立即终止。Service Definition 类型 `ShellRunResult` 保留两个布尔值(现在互斥),因此 `dsh-tool-bash` 的结果渲染不受影响。 - `SpawnSpec.timeoutMs` 和 `SpawnOutcome.timedOut`/`aborted` 被移除,而非作为始终为零/始终为 false 的残余保留:由于 `runBash` 不再拥有定时器且执行器负责分类,这些字段无处被读取。一个始终为 0 且无处读取的字段在逐文件覆盖率门禁下属于死代码。 - web_fetch 去除了其定制的 controller/timer/listener/reason-recovery;分类器现在基于 deadline 信号(`timeoutOf` + `aborted`)而非抛出错误的形状来判断,这在请求阶段的 reject-with-reason 和读取阶段的裸 `AbortError` 两种情况下都是健壮的。 - `AbortSignal.any` 和 `using`/`Symbol.dispose` 在此首次进入本仓库(Node ≥ 24 基线,已满足)。 @@ -107,10 +107,10 @@ export function timeoutOf(x: AbortSignal | { reason?: unknown }, code?: string): ## 曾考虑的替代方案 -**统一的超时*插件* / `ctx.timeout` 服务。** 基于微内核原则否决。一个能停止任何工具工作的服务必须理解每个能力的终止机制(进程组 SIGKILL、socket 拆除、系统调用边界检查),这正是架构所禁止的「内核知道太多」。Codex 的 `ExecExpiration` 被限定于 exec 族,正是因为它驱动的 kill(`killpg`)是进程族特有的;MCP 和模型流各自保有自己的。不存在一个连贯的中间层能为所有东西拥有终止权,因此共享部分只能是纯计时/分类那一半——一个库,而非服务。 +**统一的超时*插件* / `ctx.timeout` 服务。** 基于微内核原则否决。一个能停止任何工具工作的服务必须理解每个能力的终止机制(原生 scope 或 Job 终止、fallback 进程组信号、socket 拆除、系统调用边界检查),这正是架构所禁止的「内核知道太多」。Codex 的 `ExecExpiration` 被限定于 exec 族,正是因为它驱动的 kill(`killpg`)是进程族特有的;MCP 和模型流各自保有自己的。不存在一个连贯的中间层能为所有东西拥有终止权,因此共享部分只能是纯计时/分类那一半——一个库,而非服务。 **每个工具各自实现超时,不共享代码(先前的现状,也是 Claude Code 的选择)。** 否决,因为它已经在产生分化和重复的正确性负担:web_fetch 手写了与未来网络/进程类工具各自需要重新推导的完全相同的 controller/reason 逻辑,而融合 + `signal.reason` 恢复正是容易出错的部分。Claude Code 容忍完全重复;本仓库有一个统一的共享 abort 通道(每次 `execute` 上的 `exec.signal`),使得采用一个小型共享原语明显更简洁,因此成本/收益不同。 **用 `withTimeout(promise, ms)` 包装器代替信号工厂。** 否决,因为让 promise 与定时器竞争只是在截止时间到达时 resolve *工具调用*的 promise,而不会停止底层工作——子进程或 fetch socket 会泄漏。分发信号并要求能力监听,才能强制一条真实的终止路径存在。这与「dispose 必须达到完全停稳,而非仅仅请求它」的防御性规则一致。 -**保留 bash 独立的超时和取消触发器。** 否决,因为一个 deadline 信号移除了定制定时器并标准化了分类。发生竞争时,报告先到达的那个 abort 作为原因,而既有的 SIGTERM→SIGKILL 终止路径保持不变。 +**保留 bash 独立的超时和取消触发器。** 否决,因为一个 deadline 信号移除了定制定时器并标准化了分类。发生竞争时,报告先到达的那个 abort 作为原因,由提供方管理的终止路径不受哪个原因先胜出的影响。 diff --git a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.i18n.yaml index 712a1af3cb..3c883f7d6c 100644 --- a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.i18n.yaml @@ -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/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.md -2026-07-10-single-file-executable-sdk-runtime-distribution.md: 756cf419df2dff70973eee9c1598950158dbfc1d -2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md: aa9c1c1b93b19a8310fff65bdfafa54f237c0e3c +2026-07-10-single-file-executable-sdk-runtime-distribution.md: 5533c38d635d04c8799658fc1f6bcec8543d1dab +2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md: 05800082034f0d1bd5034fc5bb17f09356d84dd9 diff --git a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.md b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.md index 756cf419df..5533c38d63 100644 --- a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.md +++ b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.md @@ -44,7 +44,7 @@ The deploy root includes `@deepseek-ai/dsh-mcp-client` as an explicitly supporte ### Build pipeline and artifacts -[`scripts/build-exe-for-python-sdk.ts`](../../../../scripts/build-exe-for-python-sdk.ts): runtime closure verification → `pnpm run build` → (after clearing) `pnpm --filter dsh-python-runtime-closure deploy --legacy --prod --config.node-linker=hoisted --config.auto-install-peers=false --config.link-workspace-packages=true` **directly into** `python/sdk-runtime/src/deepseek_harness_runtime/runtime/node/` → restore direct workspace packages omitted by legacy deploy and reject any remaining manifest gap → replace staged dependency symlinks with their target bytes, remove package-manager `.bin` links, and fail if any symlink remains → inject pkg configuration whose bin is `node_modules/@deepseek-ai/dsh/lib/bin.js` and whose assets cover dynamic profile, bundle, frontend, preset, native-library, and configuration reads → stage the target `node-pty` addon → invoke `pkg --sea` once per target → write `deepseek-harness-sdk-runtime--` under `dist-exe/` and copy it into the runtime directory. Linux CI rebuilds `pty.node` inside the matching manylinux 2.28 container because legacy deploy omits that install side effect. Every target copies its native `@vscode/ripgrep` binary beside the executable as the required `-rg` sidecar; pkg runtimes select that sidecar through `process.pkg`, while ordinary Node execution uses `@vscode/ripgrep` directly. macOS uses its target prebuild and also emits the required `-spawn-helper`. All four deploy flags are grounded in measurement: `--legacy` is the mandatory path with inject-workspace-packages off; hoisted gives pkg a stable single-instance layout that the explicit materialization pass makes symlink-free; disabling automatic peer installation prevents undeclared peers from expanding the closure; link-workspace-packages selects direct workspace dependencies. [`pnpm-workspace.yaml`](../../../../pnpm-workspace.yaml) overrides the transitive `@deepseek-ai/cosmokit` and `@deepseek-ai/schemastery` semver requests to the pinned vendor sources so legacy deploy never resolves those unpublished names from a registry. +[`scripts/build-exe-for-python-sdk.ts`](../../../../scripts/build-exe-for-python-sdk.ts): runtime closure verification → `pnpm run build` → (after clearing) `pnpm --filter dsh-python-runtime-closure deploy --legacy --prod --config.node-linker=hoisted --config.auto-install-peers=false --config.link-workspace-packages=true` **directly into** `python/sdk-runtime/src/deepseek_harness_runtime/runtime/node/`, including [`python/sdk-runtime/runtime-bootstrap.mjs`](../../../../python/sdk-runtime/runtime-bootstrap.mjs) as the carrier-root `runtime-bootstrap.mjs` → restore direct workspace packages omitted by legacy deploy and reject any remaining manifest gap → replace staged dependency symlinks with their target bytes, remove package-manager `.bin` links, and fail if any symlink remains → verify the deployed bootstrap and inject pkg configuration with that bin plus assets covering dynamic profile, bundle, frontend, preset, native-library, and configuration reads → stage the target `node-pty` addon → invoke `pkg --sea` once per target → write `deepseek-harness-sdk-runtime--` under `dist-exe/` and copy it into the runtime directory. The Python runtime owns that bootstrap. It calls the public CLI export for ordinary launches and dispatches a provider-private selection to the same `@deepseek-ai/dsh-subprocess-local/runner` core without changing CLI grammar or adding another executable; the [native-containment decision](2026-08-28-subprocess-native-containment.md) owns that private path. Linux CI rebuilds `pty.node` inside the matching manylinux 2.28 container because legacy deploy omits that install side effect. Every target copies its native `@vscode/ripgrep` binary beside the executable as the required `-rg` sidecar; pkg runtimes select that sidecar through `process.pkg`, while ordinary Node execution uses `@vscode/ripgrep` directly. macOS uses its target prebuild and also emits the required `-spawn-helper`. All four deploy flags are grounded in measurement: `--legacy` is the mandatory path with inject-workspace-packages off; hoisted gives pkg a stable single-instance layout that the explicit materialization pass makes symlink-free; disabling automatic peer installation prevents undeclared peers from expanding the closure; link-workspace-packages selects direct workspace dependencies. [`pnpm-workspace.yaml`](../../../../pnpm-workspace.yaml) overrides the transitive `@deepseek-ai/cosmokit` and `@deepseek-ai/schemastery` semver requests to the pinned vendor sources so legacy deploy never resolves those unpublished names from a registry. CI: [`.github/workflows/build-exe-for-python-sdk.yml`](../../../../.github/workflows/build-exe-for-python-sdk.yml) runs [installed-wheel validation](../testing/2026-08-23-installed-python-wheel-black-box-ci.md) on Linux/Windows x64 for pull requests and Linux ARM64 plus both macOS architectures for master pushes. The [public publication workflow](../../archived/process/2026-08-11-python-publication-workflow.md) calls it for all five targets; `workflow_dispatch` can still select a subset. Native builds run on linux-x64 / linux-arm64 (`ubuntu-24.04-arm`) / macos-arm64 / macos-x64 (`macos-15-intel`) / win-x64 (`windows-2025`), with `~/.pkg-cache` cached where applicable, and pkg handles macOS ad-hoc signing. Each leg installs the release-shaped SDK and runtime wheels into a clean venv outside the checkout, proves their package and executable provenance, then drives the complete keyless scenario set through the public SDK and direct NDJSON JSON-RPC. Trusted pull requests and master pushes additionally run a real DeepSeek two-turn tool smoke on their selected targets; fork and Dependabot heads receive no key. Linux inspects the executable and native addon's GLIBC requirements and runs an additional manylinux 2.28 smoke, while macOS checks the runtime, ripgrep, and PTY helper architectures and verifies that all three deployment targets fit the wheel tag. A full five-target run retains six artifacts, each containing one release file: the platform-independent SDK wheel and five native runtime wheels; a subset dispatch retains the SDK wheel and selected runtime wheels. Bare executables and source bundles remain intermediate test inputs. [`.gitlab-ci.yml`](../../../../.gitlab-ci.yml) accepts `python-v` tag pipelines whose version matches the root `package.json`, builds one SDK wheel and five native runtime wheels, then a single serialized job checks and publishes all six to the project PyPI registry. The [`python/sdk-runtime` README](../../../../python/sdk-runtime/README.md) owns the Windows target and the explicit exclusion of Windows arm64. diff --git a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md index aa9c1c1b93..0580008203 100644 --- a/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-10-single-file-executable-sdk-runtime-distribution.zh.md @@ -44,7 +44,7 @@ exe 的 VFS 内是**构建产物形态的真实包树**(各包的 `lib/` + 真 ### 构建流水线与产物 -[`scripts/build-exe-for-python-sdk.ts`](../../../../scripts/build-exe-for-python-sdk.ts):运行时闭包校验 → `pnpm run build` →(清空后)`pnpm --filter dsh-python-runtime-closure deploy --legacy --prod --config.node-linker=hoisted --config.auto-install-peers=false --config.link-workspace-packages=true` **直接写入** `python/sdk-runtime/src/deepseek_harness_runtime/runtime/node/` → 恢复 legacy deploy 遗漏的直接工作区包,并拒绝剩余的 manifest 缺口 → 将暂存依赖中的符号链接替换为目标文件内容,删除包管理器的 `.bin` 链接,并在仍有任何符号链接时失败 → 注入 pkg 配置,其中 bin 为 `node_modules/@deepseek-ai/dsh/lib/bin.js`,assets 覆盖动态读取的 profile、bundle、前端、preset、原生库与配置文件 → 暂存目标平台的 `node-pty` addon → 每个构建目标调用一次 `pkg --sea` → 将 `deepseek-harness-sdk-runtime--` 写入 `dist-exe/` 并拷回运行时目录。Linux CI 会在匹配的 manylinux 2.28 容器中重新构建 `pty.node`,因为 legacy deploy 会遗漏这一安装副作用。每个目标都会把对应的原生 `@vscode/ripgrep` 二进制复制到可执行文件旁,作为必需的 `-rg` 伴随文件;pkg 运行时通过 `process.pkg` 选择该伴随文件,普通 Node 执行则直接使用 `@vscode/ripgrep`。macOS 使用对应目标的预构建产物,并额外生成所需的 `-spawn-helper`。四个部署标志都有实测依据:未启用 `inject-workspace-packages` 时必须使用 `--legacy`;`hoisted` 为 pkg 提供稳定的单实例布局,再由显式物化步骤消除符号链接;关闭对等依赖自动安装可防止未声明的对等依赖扩大闭包;`link-workspace-packages` 选择直接工作区依赖。[`pnpm-workspace.yaml`](../../../../pnpm-workspace.yaml) 将传递的 `@deepseek-ai/cosmokit` 与 `@deepseek-ai/schemastery` semver 请求覆盖到固定的 vendor 源码,使 legacy deploy 不会从注册表解析这些未发布名称。 +[`scripts/build-exe-for-python-sdk.ts`](../../../../scripts/build-exe-for-python-sdk.ts):运行时闭包校验 → `pnpm run build` →(清空后)`pnpm --filter dsh-python-runtime-closure deploy --legacy --prod --config.node-linker=hoisted --config.auto-install-peers=false --config.link-workspace-packages=true` **直接写入** `python/sdk-runtime/src/deepseek_harness_runtime/runtime/node/`,其中包含作为载体根目录 `runtime-bootstrap.mjs` 的 [`python/sdk-runtime/runtime-bootstrap.mjs`](../../../../python/sdk-runtime/runtime-bootstrap.mjs) → 恢复 legacy deploy 遗漏的直接工作区包,并拒绝剩余的 manifest 缺口 → 将暂存依赖中的符号链接替换为目标文件内容,删除包管理器的 `.bin` 链接,并在仍有任何符号链接时失败 → 验证已部署的 bootstrap,并注入以该文件为 bin 的 pkg 配置及覆盖动态读取 profile、bundle、前端、preset、原生库与配置文件的 assets → 暂存目标平台的 `node-pty` addon → 每个构建目标调用一次 `pkg --sea` → 将 `deepseek-harness-sdk-runtime--` 写入 `dist-exe/` 并拷回运行时目录。该 bootstrap 由 Python runtime 拥有;普通启动时它调用公开 CLI export,而提供方私有选择会分派到同一个 `@deepseek-ai/dsh-subprocess-local/runner` 核心,不改变 CLI 语法,也不增加另一个可执行文件;[原生 containment 决策](2026-08-28-subprocess-native-containment.zh.md)负责这条私有路径。Linux CI 会在匹配的 manylinux 2.28 容器中重新构建 `pty.node`,因为 legacy deploy 会遗漏这一安装副作用。每个目标都会把对应的原生 `@vscode/ripgrep` 二进制复制到可执行文件旁,作为必需的 `-rg` 伴随文件;pkg 运行时通过 `process.pkg` 选择该伴随文件,普通 Node 执行则直接使用 `@vscode/ripgrep`。macOS 使用对应目标的预构建产物,并额外生成所需的 `-spawn-helper`。四个部署标志都有实测依据:未启用 `inject-workspace-packages` 时必须使用 `--legacy`;`hoisted` 为 pkg 提供稳定的单实例布局,再由显式物化步骤消除符号链接;关闭对等依赖自动安装可防止未声明的对等依赖扩大闭包;`link-workspace-packages` 选择直接工作区依赖。[`pnpm-workspace.yaml`](../../../../pnpm-workspace.yaml) 将传递的 `@deepseek-ai/cosmokit` 与 `@deepseek-ai/schemastery` semver 请求覆盖到固定的 vendor 源码,使 legacy deploy 不会从注册表解析这些未发布名称。 CI 使用 [`.github/workflows/build-exe-for-python-sdk.yml`](../../../../.github/workflows/build-exe-for-python-sdk.yml):[安装后 wheel 包验证](../testing/2026-08-23-installed-python-wheel-black-box-ci.zh.md)在拉取请求上运行 Linux/Windows x64,在 master 推送上运行 Linux ARM64 与两种 macOS 架构。[公开发布工作流](../../archived/process/2026-08-11-python-publication-workflow.md)调用它构建全部五个目标;`workflow_dispatch` 仍可选择部分目标。linux-x64、linux-arm64(`ubuntu-24.04-arm`)、macos-arm64、macos-x64(`macos-15-intel`)与 win-x64(`windows-2025`)分别进行原生构建,并在适用平台缓存 `~/.pkg-cache`;macOS 的 ad-hoc 签名由 pkg 处理。每个平台都把发布形态的 SDK wheel 包与运行时 wheel 包安装到 checkout 外的干净 venv,证明包与可执行文件来源,再通过公开 SDK 与直接 NDJSON JSON-RPC 运行完整 keyless 场景。可信拉取请求与 master 推送还会在各自选定的目标上运行真实 DeepSeek 双轮工具冒烟测试;fork 与 Dependabot head 不会获得密钥。Linux 会检查可执行文件和原生 addon 各自的 GLIBC 依赖,并额外运行 manylinux 2.28 冒烟测试;macOS 则检查 runtime、ripgrep 与 PTY helper 的架构,并验证三个载荷的部署目标都符合 wheel 包标签。完整构建五个目标时保留 6 个产物,每个产物只含一个发布文件:平台无关的 SDK wheel 包与 5 个原生运行时 wheel 包;手动选择部分目标时保留 SDK wheel 与所选运行时 wheel。裸 exe 与源码包只作为测试中间输入。[`.gitlab-ci.yml`](../../../../.gitlab-ci.yml) 只接受版本与根目录 `package.json` 匹配的 `python-v` 标签流水线,构建一个 SDK wheel 包和 5 个原生运行时 wheel 包,再由单个串行任务校验并将这 6 个文件发布到项目的 PyPI 注册表。[`python/sdk-runtime` README](../../../../python/sdk-runtime/README.zh.md)负责 Windows 目标及对 Windows arm64 的明确排除。 diff --git a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.i18n.yaml index e23ba3b605..16ecfcc400 100644 --- a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.i18n.yaml @@ -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/architecture/2026-07-16-explicit-turn-cancellation.md -2026-07-16-explicit-turn-cancellation.md: ee4253ba607d3468c05b61d6fb0fbc5efcf9f9d7 -2026-07-16-explicit-turn-cancellation.zh.md: d98d2c114056c44f131a2fe989f0b1f544127976 +2026-07-16-explicit-turn-cancellation.md: 09631349226837d7f93112fe5e9c517f2fee099c +2026-07-16-explicit-turn-cancellation.zh.md: baf039d49578895d53ffae4c6b88d29b3d1563b6 diff --git a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.md b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.md index ee4253ba60..0963134922 100644 --- a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.md +++ b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.md @@ -20,7 +20,7 @@ AgentLoop privately owns one `TurnCancellation` per prospective turn. It install The driver keeps only a cause-less pre-run marker for queued work cancelled before a turn is claimed. An effective `cancel()` emits the observe-only `agent/cancel-requested` notification with its resolved typed cause before clearing queued and steering work or aborting the holder; notification failures cannot veto the stop, and an idle call emits nothing. Work synchronously queued by a notification observer is included in that clear, while work queued by a later signal abort observer is latched and runs when the aborted activity converges to idle — a `disposed` cancel leaves it parked ([cancel-convergence wake latch](../bug-fix/2026-08-07-cancel-convergence-wake-latch.md)). If a `running` listener synchronously cancels old work and sends a replacement, the driver discards the aborted holder and creates a fresh one for the replacement. Repeated cancellation is first-wins for the active holder, while later calls may still clear newly queued pending work. -The explicit event signatures pass a single payload object: agent-scoped events carry `agent` and `signal` in the payload with `next` last, and the remaining APIs keep `signal` immediately before a waterfall's final `next`. `PreStepContext` and `RequestFailureContext` are retired, with their fields folded into the `agent/pre-step` and `agent/request-error` payloads ([payload-object events](../../archived/architecture/2026-08-06-agent-event-payload-objects.md)). Pre-step entry, request configuration, request-error recovery, model generation, tool execution, approval, turn stopping, and subagent or workflow requests all receive the current signal. Hook bridges must also supply `RunHookOptions.signal`, so a turn cancellation reaches the bash executor's process-group kill and join boundary. `SystemPrompt.assemble()` carries `signal?: AbortSignal` in `AssembleContext` because that object is an explicit request value that can also represent signal-less assembly outside a turn. Listeners may cooperate with the signal but must not retain it to control another turn. +The explicit event signatures pass a single payload object: agent-scoped events carry `agent` and `signal` in the payload with `next` last, and the remaining APIs keep `signal` immediately before a waterfall's final `next`. `PreStepContext` and `RequestFailureContext` are retired, with their fields folded into the `agent/pre-step` and `agent/request-error` payloads ([payload-object events](../../archived/architecture/2026-08-06-agent-event-payload-objects.md)). Pre-step entry, request configuration, request-error recovery, model generation, tool execution, approval, turn stopping, and subagent or workflow requests all receive the current signal. Hook bridges must also supply `RunHookOptions.signal`, so a turn cancellation reaches the bash executor's provider-managed termination and join boundary; the [native-containment decision](2026-08-28-subprocess-native-containment.md) owns the supported local scope, Job, and fallback mechanics. `SystemPrompt.assemble()` carries `signal?: AbortSignal` in `AssembleContext` because that object is an explicit request value that can also represent signal-less assembly outside a turn. Listeners may cooperate with the signal but must not retain it to control another turn. `ctx.agents` continues to carry only the initiating Agent. Ambient Agent presence does not imply liveness, a current turn, or cancellation authority. The cause reader is private to the loop and states the machine-private slot invariant (only `cancel()` aborts a turn controller, always with a canonical frozen cause) instead of re-validating the reason structurally; no public helper reads a cause off an arbitrary signal. Concurrent Agents isolate both their initiator identities and their turn signals; a child driver shadows the parent initiator while its parent request signal still travels through the subagent seam. diff --git a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.zh.md b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.zh.md index d98d2c1140..baf039d495 100644 --- a/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-16-explicit-turn-cancellation.zh.md @@ -20,7 +20,7 @@ AgentLoop 为每个待启动轮次私有地持有一个 `TurnCancellation`。它 对于轮次被认领前已取消的排队工作,驱动器只保留一个不携带取消原因的运行前标记。实际生效的 `cancel()` 会先发出仅供观察的 `agent/cancel-requested` 通知并携带最终确定的类型化取消原因,然后才清除排队工作和 steering(中途引导)工作或中止持有者;通知失败不能阻止此次停止,空闲状态下调用则不发出任何通知。通知观察者同步加入队列的工作也会被这次清除,而稍后由 signal 中止观察者加入队列的工作会被锁存,并在被中止的活动收敛到空闲时执行——`disposed` 取消则将其停放([取消收敛窗口唤醒锁存](../bug-fix/2026-08-07-cancel-convergence-wake-latch.zh.md))。若 `running` 监听器同步取消旧工作并发送替代提示词,驱动器会丢弃已中止的持有者,并为替代提示词创建全新的持有者。同一活跃持有者上的重复取消遵循首次请求优先,后续调用仍可清除新入队的待处理工作。 -显式事件签名传递单个 payload 对象:agent 作用域事件在 payload 中携带 `agent` 和 `signal`,`next` 位于最后;其余 API 保持 `signal` 紧邻 waterfall(瀑布式事件)的最终 `next` 之前。`PreStepContext` 与 `RequestFailureContext` 已退役,其字段并入 `agent/pre-step` 与 `agent/request-error` 的 payload([payload-object 事件](../../archived/architecture/2026-08-06-agent-event-payload-objects.md))。进入 pre-step 时、请求配置、请求错误恢复、模型生成、工具执行、审批、轮次停止以及 subagent 或工作流请求都会收到当前 signal。钩子桥接器也必须提供 `RunHookOptions.signal`,使轮次取消能够到达 Bash 执行器终止进程组并等待其退出的边界。`SystemPrompt.assemble()` 在 `AssembleContext` 中携带 `signal?: AbortSignal`,因为该对象是显式请求值,也可表示轮次之外不携带 signal 的组装。监听器可以配合该 signal 取消,但不得保留它来控制其他轮次。 +显式事件签名传递单个 payload 对象:agent 作用域事件在 payload 中携带 `agent` 和 `signal`,`next` 位于最后;其余 API 保持 `signal` 紧邻 waterfall(瀑布式事件)的最终 `next` 之前。`PreStepContext` 与 `RequestFailureContext` 已退役,其字段并入 `agent/pre-step` 与 `agent/request-error` 的 payload([payload-object 事件](../../archived/architecture/2026-08-06-agent-event-payload-objects.md))。进入 pre-step 时、请求配置、请求错误恢复、模型生成、工具执行、审批、轮次停止以及 subagent 或工作流请求都会收到当前 signal。钩子桥接器也必须提供 `RunHookOptions.signal`,使轮次取消能够到达 Bash 执行器由提供方管理的终止与等待边界;[原生 containment 决策](2026-08-28-subprocess-native-containment.zh.md)负责受支持本地路径上的 scope、Job 与 fallback 机制。`SystemPrompt.assemble()` 在 `AssembleContext` 中携带 `signal?: AbortSignal`,因为该对象是显式请求值,也可表示轮次之外不携带 signal 的组装。监听器可以配合该 signal 取消,但不得保留它来控制其他轮次。 `ctx.agents` 仍只携带发起 Agent。环境中的 Agent 并不代表存活、当前轮次或取消权限。cause 读取器是 loop 私有的,它直接陈述机器私有的 slot 不变量(只有 `cancel()` 会中止轮次控制器,且总是携带规范的冻结 cause),而不是对 reason 做结构化再校验;不存在从任意 signal 读取 cause 的公开辅助函数。并发 Agent 会同时隔离各自的发起方身份和轮次 signal;子驱动会遮蔽父发起方,而父请求 signal 仍通过 subagent seam 传递。 diff --git a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.i18n.yaml index 612ab83bdd..d8ddbe592a 100644 --- a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.i18n.yaml @@ -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/architecture/2026-07-19-gui-web-client-architecture.md -2026-07-19-gui-web-client-architecture.md: 409c4347bca42dd96fd134e0133a1721fdaebd5d -2026-07-19-gui-web-client-architecture.zh.md: 58235981471eeb365f7416fcd2e5530468e1e3ff +2026-07-19-gui-web-client-architecture.md: 55421d1ad6df192d08c431af3633675036a4a857 +2026-07-19-gui-web-client-architecture.zh.md: 6fb3f9a512389710f6708b7f36f42e90eef11b28 diff --git a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.md b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.md index 409c4347bc..55421d1ad6 100644 --- a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.md +++ b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.md @@ -44,7 +44,7 @@ Implementation homes: registry core and the props-share types live in `packages/ A service is a plugin's only API toward other plugins (UI components and injection faces are not APIs; a plugin nobody calls mounts no service — ui-trajectory is the minimal-plugin exemplar: no ctx service, only view-slot registrations). The roster: `ctx.connection` (RPC transport + generation state), `ctx.slots` (registry wrapper emitting `slots/changed`, render entry, renderer installation contract), `ctx.sessions` (list store, current-session state, scope tree), `ctx.loader`, `ctx.theme`, `ctx.i18n`, `ctx.layout` (cross-plugin view navigation), `ctx.conversation` (send/cancel/startSession). Viewing state that used to live in service stores (panel widths, selection, drafts) now lives in entry-declared stores per the [slot system standard](2026-07-22-slot-type-chain-implementation.md). -There is no component registration model besides slots — the former view and tool rings both dissolved into it. Conversation views are entries of the `'conversation.view'` list slot ui-conversation declares, tab metadata rides the registration options (`id`/`order`/`label`), and per-view chrome lives inside the view components themselves. Final Chat business Nodes dispatch through the keyed/session `'conversation.chat.node'` slot; ui-tool owns its `tool-call` entry, recursively renders the supplied `subCalls`, and declares the keyed/session `'tool.call.toolview'` child slot. The key space stays runtime-open (SlotMap declares slots, never keys), and roots and descendants dispatch by `entryKey: toolName` with `GenericToolCard` as the fallback. Business packages register atomic views through `ctx.slots.inject('tool.call.toolview', () => ctx.slots.register({ name: 'tool.call.toolview', key: '' }, Row))`; the declaration is the load and reload dependency ([decision](../../archived/architecture/2026-08-05-slot-declaration-injection.md)). ui-conversation separately delegates the selected call's details body through `'conversation.details.tool'`, so ui-tool's card models remain the single presentation owner without making conversation import Tool components. The target-neutral event and view registries are data assembly seams rather than parallel component registries ([decision](2026-08-09-client-conversation-node-assembly.md)). +There is no component registration model besides slots — the former view and tool rings both dissolved into it. Conversation views are entries of the `'conversation.view'` list slot ui-conversation declares, tab metadata rides the registration options (`id`/`order`/`label`), and per-view chrome lives inside the view components themselves. Final Chat business Nodes dispatch through the keyed/session `'conversation.chat.node'` slot; ui-tool owns its `tool-call` entry, recursively renders the supplied `subCalls`, and declares the keyed/session `'tool.call.toolview'` child slot. The key space stays runtime-open (SlotMap declares slots, never keys), and roots and descendants dispatch by `entryKey: toolName` with `GenericToolCard` as the fallback. Business packages register atomic views through `ctx.slots.inject('tool.call.toolview', () => ctx.slots.register({ name: 'tool.call.toolview', key: '' }, Row))`; the declaration is the load and reload dependency ([decision](../../archived/architecture/2026-08-05-slot-declaration-injection.md)). The right column is the `rightbar` seat ui-sidebar-right fills with one docking surface per session; the former details column and its `'conversation.details.tool'` seat are gone ([decision](../feature/2026-09-04-right-sidebar-docking-infrastructure.md)). The target-neutral event and view registries are data assembly seams rather than parallel component registries ([decision](2026-08-09-client-conversation-node-assembly.md)). **Scope addressing** mirrors the host's agent-scope idiom: services are root singletons whose methods take no sessionId — they read the caller's scope mark (`scopeOf(ctx)`). Inside a session scope, `ctx.conversation.send('hi', 'queue')` targets that session; cross-session calls re-target by switching ctx (`ctx.sessions.scope(id)!.conversation.send(...)`); calling a scoped method from root ctx throws. Client session scopes are minted like host agent scopes (a no-op plugin fiber + a scope-key extend), built lazily on first viewing and torn down only when the session is removed and unwatched — host-session death alone does not tear a scope (it freezes into a read-only viewport). diff --git a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.zh.md b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.zh.md index 5823598147..6fb3f9a512 100644 --- a/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-19-gui-web-client-architecture.zh.md @@ -44,7 +44,7 @@ slot 体系有自己的笔记——[slot 体系标准](2026-07-22-slot-type-chai 服务是插件对其他插件的唯一 API(UI 组件与注入面都不是 API;无人调用的插件不挂服务——ui-trajectory 即最小插件样板:无 ctx 服务,只做视图 slot 注册)。名册:`ctx.connection`(RPC 传输 + generation 状态)、`ctx.slots`(注册表包装层,发 `slots/changed`,渲染入口,渲染器安装约定)、`ctx.sessions`(列表 store、当前会话状态、scope 树)、`ctx.loader`、`ctx.theme`、`ctx.i18n`、`ctx.layout`(跨插件视图导航)、`ctx.conversation`(send/cancel/startSession)。过去住在服务 store 里的观看态(面板宽、选中、草稿)现按 [slot 体系标准](2026-07-22-slot-type-chain-implementation.zh.md) 住 entry 声明的 store。 -slot 之外不存在第二种组件注册模型——原视图环与工具环都已溶解进来。会话视图即 ui-conversation 声明的 `'conversation.view'` list slot entry,tab 元数据随注册 options(`id`/`order`/`label`)走,per-view chrome 住视图组件自身。最终 Chat 业务 Node 通过 keyed/session `'conversation.chat.node'` slot 分发;ui-tool 拥有其中的 `tool-call` entry,递归渲染传入的 `subCalls`,并声明 keyed/session `'tool.call.toolview'` 子 slot。key 空间仍在运行时开放(SlotMap 声明 slot、从不声明 key),root 与任意深度的后代都按 `entryKey: toolName` 分发,以 `GenericToolCard` 兜底。业务包通过 `ctx.slots.inject('tool.call.toolview', () => ctx.slots.register({ name: 'tool.call.toolview', key: '' }, Row))` 注册原子视图;声明本身就是加载与重载依赖([决策](../../archived/architecture/2026-08-05-slot-declaration-injection.md))。ui-conversation 还通过 `'conversation.details.tool'` 委托 selected call 的详情正文,使 ui-tool 的 card model 保持为唯一展示所有者,同时避免 conversation 导入 Tool 组件。与 target 无关的事件注册表和视图注册表是数据组装 seam,不是平行组件注册表([决策](2026-08-09-client-conversation-node-assembly.zh.md))。 +slot 之外不存在第二种组件注册模型——原视图环与工具环都已溶解进来。会话视图即 ui-conversation 声明的 `'conversation.view'` list slot entry,tab 元数据随注册 options(`id`/`order`/`label`)走,per-view chrome 住视图组件自身。最终 Chat 业务 Node 通过 keyed/session `'conversation.chat.node'` slot 分发;ui-tool 拥有其中的 `tool-call` entry,递归渲染传入的 `subCalls`,并声明 keyed/session `'tool.call.toolview'` 子 slot。key 空间仍在运行时开放(SlotMap 声明 slot、从不声明 key),root 与任意深度的后代都按 `entryKey: toolName` 分发,以 `GenericToolCard` 兜底。业务包通过 `ctx.slots.inject('tool.call.toolview', () => ctx.slots.register({ name: 'tool.call.toolview', key: '' }, Row))` 注册原子视图;声明本身就是加载与重载依赖([决策](../../archived/architecture/2026-08-05-slot-declaration-injection.md))。右列是 ui-sidebar-right 以每会话一个停靠面填充的 `rightbar` 坑位;原来的详情列及其 `'conversation.details.tool'` 坑位已删除([决策](../feature/2026-09-04-right-sidebar-docking-infrastructure.zh.md))。与 target 无关的事件注册表和视图注册表是数据组装 seam,不是平行组件注册表([决策](2026-08-09-client-conversation-node-assembly.zh.md))。 **scope 寻址**与 host 侧 agent(智能体)scope 惯例同构:服务是 root 单例,方法不收 sessionId——它们读调用方 ctx 上的 scope 标(`scopeOf(ctx)`)。在会话 scope 内,`ctx.conversation.send('hi', 'queue')` 自动打到该会话;跨会话调用换 ctx 定向(`ctx.sessions.scope(id)!.conversation.send(...)`);从 root ctx 直接调 scoped 方法即 throw。client 会话 scope 的铸造方式与 host agent scope 相同(no-op 插件 fiber + scope 键 extend),首次观看时惰性建,只有会话被移除且无人观看才拆——仅 host 会话死亡不拆 scope(冻结为只读视窗)。 diff --git a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.i18n.yaml index 40454e9a56..441e67f823 100644 --- a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.i18n.yaml @@ -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/architecture/2026-07-28-portable-execution-world-consumers.md -2026-07-28-portable-execution-world-consumers.md: 760005f1460890222c5af1ea0ec4eaf9cb29f360 -2026-07-28-portable-execution-world-consumers.zh.md: d78b04a5af785be0707d06e519819f95c524d92d +2026-07-28-portable-execution-world-consumers.md: 787fe341e58cc212c99e0f35f07eea8e83daf000 +2026-07-28-portable-execution-world-consumers.zh.md: a558a5af64437b8743e741ace4ccf27079501721 diff --git a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.md b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.md index 760005f146..787fe341e5 100644 --- a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.md +++ b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.md @@ -18,13 +18,13 @@ Ordinary pipes do not cover one requirement. A persistent terminal needs PTY all The filesystem interface owns the path facts that another capability needs without exposing its opaque target identity: a canonical process path, canonical `file:` URI, and containment. Existing whole and streaming text operations remain filesystem-owned; protocol consumers enforce their own retention limits while consuming the stream. -The subprocess interface owns executable lookup and process primitives: ordinary raw or collected process spawning and `spawnTerminal()`. The terminal operation is one deep primitive whose handle owns text I/O, foreground groups, signalling, and one awaited TERM-to-KILL operation that settles in-flight handle calls and reaches quiescence for every session member the provider can still observe. Its signal cancels allocation only; the published handle owns its lifetime. Prompt detection, idle inference, scrollback, sandbox policy, and owner lifecycle remain in the PTY consumer. +The subprocess interface owns executable lookup and process primitives: ordinary raw or collected process spawning and `spawnTerminal()`. An ordinary handle keeps target identity private: `.done` reports the direct target, while `terminate()` and `waitForExit()` control and observe the same provider-managed range. The [native-containment decision](2026-08-28-subprocess-native-containment.md) owns local Linux scopes, Windows Jobs, and their disclosed fallbacks. The terminal operation is one deep primitive whose handle owns text I/O, foreground groups, signalling, and one awaited TERM-to-KILL operation that settles in-flight handle calls and reaches quiescence for every member of its provider-owned range; an observational fallback limits that range to identities it can still observe. Its signal cancels allocation only; the published handle owns its lifetime. Prompt detection, idle inference, scrollback, sandbox policy, and owner lifecycle remain in the PTY consumer. Generic consumers use that execution world: - `dsh-bash-local` continues to map Bash semantics onto ordinary `ctx.subprocess.spawn()`. - `dsh-lsp-stdio` reads and contains source through `ctx.fs`, resolves and launches language servers through `ctx.subprocess`, and carries provider-owned file URIs through initialization and result rendering. One provider-lifetime signal aborts filesystem and protocol work during disposal, including workspace lookup before queue ownership; its JSON-RPC, pooling, synchronization, and normalization stay unchanged. -- `dsh-terminal-bash` maps persistent-shell semantics onto `ctx.subprocess.spawnTerminal()`. The local `node-pty` and process-inspection implementation moves into `dsh-subprocess-local`; another subprocess provider supplies the same primitive. `danger-full-access` needs no `ctx.sandbox`; a confined mode requires a same-world sandbox provider and fails before spawn when none is mounted. Prompt and silence evidence collected during asynchronous pre-write inspection is discarded when the provider write begins. Cancellation retains the send reservation while an in-flight write settles and then signals the foreground group, so late bytes or the signal cannot target a successor; an in-flight readiness poll cannot release that reservation, and a rejected write sends no signal. The absolute deadline remains armed throughout cancellation. A signal failure becomes terminal transport failure. Completion of a stale inspection resumes polling for the current send. Startup cancellation begins terminal rollback without waiting for a stalled readiness or signalling call. Close rejects new public signals and delegates provider-observable session quiescence to the handle's awaited termination operation. +- `dsh-terminal-bash` maps persistent-shell semantics onto `ctx.subprocess.spawnTerminal()`. The local `node-pty` and process-inspection implementation moves into `dsh-subprocess-local`; another subprocess provider supplies the same primitive. `danger-full-access` needs no `ctx.sandbox`; a confined mode requires a same-world sandbox provider and fails before spawn when none is mounted. Prompt and silence evidence collected during asynchronous pre-write inspection is discarded when the provider write begins. Cancellation retains the send reservation while an in-flight write settles and then signals the foreground group, so late bytes or the signal cannot target a successor; an in-flight readiness poll cannot release that reservation, and a rejected write sends no signal. The absolute deadline remains armed throughout cancellation. A signal failure becomes terminal transport failure. Completion of a stale inspection resumes polling for the current send. Startup cancellation begins terminal rollback without waiting for a stalled readiness or signalling call. Close rejects new public signals and delegates provider-managed session quiescence to the handle's awaited termination operation. ## E2B POC boundary @@ -68,6 +68,6 @@ A remote execution provider implements only its shared sandbox owner plus filesy The fundamental interfaces are wider, and a filesystem/subprocess pair must agree on one execution world. The added operations are limited to facts and lifecycle mechanics that current generic consumers require; model schemas, protocol framing, readiness policy, and presentation do not leak into the providers. -The local implementation absorbs `node-pty` and platform process inspection because it owns local terminal mechanics. This moves code without weakening terminal teardown: disposal sweeps descendants before and after terminating the top-level shell, waits for exact PID-identity-fenced descendants retained during foreground inspection, and retains Linux session members that survive top-level exit. macOS cannot enumerate a POSIX session after its leader exits, so a child that reparents between inspection snapshots remains an explicit local-provider limitation rather than a reason to move process mechanics back into the PTY consumer. +The local implementation absorbs `node-pty` and platform process inspection because it owns local terminal mechanics. On supported Linux hosts, the user-systemd scope retains descendants that call `setsid` or reparent, while process inspection continues to own foreground attribution and synchronous fallback evidence. Other hosts use the observational teardown: disposal sweeps descendants before and after terminating the top-level shell, waits for exact PID-identity-fenced descendants retained during foreground inspection, and retains Linux session members that survive top-level exit. macOS cannot enumerate a POSIX session after its leader exits, so a child that reparents between inspection snapshots remains an explicit local-provider limitation rather than a reason to move process mechanics back into the PTY consumer. The E2B composition demonstrates that a shared sandbox owner plus filesystem and subprocess adapters are sufficient to move the mutable coding world off-host while leaving higher capabilities provider-neutral. Its POC limits remain explicit: the SDK retains complete command transport in host memory, remote startup cannot publish a PID synchronously, exact terminal stdin-wait and independent signal facts are unavailable, numeric PID/PGID operations are not identity-fenced, the initial environment probe cannot hide unknown sandbox-default secrets from already-running same-UID processes, and adapter artifacts remain until sandbox deletion. These are provider constraints, not justification for compatibility shims or more E2B packages. diff --git a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.zh.md b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.zh.md index d78b04a5af..a558a5af64 100644 --- a/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-28-portable-execution-world-consumers.zh.md @@ -18,13 +18,13 @@ Status: implemented 文件系统接口负责其他能力需要的路径事实,同时不公开其不透明目标身份:规范化进程路径、规范化 `file:` URI 和包含关系。现有完整文本与流式文本操作仍归文件系统负责;协议消费方在消费流时执行各自的保留上限。 -进程管理接口负责可执行文件查找与进程原语:以原始或收集模式 spawn 普通进程,以及 `spawnTerminal()`。终端操作是一项深层原语,其句柄负责文本 I/O、前台进程组、信号发送,以及一项须等待的 TERM→KILL 操作;该操作会结算所有在途句柄调用,并使提供方仍可观察到的每个会话成员完全停稳。其信号只取消分配;句柄一经发布,便负责自身生命周期。提示符检测、空闲推断、scrollback、沙箱策略和所有者生命周期仍由 PTY 消费方负责。 +进程管理接口负责可执行文件查找与进程原语:以原始或收集模式 spawn 普通进程,以及 `spawnTerminal()`。普通句柄把 target identity 保持为私有事实:`.done` 报告 direct target,`terminate()` 与 `waitForExit()` 则控制并观察同一个由提供方管理的范围。[原生 containment 决策](2026-08-28-subprocess-native-containment.zh.md)负责本地 Linux scope、Windows Job 及其已声明的 fallback。终端操作是一项深层原语,其句柄负责文本 I/O、前台进程组、信号发送,以及一项须等待的 TERM→KILL 操作;该操作会结算所有在途句柄调用,并使提供方拥有的范围中每个成员完全停稳;观察型 fallback 只能把该范围限制为它仍可观察到的 identity。其信号只取消分配;句柄一经发布,便负责自身生命周期。提示符检测、空闲推断、scrollback、沙箱策略和所有者生命周期仍由 PTY 消费方负责。 通用消费方使用该执行世界: - `dsh-bash-local` 继续把 Bash 语义映射到普通的 `ctx.subprocess.spawn()`。 - `dsh-lsp-stdio` 通过 `ctx.fs` 读取源文件并验证包含关系,通过 `ctx.subprocess` 解析和启动语言服务器,并让由提供方负责的文件 URI 贯穿初始化与结果渲染。一个提供方生命周期信号会在资源释放期间中止文件系统与协议操作,包括取得队列所有权之前的工作区查找;其 JSON-RPC、池化、同步和规范化保持不变。 -- `dsh-terminal-bash` 把持久 shell 语义映射到 `ctx.subprocess.spawnTerminal()`。本地 `node-pty` 与进程检查实现移入 `dsh-subprocess-local`;其他进程管理提供方则提供相同原语。`danger-full-access` 不需要 `ctx.sandbox`;受限模式要求同一执行世界中存在沙箱提供方,未挂载时会在 spawn 前失败。提供方开始写入时,系统会丢弃异步写入前检查期间收集的提示符与静默证据。取消会在在途写入结算期间保留发送预留,随后向前台进程组发送信号,因此延迟字节和该信号都无法落到后续发送;在途就绪检查无法释放该预留,写入被拒绝时也不会发送信号。绝对截止时间会在整个取消期间保持启用。信号发送失败会成为终结性传输失败。陈旧检查完成后,会针对当前发送恢复轮询。启动取消会立即开始终端回滚,而不等待停滞的就绪检查或信号发送调用。关闭操作会拒绝新的公开信号,并把提供方可观察会话成员的完全停稳委托给句柄上须等待的终止操作。 +- `dsh-terminal-bash` 把持久 shell 语义映射到 `ctx.subprocess.spawnTerminal()`。本地 `node-pty` 与进程检查实现移入 `dsh-subprocess-local`;其他进程管理提供方则提供相同原语。`danger-full-access` 不需要 `ctx.sandbox`;受限模式要求同一执行世界中存在沙箱提供方,未挂载时会在 spawn 前失败。提供方开始写入时,系统会丢弃异步写入前检查期间收集的提示符与静默证据。取消会在在途写入结算期间保留发送预留,随后向前台进程组发送信号,因此延迟字节和该信号都无法落到后续发送;在途就绪检查无法释放该预留,写入被拒绝时也不会发送信号。绝对截止时间会在整个取消期间保持启用。信号发送失败会成为终结性传输失败。陈旧检查完成后,会针对当前发送恢复轮询。启动取消会立即开始终端回滚,而不等待停滞的就绪检查或信号发送调用。关闭操作会拒绝新的公开信号,并把由提供方管理的会话完全停稳委托给句柄上须等待的终止操作。 ## E2B POC 边界 @@ -68,6 +68,6 @@ E2B 负责可变文件系统、受管命令与 Bash 进程、终端分配与终 基础接口更宽,一对文件系统/进程管理提供方必须在同一个执行世界上保持一致。新增操作仅限当前通用消费方所需的事实与生命周期机制;模型 schema、协议分帧、就绪策略和呈现不会渗入提供方。 -本地实现承接 `node-pty` 和平台进程检查,因为它负责本地终端机制。这种代码迁移不会削弱终端拆卸:dispose(资源释放)会在终止顶层 shell 前后清理后代进程,等待前台检查期间保留下来且受精确 PID 身份围栏保护的后代进程,并继续追踪在顶层进程退出后仍存活的 Linux 会话成员。macOS 无法在 POSIX 会话 leader 退出后枚举该会话,因此在两次检查快照之间重新设定父进程的子进程仍是明确的本地提供方限制,而不是把进程机制移回 PTY 消费方的理由。 +本地实现承接 `node-pty` 和平台进程检查,因为它负责本地终端机制。在受支持的 Linux 宿主上,user-systemd scope 会保留调用 `setsid` 或发生 reparent 的后代,进程检查则继续负责前台归属与同步 fallback 证据。其他宿主使用观察型拆卸:dispose(资源释放)会在终止顶层 shell 前后清理后代进程,等待前台检查期间保留下来且受精确 PID 身份围栏保护的后代进程,并继续追踪在顶层进程退出后仍存活的 Linux 会话成员。macOS 无法在 POSIX 会话 leader 退出后枚举该会话,因此在两次检查快照之间重新设定父进程的子进程仍是明确的本地提供方限制,而不是把进程机制移回 PTY 消费方的理由。 E2B 组合证明,共享沙箱所有者加上文件系统与进程管理适配器,就足以在保持上层能力与提供方无关的同时,把可变编码世界移出宿主。其 POC 限制仍明确在案:SDK 会把完整命令传输内容保留在宿主内存中;远程启动无法同步发布 PID;无法获得精确的终端 stdin 等待状态与独立信号事实;基于数值 PID/PGID 的操作没有身份围栏;初始环境探测无法向已在运行的同 UID 进程隐藏未知的沙箱默认 secret;适配器产物会一直保留到沙箱删除。这些是提供方限制,不是引入兼容性 shim 或更多 E2B 包的理由。 diff --git a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.i18n.yaml index aaba9b1db2..892e3a8fc0 100644 --- a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.i18n.yaml @@ -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/architecture/2026-07-29-projected-token-usage-and-request-context.md -2026-07-29-projected-token-usage-and-request-context.md: d62f7dccd544a342da64fc35c24d32d53bf56231 -2026-07-29-projected-token-usage-and-request-context.zh.md: 6d2bb624ac11dbcdac30695913d3c16513bfdf9e +2026-07-29-projected-token-usage-and-request-context.md: f96257243bef91ff6a73418231de5e777d8edb2e +2026-07-29-projected-token-usage-and-request-context.zh.md: 7365d5d816f9f9b324f3e3d3b4db0d3346851bdf diff --git a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.md b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.md index d62f7dccd5..f96257243b 100644 --- a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.md +++ b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.md @@ -26,7 +26,7 @@ Capacity deliberately stays out of `EpochHeader`. That type is the reconstructio Both units ride the standard projection lifecycle: history tail baselines, `session/projection` live frames, higher-seq-wins client storage, JSON checkpoints, cache recovery, and unit unload. There is no token-specific history field, mux frame, projector, revision counter, or client fence. -The Web `StatsLine` reads both through the standard `useProjection` seat. Window nodes still supply turn and step counts plus LLM and tool wall times — those answer "what is on screen" and are correctly window-scoped. Durable token and context groups remain when compaction leaves no visible assistant step. Cache writes count in billed input and in the cache-hit denominator. A deployment without token-meter drops the token groups; occupancy stays hidden until both pressure and capacity are known. The exact-overflow tooltip mounts its measuring child only for a non-empty line and retains one `ResizeObserver` while values change; text changes perform one direct measurement without replacing the observer. +The Web [`StatsPills`](../feature/2026-09-07-composer-session-stats-pills.md) reads both through the standard `useProjection` seat. Window nodes still supply turn and step counts plus LLM and tool wall times as the no-projection fallback — those answer "what is on screen" and are correctly window-scoped. The durable usage pill remains when compaction leaves no visible assistant step. Cache writes count in billed input and in the cache-hit denominator. A deployment without token-meter drops the usage pill; context occupancy lives on the composer's ContextMeter ring. Exact token figures show in the usage pill's click-open dialog rather than a hover tooltip. ## Context occupancy is approximate, and that is the decision @@ -48,7 +48,7 @@ That cost bought a worse display: occupancy went blank after every reconnect and **Resolve capacity inside token-meter.** The package documents itself as independent of model routing and is otherwise a pure reader that never appends to the log. AgentLoop already holds the resolved metadata where the header is written. -**Extend the `session.models` RPC with capacity.** The handler already resolves and discards it, so the field is nearly free — but `StatsLine` lives in `ui-conversation` while the model directory lives in `ui-model-selection`, and `ui-conversation` cannot depend on `ui-model-selection`. Delivering it would have required either a second dock entry splitting one text row across two plugins, or a cross-plugin store write. +**Extend the `session.models` RPC with capacity.** The handler already resolves and discards it, so the field is nearly free — but the stats display (now `StatsPills`, ui-chat) and the model directory live in separate plugins with no dependency between them. Delivering it would have required either a second dock entry splitting one surface across two plugins, or a cross-plugin store write. **Add a context circle beside the model selector.** That placement suggests selected-model state. The stats line carries the figure without a duplicate UI or data path. diff --git a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.zh.md b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.zh.md index 6d2bb624ac..7365d5d816 100644 --- a/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-29-projected-token-usage-and-request-context.zh.md @@ -26,7 +26,7 @@ token-meter 还拥有在持久事件上运行的共享纯 attempt/Turn fold。 两个单元都沿用标准投影生命周期:历史尾页基线、`session/projection` 实时帧、seq 高者胜的客户端存储、JSON 检查点、缓存恢复和单元卸载。系统没有任何 token 专用的历史字段、mux 帧、投影器、修订计数器或客户端栅栏。 -Web `StatsLine` 通过标准 `useProjection` 席位读取两者。窗口内节点仍提供轮次和步骤计数,以及 LLM(大语言模型)与工具的墙钟时间:它们回答的是「屏幕上有什么」,按窗口作用域正是正确的。压缩使可见 assistant 步骤归零后,持久 token 与上下文分组仍会保留。缓存写入会计入计费输入和缓存命中率分母。未部署 token-meter 时会去掉 token 分组;只有压力与容量都已知时才显示占用率。精确 overflow tooltip 只在统计行非空时挂载测量子组件,并在值变化期间保留同一个 `ResizeObserver`;文本变化只直接测量一次,不替换 observer。 +Web [`StatsPills`](../feature/2026-09-07-composer-session-stats-pills.zh.md) 通过标准 `useProjection` 席位读取两者。窗口内节点仍作为无投影回退提供轮次和步骤计数,以及 LLM(大语言模型)与工具的墙钟时间:它们回答的是「屏幕上有什么」,按窗口作用域正是正确的。压缩使可见 assistant 步骤归零后,持久用量 pill 仍会保留。缓存写入会计入计费输入和缓存命中率分母。未部署 token-meter 时会去掉用量 pill;上下文占用率由输入框旁的 ContextMeter 圆环承载。精确 token 数字显示在用量 pill 点击展开的弹层里,而非悬停提示。 ## 上下文占用率是近似值,而这正是决策本身 @@ -48,7 +48,7 @@ Web `StatsLine` 通过标准 `useProjection` 席位读取两者。窗口内节 **在 token-meter 内部解析容量。** 该包自述与模型路由无关,且在其他方面是一个从不向日志追加内容的纯读取方。AgentLoop 在写入请求头的位置已经持有已解析的元数据。 -**为 `session.models` RPC 增加容量字段。** 其处理器已经解析出容量又将其丢弃,因此这个字段几乎是免费的;但 `StatsLine` 位于 `ui-conversation`,模型目录位于 `ui-model-selection`,而 `ui-conversation` 不能依赖 `ui-model-selection`。要送达它,就得增加第二个 dock 条目、把一行文本拆到两个插件里,或者做一次跨插件的 store 写入。 +**为 `session.models` RPC 增加容量字段。** 其处理器已经解析出容量又将其丢弃,因此这个字段几乎是免费的;但统计展示(现为 `StatsPills`,ui-chat)与模型目录位于两个互不依赖的插件。要送达它,就得增加第二个 dock 条目把一个表面拆到两个插件里,或者做一次跨插件的 store 写入。 **在模型选择器旁增加上下文圆环。** 该位置会让人以为这是所选模型的状态。统计行可以承载该数字,无需引入重复的 UI 或数据路径。 diff --git a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.i18n.yaml b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.i18n.yaml index 9b41e2e0cf..1b529c379b 100644 --- a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.i18n.yaml @@ -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/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.md -2026-07-31-claimed-pre-step-inbox-lifecycle.md: 73768e1eee8957f8976d40812b0a31a2961f0825 -2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md: 343816abaf394b8f64924cf36b753c6b1b2e34ca +2026-07-31-claimed-pre-step-inbox-lifecycle.md: 737e3835263a3215a0fd2e52dad4ee05402bd888 +2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md: ecb731df663e0d48b374a3118d7db7f6a34bfc18 diff --git a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.md b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.md index 73768e1eee..737e383526 100644 --- a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.md +++ b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.md @@ -12,17 +12,19 @@ Occurrence-local inbox wrappers also duplicated the identity already carried by ## Decision -Before every proposed step, `Inbox.claim(target)` atomically removes the complete batch: all `next-step` messages and, at a turn boundary, one `next-turn` message. At the initial boundary the loop first commits `turn/start`, so the claim and its single `agent/pre-step` decision have durable turn ownership. Claiming records normalized `agent/inbox/spliced` pure deletions with no outcome. The loop then emits `agent/inbox/claimed { message, turn }` once per claimed message and awaits the waterfall with that exclusive batch and `{ turn, step, signal }`. +Before every proposed step, the loop's package-internal `ReactLoopInbox` atomically claims the complete batch: all `next-step` messages and, at a turn boundary, one `next-turn` message. At the initial boundary the loop first commits `turn/start`, so the claim and its single `agent/pre-step` decision have durable turn ownership. Claiming records normalized `agent/inbox/spliced` pure deletions with no outcome, emits `agent/inbox/claimed { message, turn }` once per claimed message, and returns the exclusive batch for the loop's waterfall with `{ turn, step, signal }`. `PreStepDecision` is `{ kind: 'reject' } | { kind: 'enter'; messages: UserMessage[] }`. Reject opens no step, leaves the claimed batch removed, and closes the turn as blocked without any step events. Empty entry, cancellation, and failure before `step/start` likewise close a balanced no-step turn. Enter supplies the complete batch appended as `user/message` events after `step/start`. A listener wrapping `next()` preserves downstream changes unless it intentionally replaces them, so all message rewrites settle once in the final return value. There is no `agent/prompt-prepare`, `agent/prompt-submit`, or `agent/step` extension point. -The durable inbox remains two `UserMessage[]` lists addressed by `MessageId`. `append`, `prepend`, and `splice` take a target, while `replace(messageId, newMessage)` and `remove(messageId)` locate the pending message across both lists before committing a normalized splice. Replacement may change identity and emits the old message as discarded followed by the new message as inserted. Every insertion emits `agent/inbox/inserted { message }`; an ordinary removal records `outcome: 'canceled'` and emits `agent/inbox/discarded { message }`. Claiming is the loop's internal step-boundary operation on the inbox and records pure deletions without notifications or an outcome, so the loop can publish claimed events itself. These live events add no placement, outcome, or batch fields. +The durable inbox remains two `UserMessage[]` lists addressed by `MessageId`. `append`, `prepend`, and `splice` take a target, while `replace(messageId, newMessage)` and `remove(messageId)` locate the pending message across both lists before committing a normalized splice. Replacement may change identity and emits the old message as discarded followed by the new message as inserted. Every insertion emits `agent/inbox/inserted { message }`; an ordinary removal records `outcome: 'canceled'` and emits `agent/inbox/discarded { message }`. Claiming records pure deletions without an outcome and emits claimed events from `ReactLoopInbox`. These live events add no placement, outcome, or batch fields. -The two event surfaces have separate consumers. Observers following one message use `agent/inbox/inserted`, `claimed`, and `discarded`. Whole-queue consumers, including the Web queue projection and reconnect baseline, use the durable `agent/inbox/spliced` stream; UI edits and removals route through `Inbox.splice()` or another Inbox mutation method so the same projection records every change. +`Agent.inbox` exposes only the structural `Inbox` interface for reading and mutating pending work; loop-only `hasPending` and claim operations are absent from that public face. dsh-agent-loop constructs one `ReactLoopInbox` and uses it for both structural commands and driver operations. The concrete constructor receives `SessionProjectionRegistry` directly instead of the wider Cordis `Context` and registers the standard definition on the agent scope before its first read. `AgentLoop` requires the registry service at activation, and the registry reference-counts the definition across live agent scopes. + +The two event surfaces have separate consumers. Observers following one message use `agent/inbox/inserted`, `claimed`, and `discarded`. Each `ReactLoopInbox` contributes the standard `inbox` projection over the durable `agent/inbox/spliced` stream from its agent scope; UI edits and removals route through an Inbox mutation method so the same projection records every change. When that projection reconstructs durable history, it rejects unsafe or out-of-range coordinates and duplicate `MessageId` values across both lists, and reports the offending event seq. Whole-queue control consumers use the projection change feed: the Session controller publishes the projection frame, then derives the queue replacement from the same post-fold inbox value. Plugins that need current-step atomic rewriting return messages from `agent/pre-step`. Plugins that only need later context may mutate `agent.inbox` directly. Workspace context uses both paths: asynchronous filesystem projections stage one replaceable `next-step` item, while the next entering pre-step folds that item or a newly composed baseline into its final batch and removes the pending copy. Rejection keeps the item queued. -The archived [addressable queue occurrence decision](../../archived/feature/2026-07-29-addressable-queue-operations.md) describes the superseded occurrence-wrapper design. `MessageId` now owns addressability, while the retained Host queue mirror derives its snapshots from the durable splice projection. +The archived [addressable queue occurrence decision](../../archived/feature/2026-07-29-addressable-queue-operations.md) describes the superseded occurrence-wrapper design. `MessageId` owns addressability, while `ReactLoopInbox` contributes `inbox` as the standard session projection over durable splices. The generic projection carrier serves that fold for live updates, history-tail reconnect baselines, and cold process-restart recovery without a live Agent mirror. ## Alternatives considered @@ -34,7 +36,7 @@ The archived [addressable queue occurrence decision](../../archived/feature/2026 ## Verification -Agent-loop coverage pins turn-start-before-claim-before-pre-step ordering, exact live event payloads, balanced no-step rejection, final-batch rewriting, input inserted after a claim, listener failure, and cancellation. Inbox and consumer tests pin pure claim deletions, canceled ordinary removals, agent-instructions staging, replacement, and same-step entry, plan/goal/hook behavior, UI cleanup, compaction, checkpointing, and resumed durable projection. Generated event and type catalogs expose only the new waterfall and payloads. +Agent-loop coverage pins turn-start-before-claim-before-pre-step ordering, exact live event payloads, balanced no-step rejection, final-batch rewriting, input inserted after a claim, listener failure, cancellation, and agent-scope projection removal after the last owner unloads. Inbox and consumer tests pin pure claim deletions, canceled ordinary removals, agent-instructions staging, replacement, and same-step entry, plan/goal/hook behavior, UI cleanup, compaction, checkpointing, resumed durable projection, rejection of invalid persisted coordinates or cross-list identities, and post-fold queue replacement when the controller registers before the projection registry. Consumer-domain tests use a process-local Inbox stub only when durability is outside the test subject; claiming, durable projection, recovery, validation, and live-notification tests create Agents through the production AgentLoop test harness, so test support never reimplements the projection. Generated event and type catalogs expose only the new waterfall and payloads. ## Consequences diff --git a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md index 343816abaf..ecb731df66 100644 --- a/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md +++ b/.agents/notes/implemented/architecture/2026-07-31-claimed-pre-step-inbox-lifecycle.zh.md @@ -12,17 +12,19 @@ Status: implemented ## 决策 -每个拟议步骤之前,`Inbox.claim(target)` 会原子移除完整批次:全部 `next-step` 消息,以及轮次边界上的一条 `next-turn` 消息。在首次边界,循环会先提交 `turn/start`,使领取及其唯一一次 `agent/pre-step` 决策拥有持久轮次归属。领取会记录规范化、不带 outcome 的纯删除 `agent/inbox/spliced`。随后,循环针对每条已领取消息发出一次 `agent/inbox/claimed { message, turn }`,并用该独占批次与 `{ turn, step, signal }` 等待 waterfall(瀑布式事件)。 +每个拟议步骤之前,循环包内部的 `ReactLoopInbox` 会原子领取完整批次:全部 `next-step` 消息,以及轮次边界上的一条 `next-turn` 消息。在首次边界,循环会先提交 `turn/start`,使领取及其唯一一次 `agent/pre-step` 决策拥有持久轮次归属。领取会记录规范化、不带 outcome 的纯删除 `agent/inbox/spliced`,针对每条已领取消息发出一次 `agent/inbox/claimed { message, turn }`,并把独占批次返回给循环,由后者用 `{ turn, step, signal }` 等待 waterfall(瀑布式事件)。 `PreStepDecision` 为 `{ kind: 'reject' } | { kind: 'enter'; messages: UserMessage[] }`。reject 不会打开步骤,会让已领取批次保持已删除,并将轮次关闭为 blocked,且不产生任何步骤事件。空的 enter、取消以及 `step/start` 前的失败同样会关闭一个边界平衡的无步骤轮次。enter 提供在 `step/start` 后以 `user/message` 追加的完整批次。包装 `next()` 的监听器会保留下游变更,除非有意替换,因此全部消息改写只在最终返回值中一次性结算。系统不再存在 `agent/prompt-prepare`、`agent/prompt-submit` 或 `agent/step` 扩展点。 -持久 inbox 仍是两份通过 `MessageId` 寻址的 `UserMessage[]` 列表。`append`、`prepend` 与 `splice` 接受 target;`replace(messageId, newMessage)` 与 `remove(messageId)` 则在提交规范化 splice 前,通过 `MessageId` 跨两份列表定位待处理消息。替换可以改变标识,并先将旧消息作为 discarded 发布,再将新消息作为 inserted 发布。每次插入发出 `agent/inbox/inserted { message }`;普通删除记录 `outcome: 'canceled'` 并发出 `agent/inbox/discarded { message }`。领取是循环在 inbox 上的内部步骤边界操作,记录不带通知或 outcome 的纯删除,因此循环可以自行发布 claimed 事件。这些实时事件不增加 placement、outcome 或批次字段。 +持久 inbox 仍是两份通过 `MessageId` 寻址的 `UserMessage[]` 列表。`append`、`prepend` 与 `splice` 接受 target;`replace(messageId, newMessage)` 与 `remove(messageId)` 则在提交规范化 splice 前,通过 `MessageId` 跨两份列表定位待处理消息。替换可以改变标识,并先将旧消息作为 discarded 发布,再将新消息作为 inserted 发布。每次插入发出 `agent/inbox/inserted { message }`;普通删除记录 `outcome: 'canceled'` 并发出 `agent/inbox/discarded { message }`。领取记录不带 outcome 的纯删除,并由 `ReactLoopInbox` 发出 claimed 事件。这些实时事件不增加 placement、outcome 或批次字段。 -两类事件接口服务不同消费方。跟踪单条消息的观察方使用 `agent/inbox/inserted`、`claimed` 与 `discarded`。包括 Web 队列投影和重连基线在内的整体队列消费方使用持久 `agent/inbox/spliced` 流;UI 编辑与移除通过 `Inbox.splice()` 或其他 Inbox 变更方法处理,从而让同一投影记录所有变化。 +`Agent.inbox` 只暴露用于读取和变更待处理工作的结构化 `Inbox` 接口;仅供循环使用的 `hasPending` 与领取操作不在该公开接口上。dsh-agent-loop 只构造一个 `ReactLoopInbox`,同时用于结构化命令与驱动器操作。具体构造函数直接接收 `SessionProjectionRegistry`,而不是更宽泛的 Cordis `Context`,并在首次读取前从 agent 作用域注册标准定义。`AgentLoop` 激活时要求该注册表服务存在,注册表则对多个 live agent 作用域贡献的定义进行引用计数。 + +两类事件接口服务不同消费方。跟踪单条消息的观察方使用 `agent/inbox/inserted`、`claimed` 与 `discarded`。每个 `ReactLoopInbox` 都从其 agent 作用域在持久 `agent/inbox/spliced` 流上贡献标准 `inbox` 投影;UI 编辑与移除通过 Inbox 变更方法处理,从而让同一投影记录所有变化。该投影重建持久历史时,会拒绝不安全或越界的坐标,以及跨两份列表重复的 `MessageId`,并报告出错事件的 seq。整体队列的 control 消费方使用投影变更流:Session controller 先发布 projection frame,再从同一份折叠后的 inbox 值派生 queue replacement。 必须对当前步骤进行原子改写的插件从 `agent/pre-step` 返回消息。只需要稍后上下文的插件可以直接修改 `agent.inbox`。Workspace context 同时使用两条路径:异步文件系统投影会暂存一条可替换的 `next-step` 消息,而下一次进入步骤的 pre-step 会把该消息或新组合的基线折入最终批次,并移除仍待处理的副本。reject 会让该条目继续排队。 -已归档的[可寻址队列项决策](../../archived/feature/2026-07-29-addressable-queue-operations.md)描述了已被取代的单次出现包装层设计。现在由 `MessageId` 负责寻址,而保留的 Host 队列镜像根据持久 splice 投影派生快照。 +已归档的[可寻址队列项决策](../../archived/feature/2026-07-29-addressable-queue-operations.md)描述了已被取代的单次出现包装层设计。`MessageId` 负责寻址,而 `ReactLoopInbox` 把 `inbox` 作为持久 splice 上的标准会话投影贡献给投影注册表。通用投影传输层会将该折叠结果用于实时更新、历史尾页的重连基线和冷进程重启恢复,无需 live Agent 镜像。 ## 曾考虑的替代方案 @@ -34,7 +36,7 @@ Status: implemented ## 验证 -agent loop(智能体循环)覆盖固定先 `turn/start`、再领取、后 pre-step 的顺序、实时事件的确切载荷、边界平衡的无步骤 reject、最终批次改写、领取后插入的输入、监听器失败与取消。Inbox 和消费方测试固定纯领取删除、普通删除的 canceled 结果、agent-instructions 的暂存、替换与同一步骤进入、plan/goal/钩子行为、UI 清理、压缩(compaction)、检查点以及恢复后的持久投影。生成的事件与类型目录只公开新的 waterfall 与载荷。 +agent loop(智能体循环)覆盖固定先 `turn/start`、再领取、后 pre-step 的顺序、实时事件的确切载荷、边界平衡的无步骤 reject、最终批次改写、领取后插入的输入、监听器失败、取消,以及最后一个所有者卸载后移除 agent 作用域投影。Inbox 和消费方测试固定纯领取删除、普通删除的 canceled 结果、agent-instructions 的暂存、替换与同一步骤进入、plan/goal/钩子行为、UI 清理、压缩(compaction)、检查点、恢复后的持久投影、对非法持久坐标或跨列表重复标识的拒绝,以及 controller 早于投影注册表注册时仍使用折叠后队列值。只有当持久性不属于测试对象时,消费方领域测试才使用进程内 Inbox 桩;领取、持久投影、恢复、校验与实时通知测试通过生产 AgentLoop 测试 harness 创建 Agent,因此测试支持代码不会重新实现该投影。生成的事件与类型目录只公开新的 waterfall 与载荷。 ## 后果 diff --git a/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.i18n.yaml b/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.i18n.yaml index f1d03b2fae..70634bb543 100644 --- a/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.i18n.yaml +++ b/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.i18n.yaml @@ -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/architecture/2026-08-05-profile-plugin-bundles.md -2026-08-05-profile-plugin-bundles.md: ccfa3306fd88b4f291085cae2bd02305b2c11fc6 -2026-08-05-profile-plugin-bundles.zh.md: e15ad15978ab57dcada8ecc877e0036cfde6b21e +2026-08-05-profile-plugin-bundles.md: 7e51345e7eba8a58db63807e31d4a11481e3ffea +2026-08-05-profile-plugin-bundles.zh.md: b2631603737ea9412eb97029ff01d751d8084cec diff --git a/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.md b/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.md index ccfa3306fd..7e51345e7e 100644 --- a/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.md +++ b/.agents/notes/implemented/architecture/2026-08-05-profile-plugin-bundles.md @@ -12,7 +12,7 @@ The `dsh` launcher hardcoded its compositions: `base.cordis.yml` + `web.cordis.y Everything becomes a **profile**: a directory `$DSH_HOME/profiles/` with a `package.json` (pnpm-managed out-of-tree plugin `dependencies` plus the profile manifest `dsh.profile` with its ordered `bundles` layer list) and a user `cordis.patch.yml`. A **bundle** is an npm package declaring `"dsh": { "bundle": { "patch": "./cordis.patch.yml" } }`; the two manifest kinds live under distinct `dsh.profile` / `dsh.bundle` keys so a package.json states which role it plays. The tree composes over an empty root by applying each bundle's patch in `dsh.profile.bundles` order, then the user layer and `--patch` overlays — one `applyEntryPatches` call shared by boot and `--dump-config`. App invocation values later moved from launcher-derived patches to startup services in the [app-owned command-line decision](../../archived/architecture/2026-08-06-app-owned-command-line.md). -The default Profile templates use `@deepseek-ai/dsh-base` as the shared core for `web`, `headless`, `sdk`, and `acp`, with one mode bundle above it. The [standalone `sdk-minimal` profile](../../../../packages/bundle/sdk-minimal/README.md) instead lists one bundle that owns its complete explicit tree. Generic `dsh --profile ` hands its remaining arguments to that profile's command-line startup row: Web owns its flag family, headless owns its task positional, and the protocol profiles accept no app options. Patch overlays use launcher-owned `--patch`. `dsh plugin --profile ` is a thin pnpm forwarder that initializes the profile and reconciles `dsh.profile.bundles` with installed bundle declarations; a package without a bundle declaration remains a plain dependency. [Headless as a direct core entry point](../../archived/architecture/2026-08-09-headless-direct-core-entry-point.md) owns the headless composition contract. +The default Profile templates use `@deepseek-ai/dsh-base` as the shared core for `web`, `headless`, `sdk`, and `acp`, with one mode bundle above it. The [standalone `sdk-minimal` profile](../../../../packages/bundle/sdk-minimal/README.md) instead lists one bundle that owns its complete explicit tree. Generic `dsh --profile ` hands its remaining arguments to that profile's command-line startup row: Web owns its flag family, headless owns its task positional, and the protocol profiles accept no app options. Patch overlays use launcher-owned `--patch`. A new, non-shipped target can use `--from-default-profile