refactor(agent-loop): drop the steering/message session event
Steer, inject, and followup now land as durable user/message events on the session surface; the steering/message event type and its ConversationNode kind are removed from the client projection. Update tests, docs, generated catalogs, and agent notes to match, and align the steering e2e fixture and prompt inventory assertions with the durable user/message landing.
This commit is contained in:
@@ -12,7 +12,7 @@ The harness needs one internal language for messages that the loop, session log,
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Own the vocabulary: messages are arrays of typed content blocks (`text`, `reasoning`, `tool-call`, `tool-result`), with the union derived from the merge-extensible `ContentBlockMap` so plugins add block types via declaration merging. The same merge-extensible-map pattern types every "stringly" field (`MessageSource`, `FinishReason`, `TurnTrigger`, `TurnEndReason`). Streaming is a raw chunk protocol; `BlockAssembler` is the single shared assembly implementation. Adapters translate to provider wire formats — mapping cost lives in adapters, where it belongs.
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In-session context injection (`context/message`) and mid-turn steering (`steering/message`) originally rendered as tagged user-role envelopes (the system-reminder pattern) rather than a new role, so adapters carry zero burden. Both now project as plain user content with no wrapper; see [the injected-content-envelope Agent Note](../simplification/2026-07-20-unwrap-injected-content-envelopes.md). Live-adapter validation confirms this rendering for current DeepSeek behavior; a future provider-specific mismatch belongs in that adapter rather than a new canonical role.
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In-session context injection (`context/message`) and mid-turn steering originally rendered as tagged user-role envelopes (the system-reminder pattern) rather than a new role, so adapters carry zero burden. Both now project as plain user content with no wrapper; see [the injected-content-envelope Agent Note](../simplification/2026-07-20-unwrap-injected-content-envelopes.md). Live-adapter validation confirms this rendering for current DeepSeek behavior; a future provider-specific mismatch belongs in that adapter rather than a new canonical role.
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## Alternatives considered
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@@ -12,7 +12,7 @@ harness 需要一套统一的内部消息语言,供 agent loop(智能体循
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自主拥有词汇:消息是类型化内容块的数组(`text`、`reasoning`、`tool-call`、`tool-result`),其联合类型派生自可合并扩展的 `ContentBlockMap`,插件通过声明合并添加新的块类型。同一可合并扩展映射模式为所有「字符串化」字段提供类型(`MessageSource`、`FinishReason`、`TurnTrigger`、`TurnEndReason`)。流式输出采用原始分片协议;`BlockAssembler` 是唯一的共享组装实现。适配器负责转换为提供方的协议格式(wire format)——映射成本留在适配器中,正是它该在的地方。
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会话内上下文注入(`context/message`)和轮次中途 steering(`steering/message`)最初渲染为带标签的 user-role 信封(system-reminder 模式),而非引入新角色,因此适配器无需承担额外负担。如今两者都投影为无包装的普通用户内容;见[注入内容信封 Agent Note](../simplification/2026-07-20-unwrap-injected-content-envelopes.md)。实际适配器验证已确认此渲染方式符合当前 DeepSeek 的行为;如果未来某提供方出现不兼容,应在该适配器内处理,而非引入新的规范角色。
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会话内上下文注入(`context/message`)和轮次中途 steering 最初渲染为带标签的 user-role 信封(system-reminder 模式),而非引入新角色,因此适配器无需承担额外负担。如今两者都投影为无包装的普通用户内容;见[注入内容信封 Agent Note](../simplification/2026-07-20-unwrap-injected-content-envelopes.md)。实际适配器验证已确认此渲染方式符合当前 DeepSeek 的行为;如果未来某提供方出现不兼容,应在该适配器内处理,而非引入新的规范角色。
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## 曾考虑的替代方案
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@@ -27,7 +27,7 @@ export type SurfaceOp =
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| { op: 'replace'; start: number; end: number } // shadow [start, end] inclusive
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```
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1. **Append** — add the new event seq to the tail. Used by `user/message`, `assistant/message`, `tool/result`, `context/message`, `steering/message`. The loop passes `surfaceOp: 'append'` on all such appends and records `sourceEventSeqs` where applicable: every successful `assistant/message` records its complete `assistant/chunk` source set, including `[]`, while `tool/result` records its `tool/call` source.
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1. **Append** — add the new event seq to the tail. Used by `user/message`, `assistant/message`, `tool/result`, `context/message`. The loop passes `surfaceOp: 'append'` on all such appends and records `sourceEventSeqs` where applicable: every successful `assistant/message` records its complete `assistant/chunk` source set, including `[]`, while `tool/result` records its `tool/call` source.
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2. **Replace** — remove entries from `start` through `end` (both inclusive) and insert the new event seq in their place. Both `start` and `end` must be present in the current surface; `start === end` replaces one entry. The event's `sourceEventSeqs` must contain every shadowed surface seq. The shadowed events remain in the log but are no longer on the surface.
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@@ -27,7 +27,7 @@ export type SurfaceOp =
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| { op: 'replace'; start: number; end: number } // shadow [start, end] inclusive
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```
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1. **Append**:在尾部追加新事件的 seq。`user/message`、`assistant/message`、`tool/result`、`context/message`、`steering/message` 使用此操作。agent loop(智能体循环)在所有此类追加上传入 `surfaceOp: 'append'`,并在适用时记录 `sourceEventSeqs`:每个成功的 `assistant/message` 都记录完整的 `assistant/chunk` 来源集合(包括 `[]`),而 `tool/result` 记录其 `tool/call` 来源。
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1. **Append**:在尾部追加新事件的 seq。`user/message`、`assistant/message`、`tool/result`、`context/message` 使用此操作。agent loop(智能体循环)在所有此类追加上传入 `surfaceOp: 'append'`,并在适用时记录 `sourceEventSeqs`:每个成功的 `assistant/message` 都记录完整的 `assistant/chunk` 来源集合(包括 `[]`),而 `tool/result` 记录其 `tool/call` 来源。
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2. **Replace**:移除从 `start` 到 `end`(两端包含)的条目,并在其位置插入新事件的 seq。`start` 和 `end` 都必须存在于当前 surface;`start === end` 表示替换单个条目。该事件的 `sourceEventSeqs` 必须包含所有被遮蔽的 surface seq。被遮蔽的事件仍留在日志中,但不再出现在 surface 上。
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@@ -21,7 +21,7 @@ This vocabulary is the foundation for interception decisions, the durable `hook/
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**Three domains, one job each, with a single boundary rule.**
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- **`session/*` — the durable, replayable FACT log.** Owns `SessionEventMap`; every entry is JSON-only (no live objects). One `session/event` emit per append, plus the `session/flush` parallel durability checkpoint. It is also the live transcript feed: a consumer that wants to render or react to what happened subscribes here, so live rendering and replay projections share one path.
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- **`agent/*` — the LIVE runtime surface.** Always carries the live `Agent`. Interception waterfalls (`agent/pre-step`, `agent/request`, `agent/request-error`) transform, reject, or recover; awaited `agent/turn-stopping` observes the stop boundary; transient emits report lifecycle, status, inbox insertion/claim/discard, and errors. Turn and step BOUNDARIES are NOT here — they are durable session events read off `session/event`, as are the token stream (`assistant/chunk`) and mid-turn steering (`steering/message`).
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- **`agent/*` — the LIVE runtime surface.** Always carries the live `Agent`. Interception waterfalls (`agent/pre-step`, `agent/request`, `agent/request-error`) transform, reject, or recover; awaited `agent/turn-stopping` observes the stop boundary; transient emits report lifecycle, status, inbox insertion/claim/discard, and errors. Turn and step BOUNDARIES are NOT here — they are durable session events read off `session/event`, as are the token stream (`assistant/chunk`) and mid-turn steering (a `user/message`).
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- **`tools/*` — the tool registry + execution seam.**
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**The boundary rule:** a durable, replayable fact is a `SessionEvent`; a live interception or a transient/live-object signal is an `agent`/`tools` Cordis event. A turn or step boundary is a durable fact, so it lives in the session log and is read off the `session/event` feed — it is NOT mirrored as an `agent/*` emit.
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@@ -33,7 +33,7 @@ This vocabulary is the foundation for interception decisions, the durable `hook/
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- The loop no longer emits any boundary mirror; `closeStep` appends `step/end` only and `closeTurn` appends `turn/end` only. `Session.append` owns post-commit observer containment, so a throwing boundary observer cannot change the turn outcome or starve later consumers; an acceptance or internal validation failure still escapes before the boundary enters the log.
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- Tests that observed boundaries via the removed emits now observe the durable `turn/start`/`turn/end`/`step/start`/`step/end` session events — the behavior they pin (boundary ordering, step counting) is unchanged; only the feed they read moved to the canonical one. The tests that exercised a *throwing turn-boundary emit listener* were deleted, because that code path no longer exists (there is no emit to throw from). Per [AGENTS.md "tests document behavior, not golden truth"](../../../../AGENTS.md), the behavior and its test moved (or died) together.
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- The loop marks the step open (`stepOpen = true`) only after `append('step/start')` returns. Internal dispatch validation runs before the log push and may reject without opening a step; post-commit `session/event` observer failures are contained inside `Session.append`. The marker therefore represents exactly the committed boundary that owes a later `step/end`.
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- The full realization of this is [the simplification Agent Note "Stop mirroring durable boundaries as agent events"](../simplification/2026-06-20-remove-agent-boundary-mirror-events.md): all four boundary mirrors are removed and every consumer reads boundaries off `session/event`. `agent/steering` (not a boundary mirror) stayed outside that Agent Note's scope and was removed by its own follow-up, [Remove the `agent/steering` mirror emit](../../archived/simplification/2026-07-04-remove-agent-steering-mirror.md) — it mirrored the durable `steering/message`.
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- The full realization of this is [the simplification Agent Note "Stop mirroring durable boundaries as agent events"](../simplification/2026-06-20-remove-agent-boundary-mirror-events.md): all four boundary mirrors are removed and every consumer reads boundaries off `session/event`. `agent/steering` (not a boundary mirror) stayed outside that Agent Note's scope and was removed by its own follow-up, [Remove the `agent/steering` mirror emit](../../archived/simplification/2026-07-04-remove-agent-steering-mirror.md) — it mirrored the durable mid-turn steering `user/message`.
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- The cordis events catalog (`docs/cordis-catalog/events.md`) is regenerated to drop the mirror events.
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<!-- agent-note-format: alternatives-not-recorded (pre-format Agent Note) -->
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@@ -21,7 +21,7 @@ harness 通过 Cordis 事件分类体系扩展 agent loop(智能体循环)
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**三个域,各司其职,以一条边界规则统一。**
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- **`session/*`——持久的、可回放的事实日志。** 拥有 `SessionEventMap`;每条记录仅含 JSON(无活对象)。每次追加触发一次 `session/event` emit,加上 `session/flush` 并行持久性检查点。它同时也是实时 transcript(文本记录)源:想渲染或响应已发生事件的消费方在此订阅,因此实时渲染与回放投影共享同一路径。
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- **`agent/*`——运行时实时表面。** 始终携带活的 `Agent`。拦截 waterfall(瀑布式事件)(`agent/pre-step`、`agent/request`、`agent/request-error`)负责变换、拒绝或恢复;awaited `agent/turn-stopping` 观察停止边界;瞬态 emit 报告生命周期、状态、inbox 插入/领取/丢弃与错误。轮次和步骤边界不在此处——它们是持久的会话事件,从 `session/event` 读取;token 流(`assistant/chunk`)和中途 steering(`steering/message`)同理。
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- **`agent/*`——运行时实时表面。** 始终携带活的 `Agent`。拦截 waterfall(瀑布式事件)(`agent/pre-step`、`agent/request`、`agent/request-error`)负责变换、拒绝或恢复;awaited `agent/turn-stopping` 观察停止边界;瞬态 emit 报告生命周期、状态、inbox 插入/领取/丢弃与错误。轮次和步骤边界不在此处——它们是持久的会话事件,从 `session/event` 读取;token 流(`assistant/chunk`)和中途 steering(以 `user/message` 呈现)同理。
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- **`tools/*`——工具注册表与执行 seam。**
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**边界规则:** 持久的、可回放的事实是 `SessionEvent`;实时拦截或瞬态/活对象信号是 `agent`/`tools` Cordis 事件。轮次或步骤边界是持久事实,因此存在于会话日志中并从 `session/event` 源读取——不会被镜像为 `agent/*` emit。
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@@ -33,7 +33,7 @@ harness 通过 Cordis 事件分类体系扩展 agent loop(智能体循环)
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- 循环不再 emit 任何边界镜像;`closeStep` 仅追加 `step/end`,`closeTurn` 仅追加 `turn/end`。`Session.append` 负责 post-commit observer 隔离,因此抛出异常的边界 observer 无法改变轮次结果或饿死后续消费方;接受或内部校验失败仍会在边界进入日志之前逃逸。
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- 之前通过已移除 emit 观察边界的测试,现在观察持久的 `turn/start`/`turn/end`/`step/start`/`step/end` 会话事件——它们固定的行为(边界顺序、步骤计数)不变;只是读取的源移到了规范源。那些测试*抛出异常的轮次边界 emit 监听器*的用例被删除,因为该代码路径不再存在(没有 emit 可供抛出)。按照 [AGENTS.md「测试记录行为,而非黄金真相」](../../../../AGENTS.md),行为与其测试一同迁移(或一同消亡)。
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- 循环仅在 `append('step/start')` 返回后才标记步骤已打开(`stepOpen = true`)。内部分发校验在日志推入之前运行,可能在不打开步骤的情况下拒绝;post-commit `session/event` observer 的失败被隔离在 `Session.append` 内部。因此该标记精确表示已提交的、欠一个后续 `step/end` 的边界。
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- 完整实现见[简化 Agent Note「停止将持久边界镜像为 agent 事件」](../simplification/2026-06-20-remove-agent-boundary-mirror-events.md):全部四个边界镜像被移除,所有消费方从 `session/event` 读取边界。`agent/steering`(不是边界镜像)不在该 Agent Note 范围内,由其后续 Agent Note [移除 `agent/steering` 镜像 emit](../../archived/simplification/2026-07-04-remove-agent-steering-mirror.md) 单独移除——它镜像的是持久的 `steering/message`。
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- 完整实现见[简化 Agent Note「停止将持久边界镜像为 agent 事件」](../simplification/2026-06-20-remove-agent-boundary-mirror-events.md):全部四个边界镜像被移除,所有消费方从 `session/event` 读取边界。`agent/steering`(不是边界镜像)不在该 Agent Note 范围内,由其后续 Agent Note [移除 `agent/steering` 镜像 emit](../../archived/simplification/2026-07-04-remove-agent-steering-mirror.md) 单独移除——它镜像的是持久的中途 steering `user/message`。
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- Cordis 事件目录(`docs/cordis-catalog/events.md`)重新生成以移除镜像事件。
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<!-- agent-note-format: alternatives-not-recorded (pre-format Agent Note) -->
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@@ -20,7 +20,7 @@ The helpers live in `dsh-llm` beside the base message vocabulary because their c
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The `Agent` interface accepts a complete `UserMessage` through `followup`, `steer`, and `inject`. These operations never allocate or return identity; they freeze an imported value whose id the caller already holds. Inbox claims and `agent/pre-step` receive that message directly. A content rewrite creates a frozen replacement with the same id, while an additional context is a separately created `UserMessage` with its own id.
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Durable message-producing events store complete messages. `user/message` stores its `UserMessage` directly; `assistant/message`, `tool/result`, and `steering/message` wrap their role-specialized message beside event-local position, usage, failure, or presentation facts. Session derivation returns those frozen values instead of reconstructing anonymous messages. Assistant assembly creates a model-sourced message when a response completes, and tool execution creates a tool-sourced message when a result is committed.
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Durable message-producing events store complete messages. `user/message` stores its `UserMessage` directly; `assistant/message` and `tool/result` wrap their role-specialized message beside event-local position, usage, failure, or presentation facts. Session derivation returns those frozen values instead of reconstructing anonymous messages. Assistant assembly creates a model-sourced message when a response completes, and tool execution creates a tool-sourced message when a result is committed.
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Any operation that changes only the representation of an existing semantic message preserves its id and returns another frozen value. An operation that creates a new semantic message mints a new id. Compaction content rewrites therefore preserve the rewritten tool-result identity, while a summary checkpoint is a new message.
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@@ -20,7 +20,7 @@ harness 曾存在多种形似消息的表示,各自采用不同的标识规则
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`Agent` 接口通过 `followup`、`steer` 和 `inject` 接收完整的 `UserMessage`。这些操作绝不会分配或返回标识;它们会冻结导入的值,而调用方已经持有该值的 id。inbox 领取和 `agent/pre-step` 会直接接收该消息。改写内容时会创建具有相同 id 的冻结替代值,而每个附加上下文都是单独创建的 `UserMessage`,拥有自己的 id。
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产生持久消息的事件会存储完整消息。`user/message` 直接存储其 `UserMessage`;`assistant/message`、`tool/result` 和 `steering/message` 则将各自角色专用的消息与事件本地的位置、用量、失败或呈现事实包装在一起。会话派生会返回这些冻结值,而不是重建匿名消息。assistant 组装会在响应完成时创建模型来源的消息,工具执行会在提交结果时创建工具来源的消息。
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产生持久消息的事件会存储完整消息。`user/message` 直接存储其 `UserMessage`;`assistant/message` 和 `tool/result` 则将各自角色专用的消息与事件本地的位置、用量、失败或呈现事实包装在一起。会话派生会返回这些冻结值,而不是重建匿名消息。assistant 组装会在响应完成时创建模型来源的消息,工具执行会在提交结果时创建工具来源的消息。
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仅改变已有语义消息表示的操作会保留其 id,并返回另一个冻结值。创建新语义消息的操作则会生成新 id。因此,压缩(compaction)内容改写会保留被改写工具结果的标识,而摘要检查点是一条新消息。
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@@ -6,7 +6,7 @@ English | [中文](2026-07-29-human-transcript-append-origin.zh.md)
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## Problem
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The terminal and the host history gateway both treated the model-visible surface as the human transcript. A successful compaction replaces a surface range with one checkpoint node, so the moment that replacement landed the terminal dropped every message it shadowed — conversation the user had already read — and re-ran that destructive rebuild on any later replacement. The same confusion reached pagination: `maxMessages` counted every `user/message`, `assistant/message`, and `steering/message` in the window, so a model-only replacement copy consumed a page slot the human never filled, and the cut could land between a compaction's log-only provenance and the replacement that cites it.
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The terminal and the host history gateway both treated the model-visible surface as the human transcript. A successful compaction replaces a surface range with one checkpoint node, so the moment that replacement landed the terminal dropped every message it shadowed — conversation the user had already read — and re-ran that destructive rebuild on any later replacement. The same confusion reached pagination: `maxMessages` counted every `user/message` and `assistant/message` in the window, so a model-only replacement copy consumed a page slot the human never filled, and the cut could land between a compaction's log-only provenance and the replacement that cites it.
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Nothing was lost from the log. `Session.events` still held every original message and full tool result; the surface only decides what the model is sent next. The defect was entirely in the projection.
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@@ -6,7 +6,7 @@ Status: implemented
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## Problem
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终端与宿主历史网关都把模型可见的 surface 当作人类可读记录(transcript)。一次成功的压缩(compaction)会用一个检查点节点替换一段 surface 范围,因此该替换一落地,终端就丢弃了它所遮蔽的每条消息——那些是用户已经读过的对话——并在此后任何替换到来时重新执行这次破坏性重建。同样的混淆也波及分页:`maxMessages` 统计窗口内的每个 `user/message`、`assistant/message` 和 `steering/message`,于是仅供模型使用的替换副本占用了一个人类从未填充的页面额度,而切分点还可能落在压缩的仅日志溯源信息与引用它的替换之间。
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终端与宿主历史网关都把模型可见的 surface 当作人类可读记录(transcript)。一次成功的压缩(compaction)会用一个检查点节点替换一段 surface 范围,因此该替换一落地,终端就丢弃了它所遮蔽的每条消息——那些是用户已经读过的对话——并在此后任何替换到来时重新执行这次破坏性重建。同样的混淆也波及分页:`maxMessages` 统计窗口内的每个 `user/message` 和 `assistant/message`,于是仅供模型使用的替换副本占用了一个人类从未填充的页面额度,而切分点还可能落在压缩的仅日志溯源信息与引用它的替换之间。
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日志本身没有丢失任何内容。`Session.events` 仍保存着每条原始消息和完整的工具结果;surface 只决定接下来发送给模型的内容。缺陷完全在投影层。
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@@ -10,7 +10,7 @@ A long-running agent conversation grows without bound. As the event log accumula
|
||||
|
||||
The [session surface](../architecture/2026-06-18-session-surface.md) was built as the foundation for exactly this — an ordered projection over the event log with a `surfaceOp: { op: 'replace', start, end }` operation purpose-built to shadow a range of entries and insert a replacement, with `sourceEventSeqs` recording provenance so the decision replays deterministically. What remained was the plugin that *decides what to compact and produces the summary*.
|
||||
|
||||
Two forces shape the design. First, compaction policy and reusable token measurement vary independently: measurement belongs to the LLM-family [`ctx.tokenMeter` service](../architecture/2026-07-15-replay-token-meter-service.md), while summarization can be a model call, a template, or a remote service. Second, `SurfaceEventType` is closed to five event types (`user/message`, `assistant/message`, `tool/result`, `context/message`, `steering/message`); only those may carry `surfaceOp`. A bespoke `compaction/*` event therefore **cannot** itself appear on the surface — the compiler and Session's always-on append/seed boundary reject `surfaceOp` on it.
|
||||
Two forces shape the design. First, compaction policy and reusable token measurement vary independently: measurement belongs to the LLM-family [`ctx.tokenMeter` service](../architecture/2026-07-15-replay-token-meter-service.md), while summarization can be a model call, a template, or a remote service. Second, `SurfaceEventType` is closed to the message-producing event types (`user/message`, `assistant/message`, `tool/result`); only those may carry `surfaceOp`. A bespoke `compaction/*` event therefore **cannot** itself appear on the surface — the compiler and Session's always-on append/seed boundary reject `surfaceOp` on it.
|
||||
|
||||
## Decision
|
||||
|
||||
|
||||
@@ -10,7 +10,7 @@ Status: implemented
|
||||
|
||||
[会话接口面](../architecture/2026-06-18-session-surface.md)正是为此而构建的基础设施:一份建立在事件日志之上的有序投影,带有专门设计的 `surfaceOp: { op: 'replace', start, end }` 操作,用于遮蔽一段条目并插入替换内容,`sourceEventSeqs` 记录溯源信息以便决策可确定性地回放。剩下的是那个*决定压缩什么、并产出摘要*的插件。
|
||||
|
||||
两股力量塑造了设计。第一,压缩策略与可复用的 token 测量独立变化:测量归 LLM 系列的 [`ctx.tokenMeter` 服务](../architecture/2026-07-15-replay-token-meter-service.md)所有,摘要生成则可以使用模型调用、模板或远程服务。第二,`SurfaceEventType` 封闭为五种事件类型(`user/message`、`assistant/message`、`tool/result`、`context/message`、`steering/message`);只有这些类型可以携带 `surfaceOp`。因此一个专用的 `compaction/*` 事件**不能**出现在 surface 上,编译器与 Session 始终启用的 append/seed 边界都会拒绝在其上附加 `surfaceOp`。
|
||||
两股力量塑造了设计。第一,压缩策略与可复用的 token 测量独立变化:测量归 LLM 系列的 [`ctx.tokenMeter` 服务](../architecture/2026-07-15-replay-token-meter-service.md)所有,摘要生成则可以使用模型调用、模板或远程服务。第二,`SurfaceEventType` 封闭为产生消息的事件类型(`user/message`、`assistant/message`、`tool/result`);只有这些类型可以携带 `surfaceOp`。因此一个专用的 `compaction/*` 事件**不能**出现在 surface 上,编译器与 Session 始终启用的 append/seed 边界都会拒绝在其上附加 `surfaceOp`。
|
||||
|
||||
## 决策
|
||||
|
||||
|
||||
@@ -22,7 +22,7 @@ Preparation deduplicates in first-appearance order, rejects the target id, enfor
|
||||
|
||||
Projection retains direct-user messages and steering, completed assistant text, and checkpoint user messages carrying the canonical source exported by `dsh-compact`. That marker is part of the compaction capability contract rather than a backend package name. When a source prompt already contains baked prefix context, projection reads only its model-hidden display content, so referencing that target later does not recursively propagate an earlier snapshot. Projection excludes shadowed pre-compaction nodes, tools and results, reasoning, injected context, other plugin user messages, log-only records, and incomplete assistant chunks. Repeated compaction therefore exposes only the latest folded checkpoint lineage still on the current surface plus its retained tail; there is no raw/current switch and no shadow recovery.
|
||||
|
||||
One aggregated context is serialized as JSON beneath a fixed untrusted-background warning. The warning tells the model not to follow instructions, permission claims, or tool requests from referenced sessions unless the current user repeats them. Tag-safe serialization emits every data `<` as the lossless JSON escape `\u003c`; source strings therefore cannot spell the surrounding XML-like tags or escape the data region. The same serializer drives each source's independent byte accounting. AgentLoop persists the snapshot as a sourced `user/message` immediately before the direct `user/message` or `steering/message`; target replay therefore satisfies the model-visible/log-reconstructable invariant without a new event type, placement mode, or prompt envelope.
|
||||
One aggregated context is serialized as JSON beneath a fixed untrusted-background warning. The warning tells the model not to follow instructions, permission claims, or tool requests from referenced sessions unless the current user repeats them. Tag-safe serialization emits every data `<` as the lossless JSON escape `\u003c`; source strings therefore cannot spell the surrounding XML-like tags or escape the data region. The same serializer drives each source's independent byte accounting. AgentLoop persists the snapshot as a sourced `user/message` immediately before the direct `user/message`; target replay therefore satisfies the model-visible/log-reconstructable invariant without a new event type, placement mode, or prompt envelope.
|
||||
|
||||
## Message ownership
|
||||
|
||||
|
||||
@@ -22,7 +22,7 @@ TUI 用户需要把另一场对话中的相关工作带入一条新消息,但
|
||||
|
||||
投影会保留直接用户消息与 steering(中途引导)、已完成的 assistant 文本,以及携带由 `dsh-compact` 导出的规范来源标记的检查点用户消息。该标记属于压缩功能契约的一部分,而非某个后端包名称。当源提示词已包含合并写入的前缀上下文时,投影只读取其模型不可见的显示内容,因此后续引用该目标不会递归传播先前的快照。投影会排除压缩前已被遮蔽的节点、工具及其结果、推理(reasoning)、注入的上下文、其他插件用户消息、仅用于日志的记录,以及尚未完成的 assistant 分片。因此,重复压缩只会暴露当前表层仍保留的最新折叠检查点谱系及其尾部消息;系统不提供 raw/current 开关,也不恢复被遮蔽的内容。
|
||||
|
||||
系统把一个聚合上下文序列化为 JSON,并置于固定的不可信背景警告之后。该警告要求模型不要遵循被引用会话中的指令、权限声明或工具请求,除非当前用户再次提出这些内容。标签安全序列化会把数据中的每个 `<` 无损转义为 JSON `\u003c`;因此源字符串无法拼出外围类似 XML 的标签,也无法逃逸数据区域。同一个序列化器会独立核算每个源的字节数。AgentLoop 会把快照持久化为一条带来源信息的 `user/message`,紧接在直接 `user/message` 或 `steering/message` 之前。因此,目标回放无需新增事件类型、放置模式或提示词封套,也能满足「模型可见/日志可重建」不变量。
|
||||
系统把一个聚合上下文序列化为 JSON,并置于固定的不可信背景警告之后。该警告要求模型不要遵循被引用会话中的指令、权限声明或工具请求,除非当前用户再次提出这些内容。标签安全序列化会把数据中的每个 `<` 无损转义为 JSON `\u003c`;因此源字符串无法拼出外围类似 XML 的标签,也无法逃逸数据区域。同一个序列化器会独立核算每个源的字节数。AgentLoop 会把快照持久化为一条带来源信息的 `user/message`,紧接在直接 `user/message` 之前。因此,目标回放无需新增事件类型、放置模式或提示词封套,也能满足「模型可见/日志可重建」不变量。
|
||||
|
||||
## 消息所有权
|
||||
|
||||
|
||||
@@ -12,7 +12,7 @@ The Web sidebar exposes session titles and Workspace membership but cannot retri
|
||||
|
||||
The shared Web/headless composition mounts [`@deepseek-ai/dsh-session-query-sqlite`](../../../../packages/session-query/session-query-sqlite/README.md) with `openAt: first-search` and an in-memory database. The service is ACTIVE at boot, while its `node:sqlite` module and connection-private handle open only on the first content query. This keeps Node 22 startup output free of SQLite's experimental warning before search is used without promising to suppress the warning when search first imports the module. Each service instance owns its index, preserving the SQLite backend's single-owner contract across parallel CLI or Web invocations without leaving process-scoped derived files behind. The database starts empty and lazily reconciles live and persisted sessions on that first query. It remains a disposable derived index, separate from canonical JSONL persistence.
|
||||
|
||||
The host gateway exposes `session.search` through the existing typed RPC stack. It derives the authorization set from the same visible summaries as `session.list`, asks `ctx.sessionQuery.searchSessions` for globally ranked current-surface `user/message`, `assistant/message`, and `steering/message` matches, and consumes provider pages until it has 20 authorized sessions plus one lookahead or exhausts the stream. The first provider page requests 20 hits; a first-page `SESSION_QUERY_INVALID_LIMIT` halves that size through 10, 5, 2, and 1, retaining the learned size across continuations and stale-generation restarts. Every hit's session id, best-match session id, surface, and event type are revalidated before its snippet leaves the Host. Emitted snippets contain at most 240 Unicode code points; the Host and wire schema share the protocol bounds and code-point-safe truncation helper, while the wire schema independently enforces the snippet bound at client parse. Keeping the potentially large authorization set out of SQLite bindings avoids the portable variable ceiling while preserving global ranking. The response remains one bounded page; `hasMore` tells the UI to ask for a narrower query rather than exposing pagination. A stale continuation discards the current attempt's partial results, deduplication entries, and cursors, then restarts from the first page against the original visibility snapshot. Limit probes and stale retries share the limit of 100 provider calls (and therefore at most 2,000 inspected hits); a page larger than its requested limit, a repeated continuation cursor, or a still-unexhausted stream at that call budget fails closed as an `internal` business error. The carrier signal cancels superseded work, including persistence listing, bounded batches of cold-session metadata stats, and each provider call, and wins over a concurrent limit or stale rejection. A missing query service or an unrecovered indexing/query failure remains a business error and does not mutate the canonical session store.
|
||||
The host gateway exposes `session.search` through the existing typed RPC stack. It derives the authorization set from the same visible summaries as `session.list`, asks `ctx.sessionQuery.searchSessions` for globally ranked current-surface `user/message` and `assistant/message` matches, and consumes provider pages until it has 20 authorized sessions plus one lookahead or exhausts the stream. The first provider page requests 20 hits; a first-page `SESSION_QUERY_INVALID_LIMIT` halves that size through 10, 5, 2, and 1, retaining the learned size across continuations and stale-generation restarts. Every hit's session id, best-match session id, surface, and event type are revalidated before its snippet leaves the Host. Emitted snippets contain at most 240 Unicode code points; the Host and wire schema share the protocol bounds and code-point-safe truncation helper, while the wire schema independently enforces the snippet bound at client parse. Keeping the potentially large authorization set out of SQLite bindings avoids the portable variable ceiling while preserving global ranking. The response remains one bounded page; `hasMore` tells the UI to ask for a narrower query rather than exposing pagination. A stale continuation discards the current attempt's partial results, deduplication entries, and cursors, then restarts from the first page against the original visibility snapshot. Limit probes and stale retries share the limit of 100 provider calls (and therefore at most 2,000 inspected hits); a page larger than its requested limit, a repeated continuation cursor, or a still-unexhausted stream at that call budget fails closed as an `internal` business error. The carrier signal cancels superseded work, including persistence listing, bounded batches of cold-session metadata stats, and each provider call, and wins over a concurrent limit or stale rejection. A missing query service or an unrecovered indexing/query failure remains a business error and does not mutate the canonical session store.
|
||||
|
||||
[`WorkspaceBrowser`](../../../../packages/client/ui-workspace/README.md) keeps metadata and content search deliberately separate. Its default copy is English, and its input plus defensive request path remove NUL and cap queries at the request schema's 500 UTF-16 code units without splitting a surrogate pair. A non-blank query immediately computes case-insensitive title and Workspace substring matches from the Session list, starts a 250 ms debounced content request, aborts the preceding request when the query changes, and ignores stale completions. It merges local matches first in recency order with backend-ranked content-only matches, deduplicates by session id, and renders a flat list regardless of the normal grouping mode. Each row shows the title, Workspace, and an available one-line snippet. Selecting a row opens the Session only and preserves the query; it does not navigate to an exact event.
|
||||
|
||||
|
||||
@@ -12,7 +12,7 @@ Web 侧边栏会展示会话标题及其 Workspace 归属,但无法根据只
|
||||
|
||||
Web 与 headless 共用的组合会使用 `openAt: first-search` 和内存数据库挂载 [`@deepseek-ai/dsh-session-query-sqlite`](../../../../packages/session-query/session-query-sqlite/README.md)。服务启动时处于 ACTIVE 状态,而其 `node:sqlite` 模块与连接私有句柄分别要到首次内容查询才会导入和打开。这让 Node 22 的启动输出在使用搜索前不会出现 SQLite 实验性警告,但并不承诺在首次搜索导入该模块时抑制警告。每个服务实例都独占自己的索引,因此并行 CLI 或 Web 调用可维持 SQLite 后端的单一所有者契约,又不会留下进程级派生文件。数据库从空状态启动,并在该首次查询时惰性对齐实时会话与持久化会话。它仍是与规范 JSONL 持久化相互独立的可丢弃派生索引。
|
||||
|
||||
宿主网关通过现有的类型化 RPC 栈公开 `session.search`。它根据 `session.list` 使用的同一组可见摘要推导授权集合,向 `ctx.sessionQuery.searchSessions` 请求全局排序后的当前 surface `user/message`、`assistant/message` 和 `steering/message` 匹配项,并持续消费提供方分页,直到获得 20 个已授权会话及一个前瞻项,或结果流耗尽。首个提供方页面请求 20 个命中;如果第一页返回 `SESSION_QUERY_INVALID_LIMIT`,页面大小会依次折半为 10、5、2、1,并在续传和陈旧世代重启中沿用探测所得的大小。每个命中的会话 id、最佳匹配会话 id、surface 和事件类型都会经过重新校验,其 snippet 才能离开宿主。发出的 snippet 最多包含 240 个 Unicode 码点;宿主与传输 schema 共用协议边界及码点安全的截断辅助函数,而传输 schema 会在客户端解析时独立强制执行 snippet 上限。将可能很大的授权集合排除在 SQLite 绑定之外,可避开可移植变量上限,同时保持全局排序。响应仍只有一个有界页面;`hasMore` 会指示 UI 提示用户缩小查询范围,而不是公开分页能力。陈旧的续传会丢弃当前尝试的部分结果、去重条目和游标,然后依据原始可见性快照从第一页重新开始。上限探测与陈旧重试共用 100 次提供方调用的限制(因此最多检查 2,000 个命中);如果某页命中数超过其请求的上限、续传游标重复,或用尽该调用预算后结果流仍未耗尽,都会直接返回 `internal` 业务错误,不返回部分结果。载体信号会取消已被取代的工作,包括持久化列表枚举、分批受限执行的冷会话元数据 stat,以及每一次提供方调用;即使同时收到上限拒绝或陈旧拒绝,也以取消为准。查询服务缺失或索引/查询故障无法恢复时,仍作为业务错误处理,不会修改规范会话存储。
|
||||
宿主网关通过现有的类型化 RPC 栈公开 `session.search`。它根据 `session.list` 使用的同一组可见摘要推导授权集合,向 `ctx.sessionQuery.searchSessions` 请求全局排序后的当前 surface `user/message` 和 `assistant/message` 匹配项,并持续消费提供方分页,直到获得 20 个已授权会话及一个前瞻项,或结果流耗尽。首个提供方页面请求 20 个命中;如果第一页返回 `SESSION_QUERY_INVALID_LIMIT`,页面大小会依次折半为 10、5、2、1,并在续传和陈旧世代重启中沿用探测所得的大小。每个命中的会话 id、最佳匹配会话 id、surface 和事件类型都会经过重新校验,其 snippet 才能离开宿主。发出的 snippet 最多包含 240 个 Unicode 码点;宿主与传输 schema 共用协议边界及码点安全的截断辅助函数,而传输 schema 会在客户端解析时独立强制执行 snippet 上限。将可能很大的授权集合排除在 SQLite 绑定之外,可避开可移植变量上限,同时保持全局排序。响应仍只有一个有界页面;`hasMore` 会指示 UI 提示用户缩小查询范围,而不是公开分页能力。陈旧的续传会丢弃当前尝试的部分结果、去重条目和游标,然后依据原始可见性快照从第一页重新开始。上限探测与陈旧重试共用 100 次提供方调用的限制(因此最多检查 2,000 个命中);如果某页命中数超过其请求的上限、续传游标重复,或用尽该调用预算后结果流仍未耗尽,都会直接返回 `internal` 业务错误,不返回部分结果。载体信号会取消已被取代的工作,包括持久化列表枚举、分批受限执行的冷会话元数据 stat,以及每一次提供方调用;即使同时收到上限拒绝或陈旧拒绝,也以取消为准。查询服务缺失或索引/查询故障无法恢复时,仍作为业务错误处理,不会修改规范会话存储。
|
||||
|
||||
[`WorkspaceBrowser`](../../../../packages/client/ui-workspace/README.md) 有意将元数据搜索与内容搜索保持独立。其默认界面文案为英文;输入框及防御性请求路径会移除 NUL,将查询限制在请求 schema 规定的 500 个 UTF-16 code unit 内且不会拆分 surrogate pair。非空白查询会立即从会话列表中计算不区分大小写的标题和 Workspace 子串匹配,在 250 ms 防抖后发起内容请求,在查询变化时中止前一请求,并忽略陈旧的完成结果。它先按新近程度排列本地匹配,再合并由后端排序且仅匹配内容的结果,按会话 id 去重;无论常规分组模式如何,最终都渲染为扁平列表。每一行显示标题、Workspace,并在存在时显示一行摘要片段。选择某一行只会打开对应会话,并保留查询条件;不会跳转至确切事件。
|
||||
|
||||
|
||||
@@ -6,7 +6,7 @@ English | [中文](2026-07-30-web-queue-steer-action.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
The Web composer originally queued every Enter submission while an agent ran. QueueDock already gives each pending message an addressable row, and the durable transcript already renders consumed `steering/message` events as user-style bubbles, but Web had neither an action connecting those two surfaces nor a direct composer gesture for choosing current-turn steering.
|
||||
The Web composer originally queued every Enter submission while an agent ran. QueueDock already gives each pending message an addressable row, and the durable transcript already renders consumed steer events as user-style bubbles, but Web had neither an action connecting those two surfaces nor a direct composer gesture for choosing current-turn steering.
|
||||
|
||||
Implementing the row action as a client-side delete followed by `session.prompt(mode: 'steer')` would split one user intent across two RPCs. Driver claim could win between them, the steer could fail after deletion, or the existing best-effort `agent.steer()` fallback could silently append a new Queue item after the original occurrence was removed. A send-now action must therefore distinguish current-turn steering from Queue promotion and preserve the original row when steering is no longer possible.
|
||||
|
||||
@@ -16,7 +16,7 @@ Implementing the row action as a client-side delete followed by `session.prompt(
|
||||
|
||||
Each non-editing ordinary-session QueueDock row exposes the upward-arrow action as “插话发送”. The action is enabled only while the session reports a running agent; mixed-content messages remain eligible because steering forwards the complete immutable `UserMessage` rather than the row's text projection. An addressed subagent keeps its Queue projection read-only because its continuation transport does not expose queue mutation.
|
||||
|
||||
Activating the action requests strict current-turn steering for that exact `InboxItemId`. Success removes the Queue row through the authoritative Host snapshot and immediately projects the same pending steering after the `Deep diving...` running-status row; that bubble offers Copy but no Fork because the message has no durable event sequence yet. Once AgentLoop drains it, the existing durable `steering/message` event takes over the same user-style bubble and restores its clock, Copy, and Fork without a separate durable presentation path.
|
||||
Activating the action requests strict current-turn steering for that exact `InboxItemId`. Success removes the Queue row through the authoritative Host snapshot and immediately projects the same pending steering after the `Deep diving...` running-status row; that bubble offers Copy but no Fork because the message has no durable event sequence yet. Once AgentLoop drains it, the existing durable `user/message` event takes over the same user-style bubble and restores its clock, Copy, and Fork without a separate durable presentation path.
|
||||
|
||||
The running bit is only an interaction hint. AgentLoop's `acceptsNextStep` value is authoritative at the synchronous mutation boundary. If that window has closed, the operation leaves the Queue occurrence unchanged and returns a typed `steer-unavailable` error, after which the original waking occurrence proceeds through Queue. If the driver already claimed the occurrence, it returns the existing `queue-item-not-found` error and independent-turn delivery is already underway. The UI treats both races as converged Queue delivery without a failure notice; transport and unknown errors still surface.
|
||||
|
||||
@@ -36,13 +36,13 @@ The action does not run `agent/prompt-submit`: choosing steering intentionally c
|
||||
|
||||
The Host's existing `queuedMirror` remains the sole transient inbox authority. Its `session/queue` snapshot carries every live occurrence with `placement: 'queued' | 'steering'`: QueueDock renders only queued rows, while ChatView renders pending steering at the conversation tail after the `Deep diving...` running-status row, with Copy but without Fork, edit, or delete actions. Reconnect replays the same snapshot, so this visibility does not require client optimism or a second registry.
|
||||
|
||||
When AgentLoop claims pending steering, it emits `agent/inbox/dequeue` immediately before synchronously appending `steering/message`. The Host retires that steering row on the following microtask, allowing the durable session event to enter the linear mux stream first. On the accepted live event, the client Session retires the first matching current steering occurrence before publishing its snapshot; history replay does not consume a later occurrence that reused the same `MessageId`. ChatView therefore renders one authority at a time without scanning durable history, and the durable projection restores the clock, Copy, and Fork against its logged event time and sequence. An append failure still retires the claimed row.
|
||||
When AgentLoop claims pending steering, it emits `agent/inbox/dequeue` immediately before synchronously appending the durable `user/message`. The Host retires that steering row on the following microtask, allowing the durable session event to enter the linear mux stream first. On the accepted live event, the client Session retires the first matching current steering occurrence before publishing its snapshot; history replay does not consume a later occurrence that reused the same `MessageId`. ChatView therefore renders one authority at a time without scanning durable history, and the durable projection restores the clock, Copy, and Fork against its logged event time and sequence. An append failure still retires the claimed row.
|
||||
|
||||
The existing `session.prompt(mode: 'steer')` contract remains best-effort for new primary-session input: outside the next-step window it becomes a waking follow-up. The composer carries an explicit `queue | steer` mode through slash adjudication and reference serialization before calling that contract. A browser-local submission policy owns the persisted busy-Enter preference and resolves plain versus accelerated Enter as complementary gestures only for steer-capable sessions; the Settings row and InputBar share that policy without duplicating storage or delivery-window authority. Only the Queue row action is strict, because either negative result converges through the original Queue occurrence.
|
||||
|
||||
### Verification
|
||||
|
||||
AgentLoop contract coverage holds prompt admission open, converts one exact queued occurrence, and proves the replacement steering occurrence keeps the message value and delivery receipt, drains as `steering/message`, and never starts its former independent turn. It also pins unavailable-window retention, claimed-address rejection, and re-entrant cancellation lifecycle conservation.
|
||||
AgentLoop contract coverage holds prompt admission open, converts one exact queued occurrence, and proves the replacement steering occurrence keeps the message value and delivery receipt, drains as a `user/message`, and never starts its former independent turn. It also pins unavailable-window retention, claimed-address rejection, and re-entrant cancellation lifecycle conservation.
|
||||
|
||||
Host schema and proxy tests cover the new action, both typed errors, placement-aware snapshots and reconnect replay, plus durable-before-retirement ordering. Client tests cover silent convergence of both semantic races, genuine error reporting, read-only subagent rows and Queue-only subagent gestures. Runtime and ChatView tests cover occurrence-aware pending-to-durable handoff, including repeated `MessageId` values, while Web ARIA snapshots cover pending steering after the running-status row with Copy alone and the durable node with clock, Copy, and Fork.
|
||||
|
||||
@@ -66,6 +66,6 @@ The keyless Web steering scenario queues a message through the real composer whi
|
||||
|
||||
## Consequences
|
||||
|
||||
`session/queue` describes a placement-aware transient inbox snapshot rather than a Queue-only list, so every consumer must filter by placement. Pending steering survives reconnect and appears immediately, but remains non-durable until `steering/message` commits. The running bit can also remain true briefly after the strict next-step window closes, so an enabled action may internally return `steer-unavailable` while the product continues through Queue without reporting failure.
|
||||
`session/queue` describes a placement-aware transient inbox snapshot rather than a Queue-only list, so every consumer must filter by placement. Pending steering survives reconnect and appears immediately, but remains non-durable until the durable `user/message` commits. The running bit can also remain true briefly after the strict next-step window closes, so an enabled action may internally return `steer-unavailable` while the product continues through Queue without reporting failure.
|
||||
|
||||
The explicit action changes delivery from an independently admitted turn to current-turn steering, so prompt-admission plugins do not process the converted message. Enqueue-before-discard lifecycle publication remains required for re-entrant cancellation safety; focused regression coverage protects that ordering.
|
||||
|
||||
@@ -6,7 +6,7 @@ Status: implemented
|
||||
|
||||
## 问题
|
||||
|
||||
Web composer 原本会在 agent 运行期间把所有 Enter 提交作为 Queue 入队。QueueDock 已经为每条待处理消息提供可寻址的行,持久 transcript(文本记录)也已能把消费后的 `steering/message` 事件渲染为用户样式气泡,但 Web 既没有连接这两个界面的操作,也没有让用户从 composer 直接选择当前轮次 steering 的手势。
|
||||
Web composer 原本会在 agent 运行期间把所有 Enter 提交作为 Queue 入队。QueueDock 已经为每条待处理消息提供可寻址的行,持久 transcript(文本记录)也已能把消费后的 steer 事件渲染为用户样式气泡,但 Web 既没有连接这两个界面的操作,也没有让用户从 composer 直接选择当前轮次 steering 的手势。
|
||||
|
||||
如果 Web 先在客户端删除该行,再调用 `session.prompt(mode: 'steer')`,就会把用户的一次意图拆分到两个 RPC 中。驱动器可能在两次调用之间先认领该项,steering 投递也可能在删除后失败;现有尽力而为的 `agent.steer()` 回退还可能在原单次入队项被移除后,静默追加一个新的 Queue 项。因此,立即发送操作必须区分当前轮次 steering 与 Queue 前移,并在 steering 已不可用时保留原行。
|
||||
|
||||
@@ -16,7 +16,7 @@ Web composer 原本会在 agent 运行期间把所有 Enter 提交作为 Queue
|
||||
|
||||
普通会话中每个非编辑态的 QueueDock 行都会提供名为“插话发送”的向上箭头操作。仅当会话报告 agent 正在运行时,该操作才会启用;包含混合内容的消息仍可使用,因为 steering 会转发完整且不可变的 `UserMessage`,而非该行的文本投影。已寻址 subagent 的 Queue 投影保持只读,因为其继续执行传输不提供 Queue 变更。
|
||||
|
||||
触发该操作会针对对应的 `InboxItemId` 请求严格的当前轮次 steering。操作成功后,权威 Host 快照会移除 Queue 行,并在 `Deep diving...` 运行状态行之后立即投影同一条待处理 steering;该气泡提供复制,但消息尚无持久事件序号,因此不提供 fork。AgentLoop 排空该项后,现有持久 `steering/message` 事件会接管同一个用户样式气泡,并恢复时钟、复制和 fork,无需另建持久展示路径。
|
||||
触发该操作会针对对应的 `InboxItemId` 请求严格的当前轮次 steering。操作成功后,权威 Host 快照会移除 Queue 行,并在 `Deep diving...` 运行状态行之后立即投影同一条待处理 steering;该气泡提供复制,但消息尚无持久事件序号,因此不提供 fork。AgentLoop 排空该项后,现有持久 `user/message` 事件会接管同一个用户样式气泡,并恢复时钟、复制和 fork,无需另建持久展示路径。
|
||||
|
||||
running 标志位只用于提示交互状态。在同步变更边界上,AgentLoop 的 `acceptsNextStep` 值才是权威依据。如果该窗口已经关闭,操作会保持 Queue 单次入队项不变并返回类型化的 `steer-unavailable` 错误,随后原唤醒单次入队项会经 Queue 继续执行。如果驱动器已经认领该项,则返回现有的 `queue-item-not-found` 错误,且独立轮次投递已经开始。UI 会把两种竞态都视为已收敛的 Queue 投递,不显示失败通知;传输和未知错误仍会显示。
|
||||
|
||||
@@ -36,13 +36,13 @@ Composer 对新输入采用另一套尽力而为契约。所寻址会话空闲
|
||||
|
||||
Host 仍以现有 `queuedMirror` 作为唯一的瞬态 inbox 权威。`session/queue` 快照会携带所有存活单次入队项及其 `placement: 'queued' | 'steering'`:QueueDock 只渲染 queued 行,ChatView 则在会话流末尾、`Deep diving...` 运行状态行之后渲染待处理 steering,提供复制操作,但不提供 fork、编辑或删除操作。重连会重放同一份快照,因此这项可见性既不依赖客户端乐观展示,也不需要第二个 registry。
|
||||
|
||||
AgentLoop 认领待处理 steering 时,会在同步追加 `steering/message` 之前立即发出 `agent/inbox/dequeue`。Host 会等到下一个微任务才退役该 steering 行,让持久 session 事件先进入线性 mux 流。客户端 Session 接纳该实时事件时,会在发布快照前退役第一个匹配的当前 steering 单次入队项;历史回放不会消费后来复用同一 `MessageId` 的单次入队项。因此,ChatView 无需扫描持久历史就能每次只渲染一份权威,持久投影则会根据已记录的事件时间与序号恢复时钟、复制与 fork 操作。追加失败时,已认领行仍会退役。
|
||||
AgentLoop 认领待处理 steering 时,会在同步追加持久 `user/message` 之前立即发出 `agent/inbox/dequeue`。Host 会等到下一个微任务才退役该 steering 行,让持久 session 事件先进入线性 mux 流。客户端 Session 接纳该实时事件时,会在发布快照前退役第一个匹配的当前 steering 单次入队项;历史回放不会消费后来复用同一 `MessageId` 的单次入队项。因此,ChatView 无需扫描持久历史就能每次只渲染一份权威,持久投影则会根据已记录的事件时间与序号恢复时钟、复制与 fork 操作。追加失败时,已认领行仍会退役。
|
||||
|
||||
现有 `session.prompt(mode: 'steer')` 对主会话新输入仍采用尽力而为的契约:在 next-step 窗口之外,它会变为唤醒 agent 的后续轮次。Composer 会让显式 `queue | steer` 模式经过 slash 裁决与引用序列化,再调用该契约。浏览器本地的提交策略拥有持久化的繁忙态 Enter 偏好,并且只为支持 steering 的会话把普通 Enter 与加速 Enter 解析为互补手势;Settings 行和 InputBar 共享该策略,不重复实现存储或投递窗口权威。只有 Queue 行操作采用严格语义,因为任一种负面结果都会经原 Queue 单次入队项收敛。
|
||||
|
||||
### 验证
|
||||
|
||||
AgentLoop 契约覆盖保持提示词接纳窗口打开,转换一个精确的 queued 单次入队项,并证明替代它的 steering 单次入队项保留消息值和投递回执、以 `steering/message` 的形式排空,且绝不启动原本的独立轮次。该覆盖还钉住窗口不可用时保留原项、拒绝已被认领的地址,以及可重入取消下的生命周期守恒。
|
||||
AgentLoop 契约覆盖保持提示词接纳窗口打开,转换一个精确的 queued 单次入队项,并证明替代它的 steering 单次入队项保留消息值和投递回执、以 `user/message` 的形式排空,且绝不启动原本的独立轮次。该覆盖还钉住窗口不可用时保留原项、拒绝已被认领的地址,以及可重入取消下的生命周期守恒。
|
||||
|
||||
Host schema 和代理测试覆盖新操作、两种类型化错误、带 placement 的快照与重连重放,以及先持久化再退役的顺序。客户端测试覆盖两种语义竞态的静默收敛、真实错误报告、只读 subagent 行和仅支持 Queue 的 subagent 手势。运行时与 ChatView 测试覆盖按单次入队项完成的待处理到持久交接,包括重复的 `MessageId` 值;Web ARIA 快照则覆盖位于运行状态行之后且仅有复制的待处理 steering,以及带时钟、复制和 fork 的持久节点。
|
||||
|
||||
@@ -66,6 +66,6 @@ Host schema 和代理测试覆盖新操作、两种类型化错误、带 placeme
|
||||
|
||||
## 后果
|
||||
|
||||
`session/queue` 表示带 placement 的瞬态 inbox 快照,而不只是 Queue 列表,因此每个消费方都必须按 placement 过滤。待处理 steering 会在界面中立即出现并能在重连后恢复,但在 `steering/message` 提交前仍不持久。严格 next-step 窗口关闭后,running 标志位仍可能短暂保持为 true,因此已启用的操作可能会在内部返回 `steer-unavailable`,而产品仍经 Queue 继续执行且不显示失败。
|
||||
`session/queue` 表示带 placement 的瞬态 inbox 快照,而不只是 Queue 列表,因此每个消费方都必须按 placement 过滤。待处理 steering 会在界面中立即出现并能在重连后恢复,但在持久 `user/message` 提交前仍不持久。严格 next-step 窗口关闭后,running 标志位仍可能短暂保持为 true,因此已启用的操作可能会在内部返回 `steer-unavailable`,而产品仍经 Queue 继续执行且不显示失败。
|
||||
|
||||
这项显式操作会把投递方式从经独立接纳的轮次改为当前轮次 steering,因此提示词接纳插件不会处理转换后的消息。为保证可重入取消安全,生命周期事件仍必须先发布 enqueue 再发布 discard;有针对性的回归覆盖会保护这一顺序。
|
||||
|
||||
@@ -15,7 +15,7 @@ Two problems:
|
||||
|
||||
## Decision
|
||||
|
||||
Injected session content projects verbatim; the caller owns any framing. `deriveEventMessage` renders `user/message`, `context/message`, and `steering/message` through one shared case returning `{ role: 'user', content: event.data.content }`; their content blocks reach the model unchanged. `context/message`'s `source`/`meta` and `steering/message`'s `turn` stay in the durable event log but do not render.
|
||||
Injected session content projects verbatim; the caller owns any framing. `deriveEventMessage` renders `user/message` content blocks to the model unchanged; `source` stays in the durable event log but does not render.
|
||||
|
||||
The `ContextEnvelope` type and every `envelope` field are removed — `context/message` in `SessionEventMap`, `InjectOptions`, `HookContext`, and the `inject()`/`additionalContexts` plumbing in `dsh-agent-loop`. `workspace-context` no longer requests `'raw'`; its self-framed content renders as before. The `renderTagged`/`renderContextEnvelope` helpers are deleted. `context/message.meta` still carries durable, model-hidden JSON state.
|
||||
|
||||
|
||||
@@ -15,7 +15,7 @@ Status: implemented
|
||||
|
||||
## 决策
|
||||
|
||||
注入的会话内容逐字投影,框架由调用方自行负责。`deriveEventMessage` 通过一个共享分支渲染 `user/message`、`context/message` 和 `steering/message`,都返回 `{ role: 'user', content: event.data.content }`;它们的内容块原样到达模型。`context/message` 的 `source`/`meta` 和 `steering/message` 的 `turn` 保留在持久事件日志中,但不渲染。
|
||||
注入的会话内容逐字投影,框架由调用方自行负责。`deriveEventMessage` 把 `user/message` 的内容块原样送达模型;`source` 保留在持久事件日志中,但不渲染。
|
||||
|
||||
`ContextEnvelope` 类型和所有 `envelope` 字段都被移除——包括 `SessionEventMap` 中的 `context/message`、`InjectOptions`、`HookContext`,以及 `dsh-agent-loop` 中 `inject()`/`additionalContexts` 的相关管线。`workspace-context` 不再请求 `'raw'`;它自带框架的内容渲染方式不变。`renderTagged`/`renderContextEnvelope` 辅助函数被删除。`context/message.meta` 仍携带持久的、对模型隐藏的 JSON 状态。
|
||||
|
||||
|
||||
@@ -6,7 +6,7 @@ English | [中文](2026-07-31-web-ui-no-steer-entry-or-interjection-chrome.zh.md
|
||||
|
||||
## Problem
|
||||
|
||||
Mid-turn steering is a host/agent-loop capability (`mode:'steer'`, durable `steering/message`). The Web product already locked the composer while a turn runs and never shipped a queue/steer menu, yet the client still threaded `'queue' | 'steer'` through the input machine, `conversation.send`, and locale keys, and rendered consumed steering as a badged 「插话」/「Interjection」 bubble. That left a half-built UI surface: an unused submit mode, a product label for a gesture users cannot perform, and e2e goldens that pinned chrome the product does not own.
|
||||
Mid-turn steering is a host/agent-loop capability (`mode:'steer'`, a durable `user/message`). The Web product already locked the composer while a turn runs and never shipped a queue/steer menu, yet the client still threaded `'queue' | 'steer'` through the input machine, `conversation.send`, and locale keys, and rendered consumed steering as a badged 「插话」/「Interjection」 bubble. That left a half-built UI surface: an unused submit mode, a product label for a gesture users cannot perform, and e2e goldens that pinned chrome the product does not own.
|
||||
|
||||
## Decision
|
||||
|
||||
@@ -14,7 +14,7 @@ Keep host and runtime steering intact. Remove only the Web UI entry and chrome:
|
||||
|
||||
- `InputMachine` / `SessionInput` / `InputActions.submit` / hub `defaultSink` are queue-only; they always call `session.prompt(..., 'queue')`.
|
||||
- `ConversationService.send(text)` drops its mode argument and always queues.
|
||||
- `MessageItem`'s `steering` arm still folds durable `steering/message` content into a plain right-aligned bubble (no badge, no user IconActions) so external/host steers stay visible on replay.
|
||||
- Durable steer content renders as a plain right-aligned bubble (no badge, no user IconActions) so external/host steers stay visible on replay.
|
||||
- Delete `message.steering` locale strings and the unused badge CSS.
|
||||
- The web steering e2e still POSTs `mode:'steer'` over `/api/session.prompt` and asserts durable + model-visible obedience; it no longer expects interjection chrome. Update [web input machine note](../architecture/2026-07-25-web-input-machine-and-slash-pipeline.md) fact lines to match.
|
||||
|
||||
|
||||
@@ -6,7 +6,7 @@ Status: implemented
|
||||
|
||||
## 问题
|
||||
|
||||
中途 steering 是 host/agent-loop 能力(`mode:'steer'`、持久 `steering/message`)。Web 产品已在 turn 运行中锁定 composer,且从未交付排队/steer 菜单,但客户端仍把 `'queue' | 'steer'` 穿进 input machine、`conversation.send` 与 locale 键,并把已消费的 steering 渲染成带「插话」/「Interjection」徽章的气泡。这留下半成品 UI:用不到的提交 mode、用户做不到的手势却有产品文案,以及把产品并不拥有的 chrome 钉死在 e2e golden 上。
|
||||
中途 steering 是 host/agent-loop 能力(`mode:'steer'`、持久 `user/message`)。Web 产品已在 turn 运行中锁定 composer,且从未交付排队/steer 菜单,但客户端仍把 `'queue' | 'steer'` 穿进 input machine、`conversation.send` 与 locale 键,并把已消费的 steering 渲染成带「插话」/「Interjection」徽章的气泡。这留下半成品 UI:用不到的提交 mode、用户做不到的手势却有产品文案,以及把产品并不拥有的 chrome 钉死在 e2e golden 上。
|
||||
|
||||
## 决策
|
||||
|
||||
@@ -14,7 +14,7 @@ Status: implemented
|
||||
|
||||
- `InputMachine`/`SessionInput`/`InputActions.submit`/hub `defaultSink` 仅 queue;始终调用 `session.prompt(..., 'queue')`。
|
||||
- `ConversationService.send(text)` 去掉 mode 参数,始终排队。
|
||||
- `MessageItem` 的 `steering` 分支仍把持久 `steering/message` 内容折成右对齐普通气泡(无徽章、无用户 IconActions),以便外部/host steer 在回放时仍可见。
|
||||
- 持久 steer 内容渲染为右对齐普通气泡(无徽章、无用户 IconActions),以便外部/host steer 在回放时仍可见。
|
||||
- 删除 `message.steering` locale 字符串与未使用的徽章 CSS。
|
||||
- web steering e2e 仍通过 `/api/session.prompt` POST `mode:'steer'`,并断言持久化与模型可见服从;不再期望插话 chrome。同步更新 [web input machine note](../architecture/2026-07-25-web-input-machine-and-slash-pipeline.md) 中的事实行。
|
||||
|
||||
|
||||
Reference in New Issue
Block a user