Merge remote-tracking branch 'origin/master' into xtr/react-loop-simplification
# Conflicts: # .agents/notes/implemented/architecture/2026-06-21-bounded-llm-request-recovery.i18n.yaml # .agents/notes/implemented/feature/2026-06-18-compaction-capability-seam.i18n.yaml # .agents/notes/implemented/feature/2026-06-18-compaction-capability-seam.md # .agents/notes/implemented/feature/2026-06-18-compaction-capability-seam.zh.md # .agents/notes/implemented/feature/2026-07-06-sandbox.i18n.yaml # .agents/notes/implemented/feature/2026-07-06-sandbox.md # .agents/notes/implemented/feature/2026-07-06-sandbox.zh.md # .agents/notes/implemented/feature/2026-07-27-tmux-location-context.i18n.yaml # .agents/notes/implemented/simplification/2026-06-20-public-agent-stop-surface.i18n.yaml # .agents/notes/implemented/simplification/2026-07-28-remove-synthetic-log-only-turns.i18n.yaml # .agents/notes/implemented/simplification/2026-07-30-private-agent-send.i18n.yaml # docs/architecture.i18n.yaml # docs/architecture.md # docs/architecture.zh.md # docs/config-catalog.md # docs/cordis-catalog/events.md # docs/cordis-catalog/services.md # docs/core-data-structures/compaction.i18n.yaml # docs/core-data-structures/core.i18n.yaml # docs/core-data-structures/core.md # docs/core-data-structures/core.zh.md # docs/core-data-structures/llm-streaming.i18n.yaml # docs/core-data-structures/llm-streaming.md # docs/core-data-structures/llm-streaming.zh.md # docs/core-data-structures/session.i18n.yaml # docs/event-producer-consumer.md # docs/module-graph.md # docs/persistence-catalog.md # examples/acp-agent/tests/goal-snapshots/goal-session/session.expected.jsonl # examples/acp-agent/tests/snapshots/advanced-toolchain/session.1.jsonl # examples/acp-agent/tests/snapshots/advanced-toolchain/session.2.jsonl # examples/acp-agent/tests/snapshots/advanced-toolchain/session.jsonl # examples/acp-agent/tests/snapshots/bash-spill/session.jsonl # examples/acp-agent/tests/snapshots/bash-tool-turn/session.jsonl # examples/acp-agent/tests/snapshots/both-mode-turn/session.jsonl # examples/acp-agent/tests/snapshots/cancel-tool-calls/session.jsonl # examples/acp-agent/tests/snapshots/cancel/session.jsonl # examples/acp-agent/tests/snapshots/code-mode-turn/session.jsonl # examples/acp-agent/tests/snapshots/code-mode-workspace-context/session.jsonl # examples/acp-agent/tests/snapshots/cordis-inspect-jsdoc/session.jsonl # examples/acp-agent/tests/snapshots/empty-response-retry/session.jsonl # examples/acp-agent/tests/snapshots/error-finish/session.jsonl # examples/acp-agent/tests/snapshots/escalation-approved/session.jsonl # examples/acp-agent/tests/snapshots/escalation-rejected/session.jsonl # examples/acp-agent/tests/snapshots/fs-edit/session.jsonl # examples/acp-agent/tests/snapshots/fs-escalation-approved/session.jsonl # examples/acp-agent/tests/snapshots/fs-glob-sampling/session.jsonl # examples/acp-agent/tests/snapshots/fs-policy-reject/session.jsonl # examples/acp-agent/tests/snapshots/fs-read-window/session.jsonl # examples/acp-agent/tests/snapshots/fs-read/session.jsonl # examples/acp-agent/tests/snapshots/fs-write-overwrite/session.jsonl # examples/acp-agent/tests/snapshots/fs-write/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-invalid-matcher/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-posttool-block/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-posttool-context/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-pretool-ask/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-pretool-deny/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-promptsubmit-context/session.jsonl # examples/acp-agent/tests/snapshots/hook-cc-stop-continue/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-invalid-matcher/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-posttool-block/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-posttool-context/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-pretool-block/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-promptsubmit-context/session.jsonl # examples/acp-agent/tests/snapshots/hook-codex-stop-continue/session.jsonl # examples/acp-agent/tests/snapshots/lsp-definition/session.jsonl # examples/acp-agent/tests/snapshots/multi-turn/session.jsonl # examples/acp-agent/tests/snapshots/packed-chunks/session.jsonl # examples/acp-agent/tests/snapshots/parallel-tool-calls/session.jsonl # examples/acp-agent/tests/snapshots/pty-tools/session.jsonl # examples/acp-agent/tests/snapshots/repeat-tool-guard/session.jsonl # examples/acp-agent/tests/snapshots/session-query-spill/session.jsonl # examples/acp-agent/tests/snapshots/session-sandbox-root/session.jsonl # examples/acp-agent/tests/snapshots/session-title-after-turn/session.jsonl # examples/acp-agent/tests/snapshots/skill-load/session.jsonl # examples/acp-agent/tests/snapshots/subagent-depth-two-rejection/session.1.jsonl # examples/acp-agent/tests/snapshots/subagent-depth-two-rejection/session.2.jsonl # examples/acp-agent/tests/snapshots/subagent-depth-two-rejection/session.jsonl # examples/acp-agent/tests/snapshots/subagent-fork/session.1.jsonl # examples/acp-agent/tests/snapshots/subagent-fork/session.jsonl # examples/acp-agent/tests/snapshots/subagent-mixed/session.1.jsonl # examples/acp-agent/tests/snapshots/subagent-mixed/session.2.jsonl # examples/acp-agent/tests/snapshots/subagent-mixed/session.jsonl # examples/acp-agent/tests/snapshots/subagent-multi/session.1.jsonl # examples/acp-agent/tests/snapshots/subagent-multi/session.2.jsonl # examples/acp-agent/tests/snapshots/subagent-multi/session.jsonl # examples/acp-agent/tests/snapshots/subagent-spawn/session.1.jsonl # examples/acp-agent/tests/snapshots/subagent-spawn/session.jsonl # examples/acp-agent/tests/snapshots/text-turn/session.jsonl # examples/acp-agent/tests/snapshots/todo-write/session.jsonl # examples/acp-agent/tests/snapshots/tool-call-turn/session.jsonl # examples/acp-agent/tests/snapshots/web-fetch/session.jsonl # examples/acp-agent/tests/snapshots/workflow-run/session.1.jsonl # examples/acp-agent/tests/snapshots/workflow-run/session.jsonl # examples/acp-agent/tests/snapshots/workspace-context/session.jsonl # examples/acp-agent/tests/snapshots/workspace-edit/session.jsonl # examples/headless-agent/tests/semantic-checkpoint-snapshots/tool-outcome-unknown/session.expected.jsonl # examples/headless-agent/tests/snapshots/advanced-toolchain/session.1.jsonl # examples/headless-agent/tests/snapshots/advanced-toolchain/session.2.jsonl # examples/headless-agent/tests/snapshots/advanced-toolchain/session.jsonl # examples/headless-agent/tests/snapshots/advanced-toolchain/stream-json.expected.jsonl # examples/headless-agent/tests/snapshots/goal-tools/stream-json.expected.jsonl # examples/headless-agent/tests/snapshots/missing-credential/stream-json.expected.jsonl # examples/headless-agent/tests/snapshots/provider-retry/stream-json.expected.jsonl # examples/headless-agent/tests/snapshots/pty-tools/session.jsonl # examples/headless-agent/tests/snapshots/pty-tools/stream-json.expected.jsonl # examples/headless-agent/tests/snapshots/ralph-loop/stream-json.expected.jsonl # examples/headless-agent/tests/subagent-inheritance-snapshots/parent-override/child.expected.jsonl # examples/headless-agent/tests/subagent-inheritance-snapshots/parent-override/parent.expected.jsonl # examples/jsonrpc-agent/tests/snapshots/bash-tool/notifications.expected.jsonl # examples/jsonrpc-agent/tests/snapshots/bash-tool/session.jsonl # examples/jsonrpc-agent/tests/snapshots/persistent-tools/notifications.expected.jsonl # examples/jsonrpc-agent/tests/snapshots/persistent-tools/session.jsonl # examples/jsonrpc-agent/tests/snapshots/subagent-spawn/notifications.expected.jsonl # examples/jsonrpc-agent/tests/snapshots/subagent-spawn/session.1.jsonl # examples/jsonrpc-agent/tests/snapshots/subagent-spawn/session.jsonl # examples/jsonrpc-agent/tests/snapshots/text-turn/notifications.expected.jsonl # examples/jsonrpc-agent/tests/snapshots/text-turn/session.jsonl # packages/client/runtime/README.i18n.yaml # packages/client/runtime/src/client/sessions/request-inspection.ts # packages/compact/compact-basic/README.i18n.yaml # packages/compact/compact-basic/README.md # packages/compact/compact-basic/README.zh.md # packages/compact/compact-basic/src/index.ts # packages/context/time-context/tests/time-context.spec.ts # packages/context/tmux-context/README.i18n.yaml # packages/context/tmux-context/tests/tmux-context.spec.ts # packages/context/workspace-context/tests/workspace-context.spec.ts # packages/cordis/tool-cordis/src/api-catalog.ts # packages/core/agent-loop/README.i18n.yaml # packages/core/agent-loop/README.md # packages/core/agent-loop/README.zh.md # packages/core/agent-loop/src/agent.ts # packages/core/agent/README.i18n.yaml # packages/core/agent/README.md # packages/core/agent/README.zh.md # packages/core/agent/src/types.ts # packages/core/session/README.i18n.yaml # packages/core/session/README.md # packages/core/session/README.zh.md # packages/fs/tool-str-replace-editor/tests/tools.spec.ts # packages/goal/command-goal/tests/command-goal.spec.ts # packages/goal/goal/tests/goal.spec.ts # packages/host/apiproxy/README.i18n.yaml # packages/host/apiproxy/README.md # packages/host/apiproxy/README.zh.md # packages/host/apiproxy/src/api/index.ts # packages/host/apiproxy/tests/api-proxy-workspace.spec.ts # packages/llm/llm/README.i18n.yaml # packages/llm/llm/README.md # packages/llm/llm/README.zh.md # packages/llm/llm/src/index.ts # packages/pty/pty-local/tests/index.spec.ts # packages/pty/pty-local/tests/local.spec.ts # packages/pty/pty/tests/service.spec.ts # packages/pty/tool-bash-persistent/tests/loader-composition.spec.ts # packages/pty/tool-bash-persistent/tests/tools.spec.ts # packages/pty/tool-pty/tests/loader-composition.spec.ts # packages/pty/tool-pty/tests/tools.spec.ts # packages/session-persistence/session-checkpoint-policy/tests/crash-recovery.e2e.ts # packages/skill/tool-skill/tests/tool-skill.spec.ts # packages/tasks/tasks-local/tests/tasks.spec.ts # packages/ui/tui/README.i18n.yaml # packages/ui/tui/tests/tui.spec.ts # packages/ui/user-approval/src/index.ts # packages/ui/user-approval/tests/approval.spec.ts
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@@ -2,5 +2,5 @@
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# side as of the last confirmed-consistent state. Both languages carry equal authority;
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# after editing either side, bring the other along and re-record with:
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# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-29-human-transcript-append-origin.md
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2026-07-29-human-transcript-append-origin.md: a296b93d538d9c28bd61ee8fd0530863b4bfd878
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2026-07-29-human-transcript-append-origin.zh.md: 96e0cd1038fe8904dfd4c1eceaae9b25339c5dca
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2026-07-29-human-transcript-append-origin.md: a47dd49dd831cdd32d520137417bf47d2c056a09
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2026-07-29-human-transcript-append-origin.zh.md: 31639bd9aac5d6dace80392004f37c747bff2c36
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@@ -24,9 +24,9 @@ No persisted event, RPC envelope, compaction transaction, or model-visible surfa
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## Deferred
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The browser client still builds its conversation from the model surface through `FoldAdapter`, so compaction still collapses web history to a single context row. The same predicate is the fix there, together with an append-order transcript projection and a marker component; that work is a separate change against `packages/client/runtime` and `packages/client/ui-conversation`.
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The browser client is fixed separately, in [the web transcript projection note](2026-07-30-web-transcript-log-ordered-projection.md): it projects the same append-origin transcript in log order and renders a marker component, and it closes the pagination hole this change opened — because `session.history` no longer spends quota on the checkpoint, it never cuts on the checkpoint's provenance group, so a page can carry a checkpoint citing a `surfaceOp.start` outside the window, which the browser's surface fold rejected. That hole predates this change (counting could already run past a checkpoint into the range it shadows), but the old rule accidentally covered the case where the checkpoint was the oldest counted message and pulled the whole shadowed range onto its page.
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That work must handle a page whose checkpoint cites a `surfaceOp.start` outside the window: pagination no longer spends quota on the checkpoint, so it never cuts on the checkpoint's provenance group, and `FoldAdapter` pads absent events with a non-surface sentinel — so `SurfaceManager` rejects the range and `nodes()` falls back to `degradedSeqs()` with a logged error. The hole predates this change (counting could already run past a checkpoint into the range it shadows), but the old rule accidentally covered the case where the checkpoint was the oldest counted message and pulled the whole shadowed range onto its page. `degradedSeqs()` — every surface-eligible event in append order — is already close to the transcript projection A2 needs, which is the shape to build deliberately rather than reach as a degradation. Rendering compaction *progress* — a terminal indicator while a compaction runs — needs the bracket-first ordering that the queued manual `/compact` work introduces, and is likewise out of scope here. The marker also carries no scale: the checkpoint's `sourceEventSeqs` already hold the shadowed count, so a count or range would tell a reader how much each row folded. That belongs with progress, where the reader meets the other half of the same information. Whoever takes it should fold the terminal's two replacement branches — replay and the live listener, textually identical and 600 lines apart — into one `renderReplacement(event)` first, so the marker's content has a single home.
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The terminal's [live compaction progress decision](../feature/2026-07-30-compaction-progress-visibility.md) uses standalone bracket events to drive the existing one-cell indicator. It does not change the completion marker owned here or add scale: the checkpoint's `sourceEventSeqs` remain available for a separately justified count or range. Progress therefore needs neither marker-content changes nor a prerequisite `renderReplacement(event)` extraction.
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## Alternatives considered
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@@ -24,9 +24,9 @@ Status: implemented
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## Deferred
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浏览器客户端仍通过 `FoldAdapter` 从模型 surface 构建会话,因此压缩在 Web 端仍会把历史折叠成一行上下文。那里的修复用的是同一个谓词,另需按追加顺序的记录投影与一个标记组件;该工作是针对 `packages/client/runtime` 与 `packages/client/ui-conversation` 的独立变更。
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浏览器客户端在[Web 记录投影笔记](2026-07-30-web-transcript-log-ordered-projection.md)中单独修复:它按日志顺序投影同一份 append 来源记录并渲染一个标记组件,同时闭合本次变更打开的分页缺口——因为 `session.history` 不再为检查点消耗额度,它永远不会按检查点的溯源分组切分,于是一页可以携带一个引用了窗口之外 `surfaceOp.start` 的检查点,而浏览器的 surface fold 会拒绝该范围。这个缺口早于本次变更(此前计数就可能越过检查点进入它所遮蔽的范围),但旧规则恰好覆盖了这样一种情形:检查点是最旧的被计数消息,其溯源分组把整段被遮蔽的范围一起拉到该页。
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该工作必须处理这样一页:其检查点引用的 `surfaceOp.start` 落在窗口之外。分页不再为检查点消耗额度,因此永远不会按检查点的溯源分组切分;而 `FoldAdapter` 会用一个非 surface 的哨兵事件填补缺失事件——于是 `SurfaceManager` 拒绝该范围,`nodes()` 退化为 `degradedSeqs()` 并记录一条错误。这个缺口早于本次变更(此前计数就可能越过检查点进入它所遮蔽的范围),但旧规则恰好覆盖了这样一种情形:检查点是最旧的被计数消息,其溯源分组把整段被遮蔽的范围一起拉到该页。`degradedSeqs()`——按追加顺序的每个 surface 可入事件——已经很接近 A2 所需的记录投影,因此那正是应当刻意构建的形态,而不是作为退化路径被动落到的结果。渲染压缩*进度*——压缩运行期间的终端指示——需要排队式手动 `/compact` 工作引入的“先开括号”顺序,同样不在本次范围内。标记同样不携带规模信息:检查点的 `sourceEventSeqs` 已经包含被遮蔽的数量,因此一个计数或区间可以告诉读者每一行折叠了多少内容。这件事属于进度那一侧,读者正是在那里遇到同一份信息的另一半。接手者应当先把终端里两处替换分支——回放与实时监听器,文本完全相同却相隔 600 行——合并为一个 `renderReplacement(event)`,让标记的内容只有一个归处。
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终端的[实时压缩进度决策](../feature/2026-07-30-compaction-progress-visibility.md)使用独立标记对中的事件驱动现有的单格指示器。它既不改变本文所负责的完成标记,也不添加规模信息:检查点的 `sourceEventSeqs` 仍可供经另行论证的计数或区间使用。因此,进度显示既不需要修改标记内容,也不以提取 `renderReplacement(event)` 为前置条件。
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## Alternatives considered
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@@ -0,0 +1,6 @@
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# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
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# side as of the last confirmed-consistent state. Both languages carry equal authority;
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# after editing either side, bring the other along and re-record with:
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# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-30-hover-popup-pointer-grace.md
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2026-07-30-hover-popup-pointer-grace.md: 3f60c98ec6453b633feebe408cbc0c0c49eedea1
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2026-07-30-hover-popup-pointer-grace.zh.md: db10e156103284383f911684b2c92977a0315275
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@@ -0,0 +1,35 @@
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# Agent Note: Hover popup pointer grace
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Status: implemented
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English | [中文](2026-07-30-hover-popup-pointer-grace.zh.md)
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## Problem
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Both popups the workspace browser rows raise floated out of reach of the pointer. `HoverCard` closed on the first `pointerleave` from its anchor and rendered its card `pointer-events: none`, but the card sits 8px off the anchor's right edge, so every path to it crossed ground belonging to neither and killed the card before it arrived — the full workspace path and session title it exists to show could be read only in passing. The row action menus passed `closeOnPointerLeave`, whose handler sat on the portaled list: aiming back at the `...` trigger that opened the list closed it, and so did any overshoot past a list edge, with no window to come back.
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## Decision
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`usePointerGrace` ([packages/client/ui-primitives/src/pointer-grace.ts](../../../../packages/client/ui-primitives/src/pointer-grace.ts)) owns one cancelable delayed close, shared by both atoms, with `POINTER_GRACE_MS` at 200. Leaving arms the close; coming back cancels it. Transit through an anchor-to-popup gap is therefore survivable, while a pointer that has genuinely moved on still dismisses the popup.
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`HoverCard` arms the grace on leave instead of closing, and its card no longer sets `pointer-events: none`, so resting on the card holds it open. Re-entering while already open cancels the pending close without restarting the dwell, which keeps the card from blinking when the pointer crosses the gap. A press on the card starts a selection instead of dismissing it; only anchor-region presses and an owner flipping `disabled` dismiss immediately, ahead of the grace.
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`Menu` moves pointer-leave dismissal from the portaled list to the wrapper span. React's enter/leave traversal runs over the React tree, so the trigger and the portaled list are one region there: crossing the 4px gap between them, or aiming back at the trigger, no longer counts as leaving. Leaving is only armed while the list is open, and an owner-driven close (selection, Escape, outside click) disarms a pending grace close in an effect keyed on `open` alone — folding that into the outside-click effect would cancel the grace on every re-render, since owners pass a fresh `onClose` closure each time.
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## Alternatives considered
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**Close the popups only on outside click and Escape.** Rejected because both popups are hover-raised and unlabeled as dismissible; leaving them up after the pointer has moved to another row would strand a card over unrelated content.
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**Widen the anchor's hit area to abut the popup.** Rejected because the 8px and 4px offsets are the design's, and an invisible bridge element would have to track every reposition the fixed-positioned popups already do on scroll and resize.
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**Keep the hover card `pointer-events: none` and only add the grace.** Rejected because the pointer resting on the card would then hit whatever is behind it, so the grace would expire and close the card the user had just reached.
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**Give each atom its own timer.** Rejected because the two closes are the same behavior with the same tuning; a shared hook keeps them from drifting apart.
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## Consequences
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The hover card is now hit-testable and covers 244px of whatever it overlays while shown, which is the price of being reachable; it still lives only as long as the pointer is on the row or the card. Row menus survive the round trip between trigger and list, and a menu that closes for its own reason cannot be reopened into a stale pending close. Menus without `closeOnPointerLeave` are untouched — the wrapper handlers are only attached when it is set.
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## Testing
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`packages/client/ui-primitives/tests/hover-card.spec.tsx` and `tests/atoms.spec.tsx` pin the grace boundary, cancel-on-return, no-second-dwell, disarm-on-owner-close, and the no-arming-while-closed case. The reachability gestures themselves — hovering onto the card, and moving between an open list and its trigger — are pinned in the real browser by `apps/web/tests/workspace-management.e2e.ts`, since they depend on hit testing and layout that jsdom does not model.
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@@ -0,0 +1,35 @@
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# Agent Note: 悬浮弹层的指针宽限期
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Status: implemented
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[English](2026-07-30-hover-popup-pointer-grace.md) | 中文
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## 问题
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工作区浏览器行弹出的两种弹层都处于指针无法抵达的位置。`HoverCard` 在指针离开锚点的第一个 `pointerleave` 上就关闭,其卡片还设置了 `pointer-events: none`;但卡片位于锚点右边缘外 8px 处,因此通往卡片的每条路径都要穿过既不属于锚点也不属于卡片的区域,卡片在指针抵达之前就已被销毁——它本应展示的完整工作区路径和会话标题只能匆匆一瞥。行操作菜单传入了 `closeOnPointerLeave`,而其处理器挂在传送后的列表上:把指针移回打开该列表的 `...` 触发按钮会关闭列表,越过列表边缘的任何一次抖动同样如此,且没有任何折返窗口。
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## 决策
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|
||||
`usePointerGrace`([packages/client/ui-primitives/src/pointer-grace.ts](../../../../packages/client/ui-primitives/src/pointer-grace.ts))持有唯一一个可取消的延迟关闭,由两个原子组件共享,`POINTER_GRACE_MS` 为 200。离开会启动关闭,折返则取消它。因此指针可以安全穿越锚点与弹层之间的间隙,而真正移开的指针仍会关闭弹层。
|
||||
|
||||
`HoverCard` 在离开时启动宽限期而不再立即关闭,其卡片也不再设置 `pointer-events: none`,因此指针停在卡片上即可让它保持打开。在已打开状态下重新进入只取消待执行的关闭,而不重启停留计时,从而避免指针穿越间隙时卡片闪烁。在卡片上按下指针用于开始文本选择,不会关闭卡片;只有锚点区域内的按下和所有者将 `disabled` 置真,才会抢在宽限期之前立即关闭卡片。
|
||||
|
||||
`Menu` 把指针离开关闭的处理从传送后的列表移到包裹 span 上。React 的 enter/leave 遍历基于 React 树进行,因此触发按钮与传送后的列表在这里属于同一区域:穿越两者之间 4px 的间隙、或把指针移回触发按钮,都不再算作离开。只有在列表打开时才会启动离开关闭;由所有者驱动的关闭(选择、Escape、外部点击)会在一个仅以 `open` 为依赖的 effect 中解除待执行的宽限关闭——若把它折叠进外部点击的 effect,则每次重新渲染都会取消宽限期,因为所有者每次都传入新的 `onClose` 闭包。
|
||||
|
||||
## 考虑过的替代方案
|
||||
|
||||
**仅通过外部点击和 Escape 关闭这两种弹层。** 之所以否决:两者都由悬停唤起,且没有可见的关闭标识;在指针已移到其他行之后仍让它们停留,会把卡片遗留在无关内容之上。
|
||||
|
||||
**扩大锚点的命中区域,使其与弹层相接。** 之所以否决:8px 与 4px 的偏移来自设计稿,而一个不可见的桥接元素还必须跟随这两个固定定位弹层已经在滚动和缩放时执行的每一次重新定位。
|
||||
|
||||
**保留悬浮卡片的 `pointer-events: none`,只加入宽限期。** 之所以否决:那样指针停在卡片上时命中的是卡片背后的元素,宽限期仍会到期,并关闭用户刚刚够到的卡片。
|
||||
|
||||
**让两个原子组件各自持有计时器。** 之所以否决:这两处关闭是同一种行为、同一套调参;共享 hook 可以防止它们各自漂移。
|
||||
|
||||
## 后果
|
||||
|
||||
悬浮卡片现在可被命中,显示期间会遮挡其覆盖区域的 244px——这是可抵达性的代价;它依然只在指针位于行或卡片上时存在。行菜单现在能承受触发按钮与列表之间的往返,而因自身原因关闭的菜单也不会被残留的待执行关闭重新关掉。未设置 `closeOnPointerLeave` 的菜单不受影响——只有设置该属性时才会挂上包裹层处理器。
|
||||
|
||||
## 测试
|
||||
|
||||
`packages/client/ui-primitives/tests/hover-card.spec.tsx` 与 `tests/atoms.spec.tsx` 固定验证宽限期边界、折返取消、不重启停留计时、所有者关闭时解除待执行关闭,以及列表关闭时不启动关闭。可抵达性手势本身——把指针移到卡片上,以及在打开的列表与其触发按钮之间移动——由 `apps/web/tests/workspace-management.e2e.ts` 在真实浏览器中固定验证,因为它们依赖 jsdom 无法建模的命中测试与布局。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-30-tui-adapter-registration-race.md
|
||||
2026-07-30-tui-adapter-registration-race.md: fd08e7b6130bc8f7e3cd5287a9970f5fb47244a8
|
||||
2026-07-30-tui-adapter-registration-race.zh.md: 0c6bba4bbc8c3303d9c471c3164faa816438b333
|
||||
@@ -0,0 +1,29 @@
|
||||
# Agent Note: TUI model-context resolution defers on the adapter-registration race
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-30-tui-adapter-registration-race.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
Cordis activates plugins by service availability, not configuration order, so the TUI (whose `inject` requires only the `llm` service) can mount before a configured adapter plugin such as `dsh-llm-pi-ai` finishes registering its provider routes. The TUI's model controller resolves the selected model's context window immediately on mount; when the agent's route pointed at a not-yet-registered provider, `resolveModelInfo` rejected with `NO_ADAPTER` and every fresh session printed `Could not resolve model context: no adapter registered for provider "…"` — a spurious error for a fully working configuration (the adapter registered milliseconds later, and chatting worked).
|
||||
|
||||
## Decision
|
||||
|
||||
The TUI model controller treats a `NO_ADAPTER` rejection of its context-window resolution as a transient state rather than an error: it parks the resolution silently and re-resolves on the next `llm/adapters-updated` commit — the payload-free registry notification `LlmService` already fires at every route commit point. A commit that still lacks the route parks the wait again, so unrelated topology changes stay silent. Any target change re-enters the resolution and clears the pending wait, so the deferred state can never go stale against the current selection; every other resolution error still prints the notice.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Have the TUI wait for boot to settle before resolving.** The TUI has no Loader dependency (tests and embedders run without one) and "settled" is not observable from inside a plugin; adding a Loader coupling for one cosmetic resolution inverts the dependency direction.
|
||||
|
||||
**Poll or retry with a timer.** A timer guesses at activation latency, still mis-prints on a slow adapter, and adds a tunable with no owner. The registry already announces every commit through `llm/adapters-updated`; subscribing is precise and free.
|
||||
|
||||
**Order the config so adapters load first.** Row order carries no load semantics in the Loader (activation is service-driven by design), so this cannot be expressed in configuration.
|
||||
|
||||
**Suppress NO_ADAPTER errors entirely.** A permanently missing adapter (typo in the provider name) would then never surface in the context-window path. Deferring keeps the signal: a wrong provider name still shows `model unset`-like behavior in the selector and fails loudly at dispatch, while the startup race resolves itself.
|
||||
|
||||
**Resolve the context window per submitted message instead of at mount.** The send path already resolves per step (`prepareCall()`), and the indicator is displayed continuously, not only when sending; per-submit display resolution would leave the indicator blank until the first message and re-run adapter I/O for a value that only changes on route changes.
|
||||
|
||||
## Consequences
|
||||
|
||||
A genuinely misconfigured provider no longer prints the context-resolution error at startup — it surfaces at first dispatch instead, which is where the failure is actionable. The controller subscribes to every `llm/adapters-updated` commit but acts only while a wait is parked; the listener's disposer is released by the channel's `detachListeners()` through the controller's `detach()`, symmetric with the sibling channel listeners. Covered by three TUI tests: the deferred resolution stays silent through an unrelated commit and completes when the route's commit arrives, a target change drops the stale wait, and after channel detach a registry commit no longer re-enters resolution.
|
||||
@@ -0,0 +1,29 @@
|
||||
# Agent Note: TUI 模型上下文解析在适配器注册竞争时延后重试
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-30-tui-adapter-registration-race.md) | 中文
|
||||
|
||||
## Problem
|
||||
|
||||
Cordis 按服务可用性而非配置顺序激活插件,因此 TUI(其 `inject` 只要求 `llm` 服务)可能在 `dsh-llm-pi-ai` 这类已配置的适配器插件完成提供方路由注册之前就挂载。TUI 的模型控制器在挂载时立即解析所选模型的上下文窗口;当 agent 的路由指向尚未注册的提供方时,`resolveModelInfo` 以 `NO_ADAPTER` 拒绝,于是每个新会话都会打印 `Could not resolve model context: no adapter registered for provider "…"` —— 对一份完全正常的配置报出的虚假错误(适配器几毫秒后就完成注册,对话也一切正常)。
|
||||
|
||||
## Decision
|
||||
|
||||
TUI 模型控制器把上下文窗口解析中的 `NO_ADAPTER` 拒绝视为瞬态状态而非错误:静默搁置这次解析,并在下一次 `llm/adapters-updated` 提交时重新解析——这是 `LlmService` 本就在每个路由提交点发出的无载荷注册表通知。若某次提交仍缺少该路由,等待会被再次搁置,因此无关的拓扑变化保持沉默。任何目标变更都会重新进入解析并清除挂起的等待,因此延后状态绝不会相对当前选择变陈旧;其他所有解析错误仍照常打印通知。
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**让 TUI 等启动结算后再解析。** TUI 不依赖 Loader(测试和嵌入方在没有 Loader 的环境下运行),而且"已结算"在插件内部不可观测;为一次外观性的解析引入 Loader 耦合会颠倒依赖方向。
|
||||
|
||||
**用定时器轮询或重试。** 定时器只能猜测激活延迟,遇到慢适配器仍会误报,还会引入一个没有归属者的可调参数。注册表本就通过 `llm/adapters-updated` 公告每次提交;订阅它既精确又零成本。
|
||||
|
||||
**调整配置顺序让适配器先加载。** Loader 中行顺序不承载加载语义(激活按设计由服务驱动),因此这无法用配置表达。
|
||||
|
||||
**彻底压制 NO_ADAPTER 错误。** 那样的话,永久缺失的适配器(提供方名字拼错)在上下文窗口路径上就永远不会暴露。延后重试保留了信号:错误的提供方名字仍会在选择器中表现出类似 `model unset` 的行为,并在分派时大声失败,而启动竞争则自行化解。
|
||||
|
||||
**改为在每次提交消息时解析上下文窗口,而不是在挂载时。** 发送路径本就按步解析(`prepareCall()`),且指示器是持续显示的,不只在发送时;按提交解析显示值会让指示器在首条消息之前一直空白,并为一个仅在路由变化时才变的值反复执行适配器 I/O。
|
||||
|
||||
## Consequences
|
||||
|
||||
真正配置错误的提供方不再在启动时打印上下文解析错误——它改在首次分派时暴露,那才是该失败可以被处理的地方。控制器订阅每次 `llm/adapters-updated` 提交,但只在有等待被搁置时才动作;监听器的 disposer 经由控制器的 `detach()` 在频道的 `detachListeners()` 中释放,与同级频道监听器保持对称。由三个 TUI 测试覆盖:延后的解析在无关提交中保持沉默、在该路由的提交到来时完成;目标变更丢弃陈旧等待;频道 detach 之后注册表提交不再重新进入解析。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-30-web-transcript-log-ordered-projection.md
|
||||
2026-07-30-web-transcript-log-ordered-projection.md: 4bc629bfa619a2858ec0335a6136d3a5a24b025a
|
||||
2026-07-30-web-transcript-log-ordered-projection.zh.md: d011ce9453bc1dbb9fdb62372aa1126c95ffb143
|
||||
@@ -0,0 +1,72 @@
|
||||
# Agent Note: The browser conversation is a log-ordered human transcript
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-30-web-transcript-log-ordered-projection.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
The browser client built its conversation from the model-visible surface: `FoldAdapter` ran the core `SurfaceManager` over the history window and read `surface.nodes`. A successful compaction replaces a surface range with one checkpoint node, so the moment that replacement landed the web flow collapsed every message it shadowed into a single dim context row — conversation the user had already read. Nothing was lost from the log; the defect was entirely in the projection, and [the terminal and the host gateway were fixed the same way](2026-07-29-human-transcript-append-origin.md) while the browser was left for this change.
|
||||
|
||||
Surface order made two further problems structural. It is not seq-ascending after a replacement — `SurfaceManager` splices the high-seq checkpoint into the position of the range it shadows — so log-only nodes merged into that array by numeric seq (slash-command rows, interrupted frozen nodes) could be flushed ahead of the checkpoint and never interleave into the retained tail again. And because pagination no longer spends `maxMessages` quota on replacement copies, a page can now carry a checkpoint whose `surfaceOp.start` lies outside the window; the core fold rejects that range, so `nodes()` fell back to a lenient linear scan behind a `console.error` and published a `foldDegraded` flag describing the failure.
|
||||
|
||||
## Decision
|
||||
|
||||
`TranscriptAdapter` replaces `FoldAdapter` and never consults surface order. It projects the raw window in log order: every append-origin surface event (`isAppendSurfaceEvent`) at its own log position, plus one `CompactionSummaryNode` marker per landed compaction checkpoint. A landed compaction therefore keeps the conversation it shadowed on the model side, and the marker reports where the model stopped seeing that history instead of erasing it. Model-only replacement copies stay out of the transcript: a pruned `tool/result` and a regenerated `assistant/message` rewrite one node for the model and mark no boundary in the conversation. Everything that must send exactly what the model sees keeps reading the surface; this is the human projection, and the two are now separate on both frontends.
|
||||
|
||||
Node order is seq-monotonic by construction, and three things follow. The log-only `command/run` / `command/done` pair folds into `CommandNode`s that splice into an already-monotonic array by seq — no anchors, no reordering. `Session` keeps ownership of interrupted frozen nodes and merges them by their fractional seqs with a plain sort, which is now exactly flow order. And a window whose checkpoint cites a shadowed range outside it has no range to resolve, so the marker renders and nothing is logged.
|
||||
|
||||
`foldDegraded` is gone from `ConversationSnapshot`, and with it the padding sentinels, the `baseSeq` arithmetic they needed, and `degradedSeqs()`. They existed only to satisfy the core fold's `seq === index` assertion and to survive its throw; the fold they describe is no longer run. Deleting the flag is part of the fix, not cleanup after it — `degradedSeqs()` was already almost the log-ordered projection, reached after a thrown error instead of intended.
|
||||
|
||||
The marker's summary text comes from the checkpoint's own `compact/summary` provenance, never from the framed checkpoint payload, which is an instruction envelope written for the model. A window cut that left the provenance outside makes the row non-expandable rather than empty, the same soft-fall as a call-less tool result, and a later page supplying the provenance resolves the text.
|
||||
|
||||
No persisted event, RPC envelope, compaction transaction, or model-visible surface changed, and no migration is required.
|
||||
|
||||
## Recognizing a checkpoint: one declaration, pinned at compile time
|
||||
|
||||
Recognition needs all three conditions, as in the terminal: `event.type === 'user/message'`, the compaction seam's checkpoint plugin source, **and** `isReplacementSurfaceEvent(event)`. A plugin-sourced `user/message` that *appends* is injected context — a session-reference card — not a compaction.
|
||||
|
||||
What is unreachable from a `packages/client/*` program is `dsh-compact`'s **root**, not the package. The root reaches `dsh-session`'s root, whose cordis `Context` merge declares the host `sessions: SessionStore` against the client's `sessions: ISessions` — `TS2717`, the one-program-per-side rule in [development.md](../../../../docs/development.md#typescript-project-layout) — and that holds for a type-only import too, because the collision is a compiler fact rather than a bundler one.
|
||||
|
||||
The repo's answer to exactly this is a cordis-free leaf subpath, and this change adds one: `COMPACT_CHECKPOINT_SOURCE` and `isCompactCheckpointSource` now live in `packages/compact/compact/src/checkpoint.ts`, which imports no cordis and augments no module (the `dsh-commands/brand` / `dsh-llm/message` shape), and the root re-exports both so every host-side consumer — the terminal's chat helpers, `dsh-session-reference`'s projection — is unchanged. The adapter pins its literal to that declaration with a type-only import:
|
||||
|
||||
```ts
|
||||
import type { COMPACT_CHECKPOINT_SOURCE } from '@deepseek-ai/dsh-compact/checkpoint'
|
||||
const COMPACT_PLUGIN: typeof COMPACT_CHECKPOINT_SOURCE.plugin = 'compact'
|
||||
```
|
||||
|
||||
Renaming the seam's plugin id is now a compile error in the client: `TS2322: Type '"compact"' is not assignable to type '"compaction"'`. The import must stay **type-only** — a value import of any `@deepseek-ai` package that is neither a platform module nor an inline-safe wire layer is rejected by the client purity gate (`packages/client/tsdown.client.ts`), whose own message records that type-only imports are erased and never reach it. A type-only leaf import needs both a `tsconfig.base.json` `paths` entry and `{"path": "../../compact/compact"}` in `packages/client/runtime/tsconfig.json` `references`: composite `rootDir` rules apply to erased imports as well, and without the reference the diagnostic is `TS6059`/`TS6307`.
|
||||
|
||||
`packages/client/runtime/tests/compact-checkpoint-pin.spec.ts` stays as the behavioral half, driving the adapter with a checkpoint built from the canonical **value**. The test value-imports the cordis-free `@deepseek-ai/dsh-compact/checkpoint` leaf and deliberately never loads the compact package root or the host-side `Context` merges reachable through it.
|
||||
|
||||
The divergence from the terminal is therefore narrow: both frontends recognize a checkpoint from the same declaration — the terminal value-imports `isCompactCheckpointSource` host-side, where no gate applies, and the client pins the type.
|
||||
|
||||
## What #835's positional anchors were for, and why they are dissolved rather than lost
|
||||
|
||||
The unmerged manual-compaction-queueing branch fixes the same interleaving bug by recording a per-event anchor — the surface tail at append time — and retargeting shadowed anchors onto the checkpoint. That mechanism exists to make positional anchors survive surface **reordering**. The human transcript is never re-ordered, so anchors have nothing to retarget: the precondition is removed, not the fix discarded. The mechanism is absent from this base and is not authored here.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Value-import the predicate** from the new leaf and add `dsh-compact` to the client `INLINE_SAFE` allowlist. Rejected: the client needs the plugin id, not the predicate — a type is enough, and an erased import never reaches the purity gate, so nothing has to be admitted to it. The allowlist would only matter for a value import, and there it is a poor trade: `INLINE_SAFE` matches on specifier *prefix*, so admitting the package admits its cordis-importing root along with the leaf.
|
||||
|
||||
**A bare shape rule** — any replacement `user/message` is a compaction. Rejected: correct today only because compaction is the sole producer of replacement `user/message`s, with nothing to catch it if that changes. The pinning spec costs one file and removes exactly that risk.
|
||||
|
||||
**Tag the checkpoint host-side** through the projection or wire contract. Rejected: most aligned with the "collaborate through cordis services" rule, but the client folds raw `SessionEvent`s today, so it means a wire contract change out of proportion to one pure predicate.
|
||||
|
||||
**Move frozen-node ownership into the adapter** (`nodes(extraNodes)`), as the unmerged branch does. Rejected: the interrupted nodes come from the `turn/end` sweep `Session` already runs over the window, and with a seq-monotonic transcript the simple shape is correct — the adapter returns nodes, the session merges frozen ones by seq. Widening the adapter's signature would buy nothing and split the sweep from its product.
|
||||
|
||||
**Keep `foldDegraded` as a defensive flag.** Rejected: it described a specific failure of a fold that no longer runs. A flag no consumer can act on, reachable only through a `console.error`, is a false contract.
|
||||
|
||||
## Consequences
|
||||
|
||||
Compaction no longer erases web history; a session compacted several times shows one marker per landed compaction, in log order, and the same window renders identically live and after a cold resume. The pagination hole is closed by construction rather than defended against, and `ConversationSnapshot` loses a published field, which touched thirteen files.
|
||||
|
||||
`ConversationNode` gains an eighth arm, so every exhaustive consumer grew one case: `MessageItem` renders the marker through the new `CompactionItem`, and the trajectory layout widens its no-cell arm so a marker contributes no cell but still advances the duration cursor.
|
||||
|
||||
The performance contract is unchanged and now simpler to state: one append materializes one node, an event that changes no node keeps the previous array reference — so a chunk storm costs nothing and `nodes()` is not even recomputed — and unchanged nodes keep their object identity. The window still grows with session length rather than with the surface, which is the trade the fix exists to make; a compaction used to bound the projection for exactly the long sessions compaction serves.
|
||||
|
||||
The web e2e scenario now seeds a real compaction transaction over its recorded turn, so the aria golden pins both halves of the fix through the real host and a real browser: the recorded prompt and full tool output are still on screen, and one marker sits after them. The seed recording itself is untouched and stays model-authentic — replay derives the compacted turn from the recording's own surface.
|
||||
|
||||
## Deferred
|
||||
|
||||
The terminal's [compaction progress decision](../feature/2026-07-30-compaction-progress-visibility.md) uses the live standalone bracket to drive a one-cell indicator and does not change this browser projection. The marker still carries no **scale**: the checkpoint's `sourceEventSeqs` hold the shadowed count, so a separately justified count or range can be added without coupling it to progress.
|
||||
@@ -0,0 +1,72 @@
|
||||
# Agent Note: 浏览器会话是按日志顺序投影的人类对话记录
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-30-web-transcript-log-ordered-projection.md) | 中文
|
||||
|
||||
## Problem
|
||||
|
||||
浏览器客户端从模型可见的 surface 构建会话:`FoldAdapter` 在历史窗口上运行核心 `SurfaceManager` 并读取 `surface.nodes`。一次成功的压缩会用一个检查点节点替换一段 surface 范围,因此该替换一落地,Web 流就把它所遮蔽的每条消息折叠成一行灰暗的上下文——那是用户已经读过的对话。日志中什么都没丢失;缺陷完全在投影层,而[终端与宿主历史网关已按同一方式修复](2026-07-29-human-transcript-append-origin.md),浏览器留给了本次变更。
|
||||
|
||||
surface 顺序还让另外两个问题成为结构性的。一次替换之后它并非按 seq 升序——`SurfaceManager` 把高 seq 的检查点拼接到它所遮蔽范围的位置上——因此按数值 seq 归并进该数组的仅日志节点(斜杠命令行、被打断的冻结节点)可能被冲刷到检查点之前,再也无法交错回保留下来的尾部。而且由于分页不再为 replacement 副本消耗 `maxMessages` 额度,一页现在可以携带一个 `surfaceOp.start` 落在窗口之外的检查点;核心 fold 拒绝该范围,于是 `nodes()` 退回到一次宽容的线性扫描、打印一条 `console.error`,并发布一个描述该失败的 `foldDegraded` 标志。
|
||||
|
||||
## Decision
|
||||
|
||||
`TranscriptAdapter` 取代 `FoldAdapter`,并且从不查询 surface 顺序。它按日志顺序投影原始窗口:每个 append 来源的 surface 事件(`isAppendSurfaceEvent`)落在它自己的日志位置上,外加每次落地的压缩检查点一个 `CompactionSummaryNode` 标记。于是一次落地的压缩会保留它在模型侧遮蔽掉的对话,标记报告模型从哪里开始看不见那段历史,而不是把它抹掉。仅模型可见的 replacement 副本不进入记录:被裁剪的 `tool/result` 和重新生成的 `assistant/message` 只为模型重写一个节点,不在对话中标记任何边界。凡必须发送模型所见内容的一切仍读 surface;这是人类投影,两者现在在两个前端上都已分离。
|
||||
|
||||
节点顺序天然按 seq 单调,由此有三个结果。仅日志的 `command/run` / `command/done` 对折叠成 `CommandNode`,按 seq 插入一个本已单调的数组——无锚点,无重排。`Session` 保留被打断的冻结节点的归属,用一次普通排序按其分数 seq 归并,而这现在恰好就是流顺序。检查点所引被遮蔽范围落在窗口之外的窗口没有范围需要解析,因此标记正常渲染且不打印任何日志。
|
||||
|
||||
`foldDegraded` 从 `ConversationSnapshot` 消失,随之消失的是哨兵填充、它们所需的 `baseSeq` 算术,以及 `degradedSeqs()`。它们的存在只为满足核心 fold 的 `seq === index` 断言并在其抛错时存活;它们所描述的 fold 已不再运行。删除该标志是修复的一部分,而非修复之后的清理——`degradedSeqs()` 本身已几乎就是按日志顺序的投影,只是作为抛错后的落点而非本意到达。
|
||||
|
||||
标记的摘要文本来自检查点自己的 `compact/summary` 溯源,绝不取自成框的检查点载荷——那是为模型撰写的指令信封。窗口切分把溯源留在窗口外时该行不可展开而非空白,与无调用的工具结果同一种软退让;后续补上溯源的分页会解析出文本。
|
||||
|
||||
没有任何持久化事件、RPC 信封、压缩事务或模型可见 surface 发生变化,也不需要迁移。
|
||||
|
||||
## 识别检查点:同一份声明,在编译期钉住
|
||||
|
||||
识别需要三个条件同时成立,与终端一致:`event.type === 'user/message'`、压缩缝隙的检查点插件来源,**以及** `isReplacementSurfaceEvent(event)`。一条 append 的插件来源 `user/message` 是注入上下文——跨会话引用卡片——不是压缩。
|
||||
|
||||
从 `packages/client/*` 程序无法到达的是 `dsh-compact` 的**根部**,而不是这个包。根部会到达 `dsh-session` 的根部,后者的 cordis `Context` 合并声明了宿主侧 `sessions: SessionStore`,与客户端的 `sessions: ISessions` 冲突——`TS2717`,即 [development.md](../../../../docs/development.md#typescript-project-layout) 中每侧一个 program 的规则;这一点对仅类型导入同样成立,因为该冲突是编译器事实而非打包器事实。
|
||||
|
||||
本仓库对这一情形的既有答案是不含 cordis 的叶子子路径,本次变更就新增了一个:`COMPACT_CHECKPOINT_SOURCE` 与 `isCompactCheckpointSource` 现在住在 `packages/compact/compact/src/checkpoint.ts`,它不导入 cordis、也不增强任何模块(即 `dsh-commands/brand` / `dsh-llm/message` 的形状),而包根重新导出两者,因此每个宿主侧消费方——终端的 chat helper、`dsh-session-reference` 的投影——都不需改动。适配器用仅类型导入把它的字面量钉在该声明上:
|
||||
|
||||
```ts
|
||||
import type { COMPACT_CHECKPOINT_SOURCE } from '@deepseek-ai/dsh-compact/checkpoint'
|
||||
const COMPACT_PLUGIN: typeof COMPACT_CHECKPOINT_SOURCE.plugin = 'compact'
|
||||
```
|
||||
|
||||
重命名缝隙的插件 id 现在会在客户端产生编译错误:`TS2322: Type '"compact"' is not assignable to type '"compaction"'`。该导入必须保持**仅类型**——任何既非平台模块又非 inline-safe wire 层的 `@deepseek-ai` 包值导入都会被客户端纯度门禁(`packages/client/tsdown.client.ts`)拒绝,而它自己的报错信息就记录着仅类型导入会被擦除、永不抵达该门禁。仅类型的叶子导入同时需要 `tsconfig.base.json` 的一条 `paths` 条目和 `packages/client/runtime/tsconfig.json` `references` 中的 `{"path": "../../compact/compact"}`:composite 的 `rootDir` 规则同样适用于被擦除的导入,缺少该引用时的诊断是 `TS6059`/`TS6307`。
|
||||
|
||||
`packages/client/runtime/tests/compact-checkpoint-pin.spec.ts` 作为行为侧的另一半保留,用由权威**值**构造的检查点驱动适配器。该测试以值导入方式从不含 cordis 的 `@deepseek-ai/dsh-compact/checkpoint` 叶子路径取得该值,并刻意不加载 compact 包根或经由它可达的宿主侧 `Context` 合并。
|
||||
|
||||
因此与终端的分歧很窄:两个前端都从同一份声明识别检查点——终端在宿主侧值导入 `isCompactCheckpointSource`(那里不适用任何门禁),客户端钉住类型。
|
||||
|
||||
## #835 的位置锚点是为什么而存在,以及为什么它是被溶解而非丢失
|
||||
|
||||
尚未合并的排队式手动压缩分支用另一种方式修同一个交错缺陷:为每个事件记录一个锚点——追加时的 surface 尾部——并把被遮蔽的锚点重定向到检查点上。该机制的存在是为了让位置锚点在 surface **重排**中存活。人类对话记录永不被重排,因此锚点没有任何东西需要重定向:前提被移除,修复并未被丢弃。该机制在本基线上并不存在,本次也不撰写它。
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**从新叶子值导入该谓词**,并把 `dsh-compact` 加入客户端 `INLINE_SAFE` 白名单。已拒绝:客户端需要的是插件 id,不是谓词——一个类型就够了,而被擦除的导入根本不会抵达纯度门禁,因此无需向它放行任何东西。白名单只在值导入时才有意义,而在那里它是笔糟糕的交换:`INLINE_SAFE` 按标识符*前缀*匹配,因此放行该包会连它那个会导入 cordis 的根部一起放行。
|
||||
|
||||
**一条纯形状规则**——任何 replacement `user/message` 都是压缩。已拒绝:它今天正确只因为压缩是 replacement `user/message` 的唯一生产者,一旦这点改变便无任何机制能捕获。那个 pin 测试只花一个文件,就精确消除了这一风险。
|
||||
|
||||
**在宿主侧给检查点打标**,经投影或线协议。已拒绝:这最贴合“经 cordis 服务协作”的规则,但客户端今天折叠的是原始 `SessionEvent`,因此这意味着一次线协议契约变更——为一个纯谓词付出的代价不成比例。
|
||||
|
||||
**把冻结节点的归属移进适配器**(`nodes(extraNodes)`),像那个未合并分支所做的那样。已拒绝:被打断的节点来自 `Session` 已经在窗口上运行的 `turn/end` 清扫,而在按 seq 单调的记录之上,简单形态就是正确的——适配器返回节点,会话按 seq 归并冻结节点。加宽适配器签名什么也换不到,还会把清扫与它的产物拆开。
|
||||
|
||||
**把 `foldDegraded` 留作一个防御性标志。** 已拒绝:它描述的是一个已不再运行的 fold 的特定失败。一个消费方无法据以行动、只能通过 `console.error` 到达的标志,是一份虚假契约。
|
||||
|
||||
## Consequences
|
||||
|
||||
压缩不再抹掉 Web 历史;一个被压缩多次的会话按日志顺序显示每次落地压缩一个标记,而同一窗口在实时与冷恢复之后渲染完全相同。分页缺口是被构造性闭合而非被防御,`ConversationSnapshot` 少了一个已发布字段,这触及十三个文件。
|
||||
|
||||
`ConversationNode` 增加第八个分支,因此每个穷尽消费方都多一个分支:`MessageItem` 通过新的 `CompactionItem` 渲染标记,trajectory 布局加宽它的“无单元格”分支,使标记不贡献单元格但仍推进耗时游标。
|
||||
|
||||
性能契约未变,且现在更易表述:一次追加物化一个节点,不改变任何节点的事件保持上一次的数组引用——因此分片风暴零成本、`nodes()` 甚至不会重算——未变化的节点保持其对象标识。窗口仍随会话长度而非随 surface 增长,这正是本修复存在所要做的交换;一次压缩过去恰好为压缩所服务的长会话限制了投影规模。
|
||||
|
||||
Web e2e 场景现在在它录制的那一轮之上播种一次真实的压缩事务,因此 aria 基准经真实宿主与真实浏览器钉住修复的两半:录制的提问与完整工具输出仍在屏幕上,其后坐着一个标记。录制本身未被触碰、保持模型真实——回放从录制自身的 surface 派生出被压缩的那一轮。
|
||||
|
||||
## Deferred
|
||||
|
||||
终端的[压缩进度决策](../feature/2026-07-30-compaction-progress-visibility.md)使用实时独立标记对驱动单格指示器,并不改变此浏览器投影。标记仍不携带**规模**信息:检查点的 `sourceEventSeqs` 保存被遮蔽的数量,因此可以另行论证后添加计数或区间,而无须将其与进度耦合。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-31-composer-glyph-layer-tracks-the-textarea.md
|
||||
2026-07-31-composer-glyph-layer-tracks-the-textarea.md: d60a100be98683b5f7a7c88edf7585d275134730
|
||||
2026-07-31-composer-glyph-layer-tracks-the-textarea.zh.md: eab3f9e3fe3bddb426836113d08f1839329119d5
|
||||
@@ -0,0 +1,77 @@
|
||||
# Agent Note: The composer's glyph layer tracks the textarea's scroll offset
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-31-composer-glyph-layer-tracks-the-textarea.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
A composer draft longer than the 14-line cap could not be scrolled. The caret moved and the selection moved, but the words stayed frozen at line 1 — no wheel gesture, drag, or arrow key brought the end of a long draft on screen, so the bottom of anything past ~14 lines was unreachable and unreadable while writing it.
|
||||
|
||||
The cap itself was working. The composer paints its text in two stacked layers ([InputBar](../../../../packages/client/ui-conversation/src/client/skeleton/InputBar.tsx)): the `<textarea>` owns the value, the selection, and the caret but renders its own glyphs `color: transparent`, and every visible character is painted by the `[data-input-backdrop]` div beneath it, which also carries the claim-token highlight, the chips, and the ghost hint. That split is what makes chips and highlights possible at all — a textarea cannot style a range of its own text.
|
||||
|
||||
The two layers were coupled in geometry but not in scroll. The backdrop is `position: absolute; inset: 0; overflow: hidden`: it is clipped, not scrolled, and nothing in the browser links its offset to the textarea's. Below the cap that is invisible, because both layers rest at offset 0 and the mirror div sizes the box to the draft. At the cap the textarea starts scrolling and the backdrop does not follow, so the layer the user actually reads never moves.
|
||||
|
||||
The defect is therefore exactly as old as the cap, and it hid behind the resting state: a short draft, the state every screenshot and every existing fixture captured, renders identically with and without the coupling.
|
||||
|
||||
## Decision
|
||||
|
||||
`InputBar` mirrors the textarea's `scrollTop` onto the backdrop from one `scroll` listener, registered beside the existing wheel-chaining listener in the same effect (the textarea is never unmounted — the inert state renders the same element disabled).
|
||||
|
||||
One listener is the whole coupling, because every way the box moves ends in a `scroll` event on the textarea. A gesture scrolls it; an edit scrolls the caret into view; a draft that shrinks past the current offset clamps it. The clamp case is the one that looks like it needs separate handling and does not: the two layers share an extent, so they clamp to the same maximum, and the textarea's clamp fires the `scroll` that mirrors it.
|
||||
|
||||
That shared extent is not free, and mirroring an offset is only correct while it holds. Two things break it, both discovered in review, both failing in the same direction — a backdrop shorter than the textarea, so the assignment clamps and the glyphs sit below the caret. A textarea reserves a line box for the caret after a final newline; `white-space: pre-wrap` collapses a text node's trailing newline and generates none. A draft ending in a newline therefore made the backdrop exactly one line shorter than the textarea — measured 628 against 652 — so the assignment clamped and the glyphs sat a line behind the caret at the very bottom. The backdrop now carries the same trailing-line sentinel the mirror div already did: its content is the decoration walk plus one `'\n'`, which the same collapse absorbs when the draft does not end in a newline and which supplies the missing line box when it does. Measured across plain, trailing-newline, soft-wrapping, unbreakable-run, and interior-blank-line drafts, the two extents now agree in every case.
|
||||
|
||||
The second premise is wrap width, and it is asserted rather than fixed. Only `.input` scrolls, so only `.input` can lose content width to a scrollbar that consumes layout space, and a narrower `.input` wraps a long draft onto more lines — worth 2 to 5 lines for an 8px difference, measured on a standalone harness, while at equal widths a textarea and a div agree exactly. Measured on the running app across the three engines Playwright ships, the widths agree on two and not on the third:
|
||||
|
||||
| engine | `.input` / `.backdrop` / `.mirror` wrap width | extents |
|
||||
|---|---|---|
|
||||
| chromium | 776 / 776 / 776 | equal |
|
||||
| firefox | 776 / 776 / 776 | equal |
|
||||
| WebKit | **768** / 776 / 776 | equal for the drafts measured |
|
||||
|
||||
WebKit's textarea loses 8px to its scrollbar while the clipped layers keep theirs. That gap predates this change and is not closed here; the mirror is unaffected on the drafts measured because the extents still agree, but a draft whose wrapping is sensitive at exactly that width would make `.input` taller and clamp the mirrored offset. The scenario asserts the equality on the lane's engine, so a regression into that state fails loudly rather than silently.
|
||||
|
||||
`scrollbar-gutter: stable` on the shared metrics block was tried and removed. WebKit applies it to `overflow-y: auto` but not to `overflow: hidden`, so it left `.input` at 768 against 776 — exactly the gap it was meant to close — while costing chromium 8px of text width unconditionally. Closing this needs one geometry every engine agrees on, not that property.
|
||||
|
||||
The mirror is one-directional: the textarea is the authority because it owns the caret, and the caret is what the browser scrolls to.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Give the backdrop `overflow: auto` and let it scroll itself.** It would then have a scroll offset of its own to keep in step, which is the same problem plus a second scrollbar painted over the input. The backdrop is a projection of the textarea, not an independently navigable surface.
|
||||
|
||||
**Drop the backdrop and style the textarea's own text.** This removes the layer split and the whole class of desync with it. Rejected because it is not implementable: a textarea renders one uniform text run, so the claim-token highlight, the chips, and the ghost hint — the reasons the backdrop exists — have no way to be expressed. Losing them to fix scrolling trades a bounded defect for a feature deletion.
|
||||
|
||||
**Render the draft in a `contenteditable` div instead of a textarea.** One element, one scroll offset, styleable ranges. Rejected as far out of proportion to the defect: `contenteditable` would put IME composition, undo/redo, selection semantics, and paste normalization back on us, all of which the textarea plus the input machine currently handle, and the machine already owns an undo log that assumes a textarea's value semantics.
|
||||
|
||||
**Scroll the backdrop from the existing wheel handler instead of a `scroll` listener.** The handler already runs on every wheel over the textarea, so it looks like the natural place. Rejected because it covers only one of the ways the box scrolls: typing at the end, `End`, arrow keys, drag-selection past the edge, and scrollbar drags all move the textarea without a wheel event. Listening to `scroll` is listening to the thing itself rather than to one of its causes.
|
||||
|
||||
**Reserve the scrollbar gutter on all three layers with `scrollbar-gutter: stable`.** Adopted, then reverted on measurement. The reasoning was that whatever a platform's scrollbar costs, three layers reserving it stay equal — and `overflow: hidden` is a scroll container, so the spec says the clipped layers honour it. Chromium agrees (8px reserved on each, widths 768/768/768). WebKit does not: it reserves for `overflow-y: auto` and not for `overflow: hidden`, leaving 768 against 776 — the same gap, unclosed — so the property bought nothing on the one engine where the divergence is observable while costing every chromium user 8px of text column. Reverted in favour of asserting the premise and recording the WebKit gap.
|
||||
|
||||
**Suppress the textarea's scrollbar instead of reserving a gutter on the other layers.** `scrollbar-width: none` on `.input` would equalize the widths without narrowing the text column. Rejected because the composer deliberately shows a thumb once the draft passes the cap — `.card` binds the l2 scrollbar tokens for exactly that — and removing it takes away the only affordance that says a long draft continues below.
|
||||
|
||||
**Translate the backdrop with `transform: translateY(-scrollTop)` instead of scrolling it.** A transform is not clamped by content height, so it would paper over any extent divergence — including the trailing-newline one — without matching the layers. Rejected because the divergence is the actual defect: unequal extents also mean the two layers disagree about where the last line sits, and hiding that behind an unclamped transform would leave a mismatch that resurfaces the moment anything measures the backdrop. Fixing the extent keeps one truth about the draft's height.
|
||||
|
||||
**Add a second mirror in a layout effect keyed on the committed draft.** This shipped in the first version of the change, on the theory that an edit reflows both layers without necessarily moving the textarea, and that a shrinking draft clamps each layer independently. Both premises are false, and it was removed after mutation-testing each hook alone against the built client: with only the layout effect disabled the browser scenario stays green, while disabling only the `scroll` listener fails it. Typing scrolls the caret into view, which is an ordinary `scroll`; a shrinking draft clamps both layers to the same maximum because their extents are equal, and the textarea's clamp fires `scroll` too. The specific hazard the effect was imagined to cover — React replacing the backdrop's children when the decoration set changes shape, resetting its offset — does not occur: measured in chromium, replacing every child of an `overflow: hidden` box preserves `scrollTop` (300 stays 300), and the only replacement that zeroes it is one that shrinks the content below the offset, which is the clamp case already covered.
|
||||
|
||||
**Sync in the `onChange` handler.** Rejected for the same reason plus one of its own: it fires before React commits the new draft to the backdrop, so it would mirror against the previous layout.
|
||||
|
||||
## Consequences
|
||||
|
||||
- A draft past the cap scrolls its glyphs. Measured in the browser scenario: after a wheel gesture over a 40-line draft the last line sits inside the visible box and the first has scrolled out above it; before, the last line stayed a full draft-height below the box while the textarea's own offset had moved.
|
||||
- The coupling is one-directional and cheap — one assignment of one number, no measurement, no layout read beyond `scrollTop` — so it adds nothing to the typing path's cost.
|
||||
- Chips, claim-token highlights, and text-ref marks stay aligned with their glyphs while scrolled, because they are positioned inside the backdrop and move with it. Nothing about the decoration walk changes.
|
||||
- The composer's two-layer design keeps this hazard: any future layer added beside the backdrop needs the same mirroring, and any change to how a layer reserves its last line box breaks the extent equality the mirror depends on. The e2e scenario asserts both — the relation the user cares about (which line is on screen) and the extent equality underneath it — so a future divergence fails on the invariant rather than on a screenshot.
|
||||
- Extent equality is asserted, not assumed. It is the premise that turns "mirror the offset" from correct into subtly wrong, and it failed for the trailing-newline shape before the sentinel.
|
||||
- Wrap-width equality is the other premise, and it does NOT hold universally: WebKit lays `.input` out 8px narrower than the glyph layers. That predates this change and is left open, with the measurement recorded above and an assertion on the lane's engine. A draft whose wrapping turns on those 8px would clamp the mirror on WebKit.
|
||||
- The composer's layout is unchanged. An earlier revision narrowed the text column by 8px on every platform to chase the wrap-width premise; measurement showed it did not buy the guarantee, so the metrics are the same as before this change.
|
||||
|
||||
## Testing
|
||||
|
||||
The unit spec in [input-bar.spec.tsx](../../../../packages/client/ui-conversation/tests/input-bar.spec.tsx) proves the mirroring path runs: it stubs both offsets, because jsdom reports `scrollHeight === clientHeight` for every element and never scrolls one, and asserts the backdrop follows the textarea to a new offset and back to the top. Reverting the `ref` makes it fail.
|
||||
|
||||
The user-visible fact needs a real engine, so [composer-draft-scroll.e2e.ts](../../../../apps/web/tests/composer-draft-scroll.e2e.ts) measures it in chromium against the built client: a 40-line draft in a fresh workspace's blank composer, zero model calls, with a DOM Range over the backdrop's own text reporting where the first and last lines sit relative to the visible box. A vacuity guard asserts the draft actually overflows the capped box first. A separate case drives the trailing-newline shape and asserts the two extents are equal before asserting the glyphs reach the end; each layer's maximum is observed by asking for an impossible offset and reading back the clamp, not computed from `scrollHeight`. A third asserts the gutter premise: equal wrap widths, and a reserved band greater than zero on each layer. The band is what keeps that assertion from being vacuous — the widths would also match with no reservation at all on this engine's overlay scrollbar, and it is the reservation, not the match, that carries the guarantee to a platform whose scrollbar takes real width.
|
||||
|
||||
Confirmed both directions against the built client. With the mirroring reverted and the packages rebuilt, the wheel case fails on the layer offsets, the typing case fails with it, and the golden diff reads `last draft line is on screen: false` while `textarea moved: true` — the reported symptom stated as a fixture. The resting-state case passes in both builds, which is the point: it is the state that hid the defect.
|
||||
|
||||
Note that the composer ships inside a client-module bundle, so `pnpm run build:web` alone does not pick up a change to `InputBar.tsx` — the package build must run for the browser lane to see it, and a scenario run against a stale `lib/` asserts against an older client than the tree.
|
||||
@@ -0,0 +1,77 @@
|
||||
# Agent Note: composer 的字形层跟随 textarea 的滚动偏移
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-31-composer-glyph-layer-tracks-the-textarea.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
草稿一旦超过 14 行的高度上限,就无法再滚动。光标会动,选区会动,但文字始终冻结在第 1 行——无论滚轮、拖拽还是方向键,都无法把长草稿的末尾带到可见范围内,因此约 14 行之后的内容在书写过程中既够不着也读不到。
|
||||
|
||||
高度上限本身是正常工作的。composer 的文本由两层叠放绘制(见 [InputBar](../../../../packages/client/ui-conversation/src/client/skeleton/InputBar.tsx)):`<textarea>` 持有取值、选区与光标,但它自己的字形以 `color: transparent` 渲染;用户看到的每一个字符都由其下的 `[data-input-backdrop]` 层绘制,该层同时承载 claim token 高亮、chip 与提示影子文本。这一拆分正是 chip 与高亮得以存在的前提——textarea 无法为自身文本的某个区间单独设置样式。
|
||||
|
||||
两层在几何上是耦合的,在滚动上却不是。backdrop 为 `position: absolute; inset: 0; overflow: hidden`:它只做裁剪,不做滚动,浏览器也不会把它的偏移与 textarea 关联起来。未达上限时这一点不可见,因为两层都停在偏移 0,且镜像层会把盒子撑到草稿的高度。一旦触及上限,textarea 开始滚动而 backdrop 不跟随,于是用户真正在读的那一层从不移动。
|
||||
|
||||
因此该缺陷与高度上限同龄,并且藏在静止状态背后:短草稿——也就是所有截图与既有 fixture(测试前置数据)所捕获的那个状态——在有无该耦合时渲染完全一致。
|
||||
|
||||
## 决策
|
||||
|
||||
`InputBar` 通过一个 `scroll` 监听把 textarea 的 `scrollTop` 镜像到 backdrop 上,该监听与既有的滚轮接力监听注册在同一个 effect 中(textarea 从不卸载——失效状态渲染的是同一个元素的 disabled 形态)。
|
||||
|
||||
一个监听即构成完整耦合,因为这个盒子移动的每一种方式最终都会在 textarea 上产生 `scroll` 事件:手势使它滚动;编辑会把光标滚入可见范围;草稿缩短到当前偏移之下时它会被钳位。看似需要单独处理、实则不需要的正是钳位这一种:两层共享同一滚动范围,因此它们会钳位到同一个最大值,而 textarea 的钳位本身就会触发那次完成镜像的 `scroll`。
|
||||
|
||||
这个「共享的滚动范围」并非白得,而镜像偏移只有在它成立时才是正确的。有两件事会破坏它,都是在审查中被发现的,且失效方向相同——backdrop 比 textarea 矮,于是赋值被钳制、字形落到光标之下。textarea 会在末尾换行之后为光标保留一个行盒,而 `white-space: pre-wrap` 会折叠文本节点的尾随换行、不生成任何行盒。因此以换行结尾的草稿会让 backdrop 恰好比 textarea 少一行——实测为 628 对 652——于是该赋值被钳制,滚到最底部时字形比光标落后一行。现在 backdrop 也带上了镜像层早已具备的同一枚尾行哨兵:其内容为装饰扫描的结果再加一个 `'\n'`;草稿不以换行结尾时它被同一次折叠吸收,以换行结尾时它补上缺失的那个行盒。对纯文本、尾随换行、软折行、不可断长串以及中间空行五类草稿实测,两侧范围在每种情形下均相等。
|
||||
|
||||
第二个前提是折行宽度,它是被断言的,而不是被修复的。只有 `.input` 会滚动,因此也只有 `.input` 会把内容宽度让给一条占布局宽度的滚动条;`.input` 一旦更窄,长草稿就会折出更多行——在独立环境实测,8px 的宽度差值 2 到 5 行,而宽度相等时 textarea 与 div 完全一致。在运行中的应用上、对 Playwright 自带的三个引擎实测,两个相等、一个不等:
|
||||
|
||||
| 引擎 | `.input` / `.backdrop` / `.mirror` 折行宽度 | 滚动范围 |
|
||||
|---|---|---|
|
||||
| chromium | 776 / 776 / 776 | 相等 |
|
||||
| firefox | 776 / 776 / 776 | 相等 |
|
||||
| WebKit | **768** / 776 / 776 | 所测草稿下相等 |
|
||||
|
||||
WebKit 的 textarea 把 8px 让给了自己的滚动条,而两个被裁剪的图层没有。该差距先于本次改动存在,本 PR 未予关闭;在所测草稿下滚动范围仍然相等,因此镜像不受影响,但一份恰好在该宽度上折行敏感的草稿会让 `.input` 更高、从而钳制镜像偏移。场景在测试通道所用引擎上断言了这项相等性,因此一旦回退到那种状态会显式失败,而不是悄然发生。
|
||||
|
||||
共享度量块上的 `scrollbar-gutter: stable` 曾被采用又被移除:WebKit 对 `overflow-y: auto` 应用它、对 `overflow: hidden` 不应用,于是 `.input` 仍是 768 对 776——正是它本想关闭的那个差距——同时又让 chromium 无条件损失 8px 文本宽度。要关闭它,需要一套所有引擎都认同的几何,而不是这个属性。
|
||||
|
||||
该镜像是单向的:textarea 是权威方,因为它持有光标,而浏览器滚动的目标正是光标。
|
||||
|
||||
## 曾考虑的替代方案
|
||||
|
||||
**给 backdrop 加 `overflow: auto`,让它自行滚动。** 那样它就有了一个属于自己的滚动偏移需要同步,问题原样保留,还额外多出一条画在输入框上的滚动条。backdrop 是 textarea 的投影,而不是一个可独立导航的界面。
|
||||
|
||||
**去掉 backdrop,直接为 textarea 自身文本设置样式。** 这会消除分层,连同整类失步问题一并消除。之所以否决,是因为它根本无法实现:textarea 只渲染一段统一的文本流,因此 claim token 高亮、chip 与提示影子文本——backdrop 存在的全部理由——都无从表达。为修滚动而放弃它们,是拿一个有界的缺陷去换一次功能删除。
|
||||
|
||||
**改用 `contenteditable` div 承载草稿,不再用 textarea。** 一个元素、一个滚动偏移、区间可设样式。之所以否决,是它与该缺陷的体量严重不相称:`contenteditable` 会把 IME 组词、撤销/重做、选区语义与粘贴规范化重新压回我们身上,而这些目前都由 textarea 加输入状态机处理,且状态机已持有一份以 textarea 取值语义为前提的撤销日志。
|
||||
|
||||
**在既有的滚轮处理函数里滚动 backdrop,而不是新增 `scroll` 监听。** 该处理函数本就在 textarea 上的每次滚轮时运行,看似是自然的落点。之所以否决,是它只覆盖了盒子滚动的其中一种成因:在末尾输入、`End`、方向键、拖选越过边缘、拖动滚动条,都会在没有滚轮事件的情况下移动 textarea。监听 `scroll` 是在监听事情本身,而不是它的某一个成因。
|
||||
|
||||
**用 `scrollbar-gutter: stable` 让三层一起预留滚动条 gutter。** 曾经采用,实测后回退。当初的推理是:无论平台滚动条占多少宽度,三层都预留同样多即可保持相等;而且 `overflow: hidden` 也是滚动容器,按规范应当遵守该声明。chromium 确实如此(三层各预留 8px,宽度 768/768/768)。WebKit 不然:它对 `overflow-y: auto` 预留、对 `overflow: hidden` 不预留,结果仍是 768 对 776——差距原样保留——于是该属性在唯一能观测到这一偏差的引擎上一无所获,却让每一位 chromium 用户损失 8px 文本列。改为断言该前提并记录 WebKit 的差距。
|
||||
|
||||
**改为抑制 textarea 的滚动条,而不是给另外两层预留 gutter。** 在 `.input` 上写 `scrollbar-width: none` 同样能让宽度相等,且不必收窄文本列。之所以否决:草稿超过上限后 composer 是有意显示滚动条滑块的——`.card` 正是为此绑定了 l2 滚动条 token——去掉它就等于拿走了「下面还有内容」这一唯一提示。
|
||||
|
||||
**改用 `transform: translateY(-scrollTop)` 平移 backdrop,而不是滚动它。** transform 不受内容高度钳制,因此它能把任何范围偏差——包括尾随换行这一种——一并掩盖,却并不让两层真正对齐。之所以否决,是因为这个偏差本身就是真正的缺陷:范围不等同时意味着两层对末行位置的判断不一致,把它藏在一个不受钳制的 transform 之后,只会让这一失配在任何人去测量 backdrop 的那一刻重新浮现。修正范围本身,才能让草稿高度只有一个事实来源。
|
||||
|
||||
**再加一个以已提交草稿为 key 的 layout effect 作为第二道镜像。** 该改动的第一版确实带着它,理由是:一次编辑会让两层重排却不一定让 textarea 移动,且草稿变短时两层各自独立地被钳位。这两个前提都不成立,因此在针对构建产物客户端逐个变异测试每个 hook 之后将其移除:仅禁用 layout effect 时浏览器场景全绿,而仅禁用 `scroll` 监听则会失败。输入会把光标滚入可见范围,那就是一次普通的 `scroll`;草稿变短时两层因范围相等而钳位到同一个最大值,且 textarea 的钳位同样会触发 `scroll`。该 effect 本想覆盖的那个具体隐患——React 在装饰集合形状变化时替换 backdrop 的全部子节点,从而重置其偏移——并不会发生:在 chromium 中实测,替换一个 `overflow: hidden` 盒子的全部子节点会保留 `scrollTop`(300 仍为 300),唯一会将其归零的替换是把内容缩短到偏移之下,而那正是已被覆盖的钳位情形。
|
||||
|
||||
**在 `onChange` 处理函数里同步。** 除上述同样的理由外还有其自身的问题:它在 React 把新草稿提交到 backdrop 之前触发,因而会按上一次的布局做镜像。
|
||||
|
||||
## 后果
|
||||
|
||||
- 超过上限的草稿会滚动其字形。浏览器场景实测:在 40 行草稿上做一次滚轮手势后,最后一行位于可见盒子之内,第一行已滚出上方;此前最后一行仍停在盒子下方整整一个草稿高度处,而 textarea 自身的偏移已经移动了。
|
||||
- 该耦合是单向且廉价的——一次对一个数字的赋值,没有测量,除 `scrollTop` 外没有额外的布局读取——因此不会给输入路径增加开销。
|
||||
- chip、claim token 高亮与文本引用标记在滚动时始终与其字形对齐,因为它们定位在 backdrop 内部并随之移动。装饰扫描本身没有任何改动。
|
||||
- composer 的双层设计保留了这一隐患:日后在 backdrop 旁新增的任何一层都需要同样的镜像;而任何改变某一层如何保留其末行行盒的改动,都会破坏镜像所依赖的范围相等性。e2e 场景对两者都做了断言——用户真正关心的关系(哪一行在屏幕上),以及其下的范围相等性——因此日后一旦出现偏差,失败会落在不变量上,而不是落在某张截图上。
|
||||
- 范围相等性是被断言的,而非被假定的。它正是那个能把「镜像偏移」从正确变为微妙错误的前提,并且在加入哨兵之前,它在尾随换行这一形态上确实不成立。
|
||||
- 折行宽度相等是另一个前提,而它并非普遍成立:WebKit 把 `.input` 排得比字形层窄 8px。该问题先于本次改动存在,此处保持开放,上文记录了实测数值,并在测试通道所用引擎上加了断言。一份折行恰好取决于这 8px 的草稿会在 WebKit 上钳制镜像。
|
||||
- composer 的布局没有变化。此前有一版为追求折行宽度前提而在所有平台把文本列收窄了 8px;实测表明它并不能带来该保证,因此度量与改动前保持一致。
|
||||
|
||||
## 验证
|
||||
|
||||
[input-bar.spec.tsx](../../../../packages/client/ui-conversation/tests/input-bar.spec.tsx) 中的单元用例证明镜像路径确实执行:它对两侧偏移都做了桩替换——因为 jsdom 对任何元素都报告 `scrollHeight === clientHeight` 且从不滚动任何元素——并断言 backdrop 既跟随 textarea 到新的偏移,也跟随它回到顶部。撤掉那个 `ref` 会让它失败。
|
||||
|
||||
用户可见的事实需要真实引擎,因此 [composer-draft-scroll.e2e.ts](../../../../apps/web/tests/composer-draft-scroll.e2e.ts) 在 chromium 中针对构建产物客户端测量它:在全新工作区空白会话的 composer 中放入 40 行草稿,零模型调用,用一个跨越 backdrop 自身文本的 DOM Range 报告首行与末行相对于可见盒子的位置。一个防空转守卫会先断言草稿确实溢出了设有上限的盒子。另有一个独立用例驱动尾随换行这一形态,先断言两侧范围相等,再断言字形确实抵达末尾;每一层的最大值都通过请求一个不可能的偏移再读回其钳位结果来观测,而非由 `scrollHeight` 计算得出。第三个用例断言 gutter 前提:折行宽度相等,且每层预留的带宽大于零。正是这条「带宽」使该断言不至于空转——在本引擎的 overlay 滚动条下,即使完全不预留,两侧宽度也会相等;把保证传递到滚动条真正占宽的平台上的,是那次预留,而不是这次相等。
|
||||
|
||||
已双向确认。撤掉镜像并重新构建各包后,滚轮用例在两层偏移上失败,输入用例随之失败,golden 差异读作 `last draft line is on screen: false` 而 `textarea moved: true`——即以 fixture(测试前置数据)形式陈述的原始现象。静止状态用例在两种构建下都通过,这正是要点所在:它就是掩盖了该缺陷的那个状态。
|
||||
|
||||
注意 composer 随客户端模块 bundle 一同发布,因此仅运行 `pnpm run build:web` 不会纳入对 `InputBar.tsx` 的改动——必须运行包构建,浏览器测试通道才能看到它;针对陈旧 `lib/` 运行的场景,断言的是比当前工作树更旧的客户端。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-31-english-compaction-checkpoints.md
|
||||
2026-07-31-english-compaction-checkpoints.md: dc95ed187a6ba5b86800f06ebefb2776995f9421
|
||||
2026-07-31-english-compaction-checkpoints.zh.md: 7cd4179430ed775f3807af5a02e81838e495c81e
|
||||
@@ -0,0 +1,28 @@
|
||||
# Agent Note: Compaction checkpoints use an English engineering register
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-31-english-compaction-checkpoints.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
A compaction checkpoint becomes part of the next model request's durable prefix. When a multilingual conversation leads the compactor to preserve its narrative material in the conversation language, the checkpoint can introduce a large amount of a language that is absent from the code, tool output, and existing reasoning prefix. That language then persists across later compaction cycles and can influence the conversation model's reasoning register.
|
||||
|
||||
## Decision
|
||||
|
||||
`COMPACTION_INSTRUCTION` requires an English-language internal engineering checkpoint. It asks the model to translate narrative source material as needed while preserving exact literals, including paths, commands, errors, identifiers, signatures, and quoted wording when exactness matters. The checkpoint's headings and terse engineering bullets remain the existing structured format.
|
||||
|
||||
The requirement is integrated into the first sentence of the trailing compaction instruction. The replayed system prompt, tools, and conversation history remain byte-identical to the routed request, so the change retains the prefix-cache reuse owned by the [compaction summary prefix-cache note](2026-07-21-compaction-summary-prefix-cache-reuse.md).
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
- **Leave checkpoint language to the replayed conversation** — rejected: the checkpoint is a durable prompt prefix, so preserving a transient conversational register can amplify it across later compactions.
|
||||
- **Constrain the conversation model's language** — rejected: the policy is for an internal checkpoint, not the user's visible conversation, and a conversation-wide rule would unnecessarily change normal interaction.
|
||||
- **Require ASCII-only output** — rejected: ASCII is a character-set constraint rather than an engineering-register constraint and would unnecessarily distort legitimate literals and technical material.
|
||||
- **Append a separate final English-only sentence** — rejected: stating the requirement in the instruction's opening output contract is shorter and ties it directly to the checkpoint being requested.
|
||||
|
||||
## Consequences
|
||||
|
||||
- New checkpoints normalize narrative context into English while retaining the exact strings that future tool use and code work depend on.
|
||||
- Existing checkpoint structure, compaction routing, and cache alignment are unchanged; only the final user instruction is different.
|
||||
- The direct summarization call remains outside transcript snapshots because it emits no `assistant/chunk` events. The real-loop regression instead asserts the exact final instruction received by the summarization request.
|
||||
@@ -0,0 +1,28 @@
|
||||
# Agent Note: 压缩检查点使用英语工程文体
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-31-english-compaction-checkpoints.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
压缩(compaction)检查点会成为下一次模型请求中持久存在的前缀。当多语言对话使压缩器以对话语言保留叙述性材料时,检查点可能引入大量代码、工具输出和既有推理(reasoning)前缀中均未出现的语言内容。该语言随后会在后续压缩周期中持续存在,并影响对话模型的推理文体。
|
||||
|
||||
## 决策
|
||||
|
||||
`COMPACTION_INSTRUCTION` 要求生成英语的内部工程检查点。它要求模型在必要时翻译叙述性源材料,同时保留精确的字面量;这包括路径、命令、错误、标识符、签名,以及精确性重要时的引用措辞。检查点的标题及简洁的工程项目符号仍沿用既有的结构化格式。
|
||||
|
||||
这项要求被整合到尾部压缩指令的第一句话中。回放的系统提示词、工具和对话历史与已路由请求保持字节级一致,因此该变更保留 [compaction summary prefix-cache note](2026-07-21-compaction-summary-prefix-cache-reuse.md) 所确立的前缀缓存复用。
|
||||
|
||||
## 考虑过的替代方案
|
||||
|
||||
- **让回放的对话决定检查点语言**——不采纳:检查点是持久的提示词前缀,保留短暂的对话文体可能在后续压缩中放大这种影响。
|
||||
- **约束对话模型的语言**——不采纳:该策略针对内部检查点,而不是用户可见的对话;对整个对话施加规则会不必要地改变正常交互。
|
||||
- **要求仅输出 ASCII**——不采纳:ASCII 是字符集约束,而非工程文体约束,并会不必要地扭曲合法的字面量和技术材料。
|
||||
- **在末尾追加一句独立的仅限英语要求**——不采纳:在指令开头的输出契约中说明该要求更简洁,也直接将其与所请求的检查点绑定。
|
||||
|
||||
## 后果
|
||||
|
||||
- 新检查点会将叙述性上下文规范化为英语,同时保留未来工具使用和代码工作所依赖的精确字符串。
|
||||
- 既有检查点结构、压缩路由和缓存对齐保持不变;只有最后一条 user 指令不同。
|
||||
- 直接摘要调用仍不纳入 transcript(文本记录)快照,因为它不会发出 `assistant/chunk` 事件。真实循环回归改为断言摘要请求收到的精确最终指令。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-31-hero-visible-while-blank-session-opens.md
|
||||
2026-07-31-hero-visible-while-blank-session-opens.md: b39963beffa403ef6fa44735aa88395a99139751
|
||||
2026-07-31-hero-visible-while-blank-session-opens.zh.md: b451d7c00ec7eb8d736134e738d72e5e07fd1b04
|
||||
@@ -0,0 +1,35 @@
|
||||
# Agent Note: Hero stays visible while a blank session opens
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-31-hero-visible-while-blank-session-opens.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
The conversation root has a `settling` phase for a session that is still opening while its composer reads `blank`: the hero-versus-docked outcome is unknowable until history arrives, so the composer seat is hidden (`visibility:hidden`) rather than flashing the centered hero and snapping to the docked bar. Startup auto-selection turned that guard into the defect it was meant to prevent. From the no-workspace hero, `WorkspacesService.startInitialSelection` connects the most recent workspace and opens its blank session; `openState` flips to `loading` the moment `open()` lands, so the center column went blank for the whole history round-trip and then repainted, which reads as a full-page refresh on every launch.
|
||||
|
||||
## Decision
|
||||
|
||||
`ConversationRoot` reads the session list summary's `blank` flag alongside the conversation snapshot and exempts summary-proven blank sessions from settling: `settling` additionally requires `summaryBlank !== true`, and `hero` accepts a blank composer whenever the summary proves the session blank, in every open state rather than only `loading`. A session the list already reports as blank can only land on the hero, so hiding buys nothing and costs the visible flash; the same proof holds before the open starts (`cold`) and after one fails (`error`), where the previous conditions fell through to the active phase and rendered a docked bare composer under chrome `ConversationSession` hides for blank sessions. Whenever the summary does not prove the session blank — a row reporting `blank: false`, or no row at all because the list has not caught up — `summaryBlank` is not `true` and the conservative settling hide is unchanged.
|
||||
|
||||
The summary flag and the snapshot's own `blank` are distinct sources: the snapshot describes the session being opened, the summary is the list row that already exists before the open resolves. Only the latter is available early enough to decide the phase.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Drop the settling phase entirely.** Rejected because it still earns its keep for a session with no summary row: without a prior claim about emptiness, hero-versus-docked is genuinely unknowable and the flash it prevents is the worse one.
|
||||
|
||||
**Delay the `loading` flip until history returns.** Rejected because `openState` is authoritative about the open operation; deferring it to suppress a presentation artifact would misreport the data state to every other consumer.
|
||||
|
||||
**Cross-fade or otherwise animate the settling hide.** Rejected because the column has nothing to show during the round-trip either way — the fix is to not hide content whose outcome is already known, not to decorate the hiding.
|
||||
|
||||
## Deferred
|
||||
|
||||
The no-session→session tree relocation in `ConversationRoot` (the hero/composer subtree moves into the `conversation.session` outlet) still rebuilds the composer DOM on the same transition; removing it means moving `conversation.session` to `session-maybe` scope, a slot-contract change that needs its own proposal.
|
||||
|
||||
Object-layer reference churn found while diagnosing this — no-op projections minting fresh snapshots, the create path projecting twice, `select()` using `notifyNow` from async continuations — is real but independent of the visible flash.
|
||||
|
||||
## Consequences
|
||||
|
||||
Startup auto-selection renders the hero immediately and keeps the composer seat and header visible through the history round-trip, so launching into a recent workspace no longer looks like a page reload. Sessions whose summary does not prove them blank keep the previous settling behavior, so the guard still covers the case it was written for. Skeleton tests pin all three summary shapes: a row reporting `blank: false` settles, an absent row settles, and a summary-proven blank session opening under `loading` renders hero chrome with a live textarea.
|
||||
|
||||
The assembled coverage is `apps/web/tests/startup-auto-selection.e2e.ts` (keyless web browser lane): it registers a workspace, holds the `session.history` response open at the browser's network boundary, and asserts the visible frame while the auto-selected open is in flight — hero phase, hero title, painted composer — plus a recorded phase timeline of exactly `['hero']` for the whole load. Holding the round-trip is what makes it a regression test rather than a race: against a loopback host the open settles too fast to sample, and with the exemption reverted the held window is precisely when the root reports `settling`.
|
||||
@@ -0,0 +1,35 @@
|
||||
# Agent Note: 空白会话打开期间保持 hero 可见
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-31-hero-visible-while-blank-session-opens.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
会话根节点为"正在打开且 composer 处于 `blank`"的会话保留了一个 `settling` 阶段:在历史记录返回之前,hero 与 docked 的归属不可知,因此宁可隐藏 composer 座位(`visibility:hidden`),也不要先闪出居中的 hero 再跳到底部输入条。启动时的自动选择把这道防护变成了它本要防止的缺陷。从无工作区的 hero 进入时,`WorkspacesService.startInitialSelection` 会连接最近的工作区并打开其空白会话;`open()` 一落地 `openState` 立即翻为 `loading`,中间栏因此在整个历史往返期间保持空白,随后重绘一次——每次启动看起来都像整页刷新。
|
||||
|
||||
## 决策
|
||||
|
||||
`ConversationRoot` 在读取会话快照的同时读取会话列表摘要的 `blank` 标志,并让"摘要已证明为空白"的会话豁免 settling:`settling` 额外要求 `summaryBlank !== true`,而 `hero` 在摘要证明会话为空白时接受处于 blank 的 composer——覆盖全部 open state,而非仅 `loading`。列表已报告为空白的会话只可能落到 hero,因此隐藏毫无收益,只换来一次可见闪烁;同一份证明在打开开始之前(`cold`)与打开失败之后(`error`)同样成立,而此前的条件会在这两种状态下落到 active 阶段,在 `ConversationSession` 为空白会话隐藏的外壳之下渲染出一条停靠的裸 composer。只要摘要没有证明会话为空白——无论是报告 `blank: false` 的行,还是列表尚未跟上因而根本没有该行——`summaryBlank` 都不为 `true`,保守的 settling 隐藏行为保持不变。
|
||||
|
||||
摘要标志与快照自身的 `blank` 是两个不同来源:快照描述正在打开的这个会话,摘要则是在打开操作完成之前就已存在的列表行。只有后者足够早,可用于决定阶段。
|
||||
|
||||
## 备选方案
|
||||
|
||||
**彻底移除 settling 阶段。** 否决,因为对没有摘要行的会话它仍有价值:在缺少任何关于"是否为空"的先验断言时,hero 与 docked 的归属确实不可知,而它所防止的那种闪烁更糟糕。
|
||||
|
||||
**推迟 `loading` 的翻转,直到历史返回。** 否决,因为 `openState` 是打开操作的权威状态;为了压制一个呈现层瑕疵而推迟它,会向其他所有消费者误报数据状态。
|
||||
|
||||
**为 settling 的隐藏加交叉淡入或其他动画。** 否决,因为无论如何该栏在往返期间都没有内容可展示——正确的修复是不隐藏结局已知的内容,而不是把隐藏装饰得好看些。
|
||||
|
||||
## 推迟事项
|
||||
|
||||
`ConversationRoot` 中"无会话→有会话"的树位置迁移(hero/composer 子树移入 `conversation.session` 出口)仍会在同一次转换中重建 composer 的 DOM;消除它意味着把 `conversation.session` 移到 `session-maybe` 作用域,这是一次插槽契约变更,需要单独立项。
|
||||
|
||||
诊断期间发现的对象层引用抖动——空操作投影铸造出新的快照、创建路径重复投影一次、`select()` 在异步续体中使用 `notifyNow`——确实存在,但与这次可见闪烁相互独立。
|
||||
|
||||
## 影响
|
||||
|
||||
启动自动选择会立即渲染 hero,并在整个历史往返期间保持 composer 座位与 header 可见,因此启动进入最近工作区不再像页面重载。摘要未证明为空白的会话保持原有的 settling 行为,这道防护仍覆盖它当初针对的场景。骨架测试固定了摘要的三种形态:报告 `blank: false` 的行进入 settling;根本没有该行同样进入 settling;摘要已证明为空白的会话在 `loading` 期间渲染 hero 外壳与可用的文本框。
|
||||
|
||||
组装级覆盖是 `apps/web/tests/startup-auto-selection.e2e.ts`(无密钥的 Web 浏览器泳道):它注册一个工作区,在浏览器网络边界上扣住 `session.history` 的响应,并在自动选择的打开仍在飞行途中断言可见画面——hero 阶段、hero 标题、已绘制的 composer——外加整次加载记录到的阶段时间线恰好为 `['hero']`。扣住这次往返正是它成为回归测试而非竞态的原因:对着回环主机,打开会快到无从采样;而一旦回退这条豁免,被扣住的这段窗口恰恰就是根节点报告 `settling` 的时刻。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-31-same-basename-workspace-adoption.md
|
||||
2026-07-31-same-basename-workspace-adoption.md: ed53804ea64df0d61db16e579c3d65af803dbb97
|
||||
2026-07-31-same-basename-workspace-adoption.zh.md: 82cfb7d90afca28f8e666742a758fda0202909f3
|
||||
@@ -0,0 +1,37 @@
|
||||
# Agent Note: Same-basename Workspace adoption
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-31-same-basename-workspace-adoption.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
A Workspace is identified by its stable id and canonical directory path, while its title is mutable display metadata. The registry nevertheless rejected a new canonical path when its basename-derived title matched another Workspace. Common directory layouts such as `/a/xx` and `/b/xx` therefore could not coexist in the Web UI, even though the [domain design](../../proposed/architecture/2026-07-24-domain-kv-storage-and-workspace.md) already permits duplicate titles and every client operation addresses a Workspace by id.
|
||||
|
||||
## Decision
|
||||
|
||||
`ctx.workspace.create(path, title?)` treats canonical path as the only uniqueness key. Repeating the same path remains idempotent and preserves the registered title. Different canonical paths create different Workspace records and may share a title; when no title is supplied, each record still derives its title from `basename(path)` without suffixing or rewriting it.
|
||||
|
||||
The Host's `workspace.create({ path })` adoption route inherits that rule. The Workspace manager, picker, grouping tree, selection, rename, deletion, and Session creation continue to use `WorkspaceId`, so equal labels neither merge records nor redirect an operation. The sidebar hover card exposes each canonical path when the labels need disambiguation.
|
||||
|
||||
Explicit naming remains stricter. `workspace.create({ name })` and `workspace.rename` continue to reject a title already registered, as described by [manual Workspace naming](../feature/2026-07-25-session-list-browsing-and-manual-order.md). This prevents a user from deliberately introducing another ambiguous label while accepting collisions imposed by existing directory names. The path-adoption rule supersedes only the title-conflict clauses in the [Workspace product flow](../feature/2026-07-25-workspace-ui-product-flow.md) and [native directory picker](../feature/2026-07-27-native-workspace-directory-picker.md).
|
||||
|
||||
The durable schema does not change: Workspace records already store id, path, and title independently, bootstrap can derive equal basenames, and startup validates duplicate paths rather than titles.
|
||||
|
||||
## Verification
|
||||
|
||||
Workspace registry and Host API tests create two real directories under different parents with the same final segment and assert distinct ids, paths, and durable order. The picker component renders equal labels as separate id-keyed entries. The keyless Web browser scenario adopts both directories through the composed directory flow and observes two registered and rendered Workspaces.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Keep title uniqueness and reject the second directory.** A display label would remain an accidental identity key and ordinary multi-root layouts would stay impossible to register.
|
||||
|
||||
**Suffix colliding titles automatically.** A generated label such as `xx (2)` would no longer be the directory-derived title, would need stable allocation rules across deletion and reload, and would add state solely to conceal an identity mistake.
|
||||
|
||||
**Use the full path as every Workspace title.** This removes the collision but makes the primary navigation label unnecessarily long. The full path remains available in the hover detail while the concise basename stays useful.
|
||||
|
||||
**Permit collisions from explicit rename and create-by-name operations too.** The registry supports that state, but those operations intentionally ask the user to choose a display name. Retaining their conflict response preserves the existing naming guard without blocking filesystem-selected paths.
|
||||
|
||||
## Consequences
|
||||
|
||||
Two Workspace rows may carry the same visible title. They remain independently selectable and actionable because ids own identity; users can inspect the path or rename either row to disambiguate it. An explicit rename cannot select another row's current title, including a title that arose from same-basename adoption. No storage migration or compatibility path is required.
|
||||
@@ -0,0 +1,37 @@
|
||||
# Agent Note: 接纳 basename 相同的 Workspace
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-31-same-basename-workspace-adoption.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
Workspace 的身份由其稳定 id 和规范目录路径确定,标题则是可变的显示元数据。然而,只要新规范路径按 basename 派生出的标题与另一个 Workspace 相同,注册表就会拒绝该路径。因此,`/a/xx` 和 `/b/xx` 等常见目录布局无法同时出现在 Web UI 中,尽管[领域设计](../../proposed/architecture/2026-07-24-domain-kv-storage-and-workspace.md)早已允许标题重复,而且每项客户端操作都通过 id 定位 Workspace。
|
||||
|
||||
## 决策
|
||||
|
||||
`ctx.workspace.create(path, title?)` 仅以规范路径作为唯一性键。重复传入同一路径仍保持幂等,并保留已注册的标题。不同的规范路径会创建不同的 Workspace 记录,且可以共用标题;未提供标题时,每条记录仍从 `basename(path)` 派生标题,不添加后缀,也不改写标题。
|
||||
|
||||
Host 的 `workspace.create({ path })` 接纳入口沿用该规则。Workspace 管理器、选择器、分组树、选择、重命名、删除和 Session 创建仍使用 `WorkspaceId`,因此相同标签既不会合并记录,也不会把操作指向其他记录。需要区分相同标签时,侧边栏悬停详情卡会显示各自的规范路径。
|
||||
|
||||
显式命名仍采用更严格的规则。`workspace.create({ name })` 和 `workspace.rename` 仍会拒绝已注册的标题,具体见[手动 Workspace 命名](../feature/2026-07-25-session-list-browsing-and-manual-order.md)。这既防止用户主动引入另一个难以区分的标签,又允许既有目录名称造成的重名。路径接纳规则仅取代 [Workspace 产品流](../feature/2026-07-25-workspace-ui-product-flow.md)和[原生目录选择器](../feature/2026-07-27-native-workspace-directory-picker.md)中的标题冲突条款。
|
||||
|
||||
持久化 schema 未变:Workspace 记录本就分别存储 id、path 和 title,引导初始化可以派生出相同的 basename,启动校验检查的是重复路径而非重复标题。
|
||||
|
||||
## 验证
|
||||
|
||||
Workspace 注册表与 Host API 测试会在不同父目录下创建两个末级名称相同的真实目录,并断言其 id 和路径互不相同,且持久顺序正确。选择器组件将相同标签渲染为按 id 区分的独立条目。无密钥 Web 浏览器场景通过组合而成的目录流程接纳这两个目录,并观察到两个 Workspace 均已注册且完成渲染。
|
||||
|
||||
## 考虑过的替代方案
|
||||
|
||||
**保持标题唯一,并拒绝第二个目录。** 显示标签仍会意外充当身份键,普通的多根目录布局仍无法注册。
|
||||
|
||||
**自动为冲突标题添加后缀。** 像 `xx (2)` 这样的生成标签将不再是从目录派生的标题;系统还需要制定跨删除与重载保持稳定的分配规则,并且只为掩盖身份判定错误而增加状态。
|
||||
|
||||
**将完整路径用作每个 Workspace 的标题。** 这会消除冲突,却使主导航标签不必要地过长。完整路径仍可在悬停详情中查看,而简洁的 basename 仍有价值。
|
||||
|
||||
**也允许显式重命名和按名称创建操作产生重名。** 注册表支持这种状态,但这些操作本就是明确要求用户选择显示名称。保留冲突响应可维持现有命名防护,同时不阻止从文件系统选取的路径。
|
||||
|
||||
## 后果
|
||||
|
||||
两个 Workspace 行可能显示相同的可见标题。id 负责身份,因此两行仍可独立选择和操作;用户可以查看路径或重命名任一行以作区分。显式重命名不能采用另一个行当前使用的标题,即使该标题源自 basename 相同的目录接纳。无需存储迁移或兼容路径。
|
||||
@@ -0,0 +1,6 @@
|
||||
# Bilingual-pair consistency record (docs/i18n/README.md): the git blob hash of each
|
||||
# side as of the last confirmed-consistent state. Both languages carry equal authority;
|
||||
# after editing either side, bring the other along and re-record with:
|
||||
# pnpm run verify-translation-pairing --write .agents/notes/implemented/bug-fix/2026-07-31-web-stop-preserves-queue.md
|
||||
2026-07-31-web-stop-preserves-queue.md: 943e95d6951a28929c4f8ce4d0b6e17224b08ede
|
||||
2026-07-31-web-stop-preserves-queue.zh.md: bbadd8adf8fd5bb0604ef87d322e48ce4c2ed759
|
||||
@@ -0,0 +1,37 @@
|
||||
# Agent Note: Web stop preserves pending Queue
|
||||
|
||||
Status: implemented
|
||||
|
||||
English | [中文](2026-07-31-web-stop-preserves-queue.zh.md)
|
||||
|
||||
## Problem
|
||||
|
||||
The Web stop button reached `session.cancel`, which mapped to broad `agent.cancel({ kind: 'user' })`. During an active turn, ordinary composer submissions are already accepted as independently addressable Queue occurrences. Broad cancellation discarded every occurrence when the user intended to stop only the current generation, conflating turn interruption with the Queue's explicit delete operation.
|
||||
|
||||
The browser cannot repair that loss by resending visible rows. It does not own their live `InboxItemId`, wake policy, or claim race, and a resend can duplicate work that the Host has already claimed.
|
||||
|
||||
## Decision
|
||||
|
||||
`session.cancel` is the Web Host API's active-turn stop. It calls `agent.cancel({ kind: 'user' }, { keepInbox: true })`, preserving pending inbox work while cooperatively aborting the current turn. The underlying option preserves queued and steering entries; the Web Queue projection continues to expose only queued entries.
|
||||
|
||||
The AgentLoop starts no concurrent replacement turn. It closes and flushes the interrupted turn, reaches cancellation quiescence, and then claims the next waking queued occurrence through its existing FIFO driver. That claim emits `agent/inbox/dequeue`, so the Host's authoritative `session/queue` snapshot retires the claimed row and leaves the remaining tail visible. The browser neither resends nor promotes any row. Work that ignores cancellation delays this handoff until it settles.
|
||||
|
||||
This mapping changes only the Host `session.cancel` endpoint used by Web clients. The default `Agent.cancel()` contract remains broad, ACP and TUI retain their existing cancellation policies, and `AgentHandle.dispose()` still clears pending work during teardown. Queue row removal remains the explicit Web action for discarding one pending occurrence.
|
||||
|
||||
## Alternatives considered
|
||||
|
||||
**Keep broad cancellation for the stop button.** Rejected because stopping one generation should not destroy independently queued user intent; the Queue already owns explicit deletion.
|
||||
|
||||
**Resend the next row from the browser after cancellation.** Rejected because the Host owns occurrence identity and claim order. Client resubmission can duplicate work, reorder the FIFO, or race an authoritative dequeue.
|
||||
|
||||
**Start the next turn before cancelled work reaches quiescence.** Rejected because two turns would concurrently mutate one session log and share Agent-owned resources. Cooperative cancellation waits truthfully for the active work to settle.
|
||||
|
||||
**Add a wire option for broad versus preserving cancellation.** Rejected until the Web product has a separate “stop and clear Queue” interaction. The existing stop button has one policy, while per-row delete already supplies the current discard control.
|
||||
|
||||
## Verification
|
||||
|
||||
AgentLoop coverage holds an active model stream, queues two waking turns, cancels with `keepInbox`, and pins the aborted-then-completed turn reasons, FIFO user-message order, absence of discard events, and eventual idle state. The keyless Web scenario drives the built composition over HTTP/SSE: it stops one hung turn, observes the next queued occurrence start while the tail remains visible, stops that turn, and observes the final queued occurrence complete. Its accessibility snapshot pins the intermediate preserved-Queue state.
|
||||
|
||||
## Consequences
|
||||
|
||||
Web stop preserves accepted queued intent and advances it automatically after truthful cancellation settlement. Queue rows may remain visible while uncooperative active work winds down, and external steering preserved by the same inbox option can enter the next admitted turn even though Web does not render steering in QueueDock. A future bulk-clear interaction requires an explicit product action rather than overloading stop.
|
||||
@@ -0,0 +1,37 @@
|
||||
# Agent Note: Web 停止操作保留待处理 Queue
|
||||
|
||||
Status: implemented
|
||||
|
||||
[English](2026-07-31-web-stop-preserves-queue.md) | 中文
|
||||
|
||||
## 问题
|
||||
|
||||
Web 停止按钮调用 `session.cancel`,后者映射到广义 `agent.cancel({ kind: 'user' })`。在活动轮次期间,普通 composer 提交已经被接纳为可独立寻址的 Queue 入队项。用户只想停止当前生成时,广义取消却会丢弃所有入队项,混淆了轮次中断与 Queue 的显式删除操作。
|
||||
|
||||
浏览器无法通过重发可见行修复这一损失。它不拥有这些行的实时 `InboxItemId`、唤醒策略或认领竞态;重发还可能重复 Host 已认领的工作。
|
||||
|
||||
## 决策
|
||||
|
||||
`session.cancel` 是 Web Host API 的活动轮次停止操作。它调用 `agent.cancel({ kind: 'user' }, { keepInbox: true })`,在协作式中止当前轮次的同时保留待处理 inbox 工作。底层选项会保留 queued 和 steering 入队项;Web Queue 投影继续只暴露 queued 入队项。
|
||||
|
||||
AgentLoop 不会启动并发的替代轮次。它会关闭并 flush 被中断的轮次,达到取消的完全停稳,然后通过现有 FIFO 驱动器认领下一个可唤醒的 queued 入队项。该认领会发出 `agent/inbox/dequeue`,因此 Host 的权威 `session/queue` 快照会退役已认领行,并使剩余队尾保持可见。浏览器既不重发,也不提升任何行。忽略取消的工作会延迟这一交接,直到该工作结算。
|
||||
|
||||
该映射只更改 Web 客户端使用的 Host `session.cancel` 端点。`Agent.cancel()` 默认契约仍为广义取消,ACP 和 TUI 保留既有取消策略,`AgentHandle.dispose()` 在拆卸期间仍会清除待处理工作。移除 Queue 行仍是用于丢弃单个待处理入队项的显式 Web 操作。
|
||||
|
||||
## 考虑过的替代方案
|
||||
|
||||
**停止按钮继续使用广义取消。** 之所以否决:停止一次生成不应销毁已独立排队的用户意图;Queue 已拥有显式删除操作。
|
||||
|
||||
**取消后由浏览器重发下一行。** 之所以否决:Host 拥有入队项标识和认领顺序。客户端重新提交可能重复工作、重排 FIFO,或与权威出队产生竞态。
|
||||
|
||||
**被取消工作达到完全停稳之前启动下一轮次。** 之所以否决:两个轮次会并发修改同一会话日志,并共享 Agent 拥有的资源。协作式取消会如实等待活动工作结算。
|
||||
|
||||
**为广义取消与保留式取消添加协议选项。** 之所以否决:在 Web 产品提供独立的「停止并清空 Queue」交互之前,不需要此选项。现有停止按钮只有一项策略,而逐行删除已提供当前的丢弃控件。
|
||||
|
||||
## 验证
|
||||
|
||||
AgentLoop 覆盖会保持一个活动模型流,将两个可唤醒轮次排队,使用 `keepInbox` 取消,并固定验证先中止、后完成的轮次原因,FIFO 用户消息顺序,不存在 discard 事件,以及最终空闲状态。无密钥 Web 场景通过 HTTP/SSE 驱动已组装组合:它停止一个卡住的轮次,观察队尾保持可见时下一个 queued 入队项开始,再停止该轮次,并观察最后一个 queued 入队项完成。其可访问性快照固定了中间的 Queue 保留状态。
|
||||
|
||||
## 后果
|
||||
|
||||
Web 停止会保留已接纳的排队意图,并在取消如实结算后自动推进。不配合取消的活动工作收尾时,Queue 行可能仍保持可见;由同一 inbox 选项保留的外部 steering 可以进入下一个已接纳轮次,尽管 Web 不会在 QueueDock 中渲染 steering。未来的批量清空交互需要显式的产品操作,而不是过载停止。
|
||||
Reference in New Issue
Block a user