Add @deepseek-ai/dsh-tool-todo (a new packages/todo/ group): a model-facing
todo_write(todos: [{content, status}]) tool with whole-list-replace semantics.
Each call appends the full list as a todo/write event to the calling agent's
session log; the current list is the most recent such event (last-write-wins).
Single-owner — a non-agent caller is rejected. Beyond the schema's
type/required/enum checks, execute rejects empty/duplicate content and more than
one in_progress task, narrowing the loosely-typed args into a real TodoItem[].
Both UIs render off the existing session/event: the stdio UI prints a glyphed
checklist; the ACP bridge maps the list to a `plan` sessionUpdate (todosToPlan
synthesizes the priority ACP requires; status maps 1:1). Wired into the
coding-agent, acp-agent, and snapshot example configs with a system-prompt nudge.
Tests: unit (schema, validation, append/replace, no-agent rejection, presentCall,
HMR-safety, Loader export-shape guard), full-loop integration through the agent
loop, the ACP todosToPlan mapping + stream-update arm, the stdio render arm, and
a session/load replay that re-emits the plan. New-group TS wiring added to
tsconfig.base/json/build. RFC + a doc-inventory sweep (architecture, packages
README, AGENTS layout, cookbook group list, example READMEs) ship with it.
The todo-plan ACP snapshot scenario is recorded separately (needs an API key).
94 lines
3.8 KiB
YAML
94 lines
3.8 KiB
YAML
# The acp-agent plugin tree: the ACP server. Also the snapshot RECORD config
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# (the dsh-acp-agent bin selects it for DSH_SNAPSHOT=record): a real llm-deepseek
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# run whose persisted log the snapshot harness harvests. Just the two swappable
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# backends — the DeepSeek adapter and the local bash executor — plus the ACP
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# server app (@deepseek-ai/dsh-acp-agent), which bundles the agent-core spine,
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# JSONL persistence, and the ACP bridge.
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#
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# CRITICAL: this tree loads NO stdout logger and NO hmr — stdout is reserved for
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# the ACP JSON-RPC protocol (see packages/ui/acp). That guarantee is now a
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# property of @deepseek-ai/dsh-acp-agent (it contains no logger entry), not a
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# leaf convention: there is no logger here to get wrong.
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#
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# Requires DEEPSEEK_API_KEY (and optionally DEEPSEEK_BASE_URL) — the
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# dsh-acp-agent bin loads the gitignored repo-root .env first (on STDERR only).
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# The DeepSeek adapter.
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- id: llm-deepseek
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name: '@deepseek-ai/dsh-llm-deepseek'
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config:
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apiKey: !!js process.env.DEEPSEEK_API_KEY
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baseURL: !!js process.env.DEEPSEEK_BASE_URL
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models:
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- deepseek-v4-flash
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- deepseek-v4-pro
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# Local bash executor (the agent's only tool, via agent-core's tool-bash schema).
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- id: bash
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name: '@deepseek-ai/dsh-bash-local'
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config:
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timeoutMs: 60000
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# The ACP server app: the agent-core spine + JSONL persistence + the ACP bridge.
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# Persistence root: $DSH_SNAPSHOT_SESSIONS_ROOT when the snapshot harness sets it
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# (so it can harvest / isolate the log), else ./.sessions for the demo.
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- id: acp-agent
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name: '@deepseek-ai/dsh-acp-agent'
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config:
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model: deepseek-v4-flash
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persistenceRoot: !!js process.env.DSH_SNAPSHOT_SESSIONS_ROOT ?? './.sessions'
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systemPrompt: |
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You are a coding assistant driven over the Agent Client Protocol.
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Your tools are bash (plus bash_output/bash_kill for background tasks)
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and subagent. Do ALL file operations through bash: read with
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cat/sed/head, search with grep, write with heredocs (cat <<'EOF' >
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file), edit with sed or a rewrite. Each bash call runs in a fresh
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shell — pass workdir instead of cd. Check the [exit code: N] marker;
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verify your work. Keep answers brief and factual.
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Use the subagent tool to delegate a focused, self-contained subtask to
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a fresh child agent (it works in its own context and returns only its
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final result) — give it a complete, standalone instruction.
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For multi-step work, use the todo_write tool to track a task list:
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send the WHOLE list each call (it replaces the previous one), keep
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exactly one task in_progress, and mark a task completed as soon as it
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is done. Skip it for trivial single-step tasks.
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# The subagent seam + both in-process backends + two model-facing tools, as leaf
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# entries after the app (which provides ctx.agents/ctx.tools). spawn (a fresh
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# child) and fork (a child seeded with the parent's completed-turn prefix) are
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# both reachable by the model: dsh-tool-subagent is loaded once per backend with
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# a distinct toolName (subagent → spawn, subagent_fork → fork), so a multi-child
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# scenario can exercise both transports.
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- id: subagent
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name: '@deepseek-ai/dsh-subagent'
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- id: subagent-spawn
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name: '@deepseek-ai/dsh-subagent-spawn'
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config:
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providerName: spawn
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- id: subagent-fork
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name: '@deepseek-ai/dsh-subagent-fork'
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config:
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providerName: fork
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- id: tool-subagent
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name: '@deepseek-ai/dsh-tool-subagent'
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config:
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provider: spawn
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toolName: subagent
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- id: tool-subagent-fork
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name: '@deepseek-ai/dsh-tool-subagent'
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config:
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provider: fork
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toolName: subagent_fork
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# The model-facing todo_write tool: whole-list task tracking written to the
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# session log (todo/write), surfaced to the ACP client as a `plan` update.
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- id: tool-todo
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name: '@deepseek-ai/dsh-tool-todo'
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