Files
deepseek-harness/docs/architecture.md
Dudu-0223 a76285c4e6 Merge origin/master into timeout-design
Resolve conflicts from master's catalog/doc refactors landing alongside the
tool-call timeout work:
- knip.json: keep both new workspace entries (util/timeout + support/acp-snapshot).
- tool-web/src/fetch.ts: keep the timeout_ms removal, adopt master's richer
  JSDoc @param/@returns style on parseFetchArgs/presentFetchCall.
- tools/README.md: keep the tools/execute pipeline wording, adopt master's
  flattened docs/tool-catalog.md path.
- Regenerate every generated doc (cordis-catalog, tool-catalog, config-catalog,
  doc-graphs, module-graph) so they carry both master's changes and the
  tools/execute event + timeout-policy package.
- Add @param/@returns to toolTimeoutResult for master's new verify-export-jsdoc gate.
2026-07-08 11:18:27 +08:00

13 KiB
Raw Blame History

DeepSeek Harness Architecture

The DeepSeek Harness SDK is an SDK for building agent harnesses using the Cordis framework. The governing principle is simple: everything is a plugin. For example, the shipped agent loop is just one plugin in the default bundle, not a privileged kernel.

Read this page as the system map before changing packages/. It explains how the runtime is shaped, how the default loop moves work, where state lives, and where extensions attach. Type shapes live in core-data-structures/; exact event and service signatures live in the generated events and services catalogs; package contracts live in the package map; rationale lives in the RFCs. If Cordis itself is new to you, start with the Cordis primer.

System Shape

A running harness is one Cordis context. Packages contribute service keys, typed events, and disposable registrations to that context. Services are the stable call surfaces (ctx.llm, ctx.tools, ctx.sessions); events are interception and notification points (agent/request, tools/pre-execute, session/event); registrations install prompt sections, tool schemas, providers, adapters, and listeners.

The default distribution is a composition, not a hierarchy. packages/core/ is a repository grouping for the default agent spine; capability seams around it are equally first-class plugins from a Cordis perspective.

Default Service Spine

ctx key Package Role
ctx.sessions dsh-session in-memory event-sourced sessions
ctx.systemPrompt dsh-system-prompt ordered prompt sections, tool schemas, and prompt variables
ctx.tools dsh-tools tool registry and execution pipeline
ctx.agents dsh-agent live agent registry, public Agent handle, agent/* vocabulary
ctx.agentLoop dsh-agent-loop shipped ReactLoopAgent driver

Capability Services

ctx key Package family Role
ctx.llm llm/ adapter registry and streaming model calls
ctx.bash bash/ foreground/background command execution
ctx.fs fs/ filesystem provider primitives and policy events
ctx.web web/ search/fetch provider registries
ctx.compact compact/ session-surface compaction
ctx.subagents subagent/ named delegation providers
ctx.sessionPersistence session-persistence/ durable storage for session logs

Event Surface

Events are the harness extension API. Each service owns the vocabulary for the behavior it controls, and the generated events catalog is the exhaustive reference. The producer/consumer map shows which packages emit or listen to each event.

Event Domains

Use the event domain to decide where new behavior belongs:

  • Session events are durable, replayable facts. Turn and step boundaries, user input, assistant output, tool calls, tool results, steering, compaction records, and tool-owned durable facts append to the session log and flow through session/event.
  • Agent events are live runtime surfaces. They carry the live Agent handle for status, diagnostics, prompt admission, call-config shaping, result validation, and continuation policy.
  • Capability events belong to the seam that owns the action. tools/*, llm/*, system-prompt/*, fs/*, and subagent/* let policy and adapters attach without importing the loop.

Interception Semantics

Waterfall events behave like around-middleware: a listener delegates by calling next() and vetoes or takes over by returning without it. The full rule lives in Cordis waterfall semantics.

Default Loop Lifecycle

The shipped loop drains queued work, assembles a request, streams a model answer, executes tools, decides whether to continue, and checkpoints durable state. The important architecture is where it pauses: each pause is a documented service call or event seam that another plugin can program against.

A session is one agent's append-only event log. A turn drains one queued batch and runs until the model stops asking for tools and no plugin requests continuation. A step is one model request plus the tool executions caused by that response. In the flow below (sequence companion), quoted names are durable session events and event names are extension seams.

Turn Flow

create agent -> emit agent/session-start(source)
forever:
  wait for queued messages
  emit agent/status(running)
  TURN:
    'turn/start'
    each queued message -> agent/prompt-submit
      allowed prompt -> 'user/message' plus injected context
    every prompt blocked -> 'turn/end'(rejected)
    STEP loop:
      drain steering
      assemble system prompt and tool schemas
      agent/pre-step
      'step/start'
      snapshot the derived messages (the reconstruction boundary)
      agent/request (config only) -> log request/header -> llm/stream (frozen)
        'assistant/chunk'
      agent/step-result
      'assistant/message'
      each tool call:
        'tool/call'
        tools/pre-execute -> tools/execute -> tools/post-execute
        'tool/result'
      append post-tool context and steering
      'step/end'
      agent/turn-continuation
      stop unless tools or continuation policy ask for another step
    'turn/end'
    checkpoint persistence and notify idle/running status

Prompt assembly is single-path: renderPrompt(assemble({ agent })) IS the system prompt sent to the model. Plugins contribute ordered sections (static or computed from the per-call AssembleContext), tool schemas, and named variables interpolated as {{name}} at render — strictly, so an unknown or valueless reference fails the turn instead of shipping a hole. dsh-system-prompt itself owns the openers — the static harness:identity section (order 100) and the deployment's persona (order 0, from its persona config, shared by every agent in the context) — while the shipped loop registers the model/cwd variables; prompt-fact ownership is pinned by the prompt-variables RFC.

Post-tool context lands after all tool results so tool-call/result adjacency stays stable. Steering drains between steps; leftover steering after a turn is re-queued as ordinary input.

Failure Boundaries

The turn is the containment boundary. A throwing listener, adapter error finish, or failed step ends the current turn with an error reason and reports live diagnostics through agent/error; it does not kill the driver loop. cancel() clears queued and steering work, aborts the active model/tool boundary when possible, and records the appropriate turn end. Disposal stops the loop, awaits quiescence, unregisters the agent, and lets service disposers drain.

Every session event is turn-enclosed. Reloading a crashed session preserves the interrupted tail and closes it with a synthetic interrupted turn end. A failure after the durable turn has closed reports through agent/error only because no safe in-turn position remains. A turn ends with one TurnEndReason (completed, aborted, error, disposed, max-tokens, rejected, or interrupted); per-variant semantics are in session.md § TurnEndReasonMap.

Agent Handles

ctx.agents owns live agents and returns an AgentHandle { agent, dispose() }. Agent is the surface other plugins drive: send() queues work, steer() injects mid-turn content, inject() appends context and opens a one-shot injection turn when idle, cancel() is the public stop primitive, and whenIdle() observes quiescence. Lifecycle owners tear down with await dispose().

State And Model Surface

Session Log

The session log is the source of truth. deriveMessages() projects session events into the Message[] sent to the model; raw assistant/chunk events stay in the log for replay and UI fidelity. Replay, fork, resume, transcript rendering, telemetry, and persistence all derive from the same event stream.

Model-visible ⟺ logged: the log reconstructs every request — messages at step/start, headers by folding request/header — and dev invariants assert this (reconstructability RFC).

Durability is a plugin concern. Persistence backends buffer synchronous session/event notifications and the loop awaits a turn-end checkpoint before moving on. The SessionPersistence seam stores SessionEvent directly, with metadata in SessionHeader; JSONL and SQLite share one contract suite.

Model Content

Messages are arrays of typed content blocks (text, reasoning, tool-call, tool-result). The union derives from the merge-extensible ContentBlockMap; the same pattern types MessageSource, FinishReason, TurnTrigger, and TurnEndReason. New block types are coordinated across adapters, UI bridges, compaction pricing, and persistence, so block vocabulary remains a repo-wide contract.

Streaming is a raw chunk protocol (block-start through finish) with BlockAssembler as the shared chunk-to-block assembler. The loop logs raw chunks while assembling them for dispatch. LlmAdapter is the provider seam: subclass, implement stream(), and register with ctx.llm.registerAdapter(models, adapter). StreamChunk conventions live in llm-streaming.md.

Extension And Composition

Capability Pattern

A swappable capability usually splits into interface / implementation / consumer: the interface owns the ctx key and vocabulary; an implementation registers a backend; a consumer exposes model-facing behavior through ctx.tools or prompt assembly. The bash trio is the reference shape, and the capability seam graph shows the current package families.

Some seams bend the template deliberately. LLM keeps interface and consumer vocabulary together because adapters are the implementations. Filesystem adds policy as event gates around provider primitives. Web is one service with search and fetch provider registries, so provider swaps do not rename model tools. Subagents use a named provider registry because multiple delegation backends can coexist; spawn starts fresh, fork seeds from the parent's completed-turn prefix, and ACP can drive an out-of-process child (subagent.md).

Bundles And Apps

dsh-agent-core is the default composition bundle: one plugin loading the providerless spine as code (README). App packages compose it with a front door and own the boot bin: dsh-stdio-agent for the terminal REPL, and dsh-acp-agent for ACP over JSON-RPC stdio with no stdout logger (ui/). A deployment is a thin cordis.yml leaf: swappable backends, one app entry, and optional product tools (examples/, runnable wirings, graph atlas).

Where New Behavior Goes

New behavior should attach to a documented seam; changing the shipped loop requires updating this map.

Goal Mechanism
Add a model provider register an adapter on ctx.llm
Add a model-facing capability register a tool on ctx.tools; schemas flow into prompt assembly
Add command execution implement and register a ctx.bash backend
Add filesystem access or policy implement a ctx.fs provider or listen on fs/* policy events
Intercept prompts, requests, tool use, or continuation listen on the relevant agent/* or tools/* waterfall
Add UI or editor integration drive ctx.agents and render from session/event
Add durable session state add a SessionEventMap member and render/replay from the log
Fork a live session use ctx.sessions.fork(source, boundary?, childSessionId?)

The extension cookbook carries plugin skeletons and the feature-to-seam map; step-by-step guides cover packages, tools, LLM adapters, and vendored packages.