# Conflicts: # docs/architecture.md # examples/acp-agent/tests/snapshots/bash-spill/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/hook-cc-pretool-ask/session.jsonl # packages/core/agent-loop/src/loop.ts
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Tools
The tool pipeline of dsh-tools. core.md introduces ToolDefinition as the one pipeline-authoring type promoted to the spine and ToolSchema as the model-facing wire shape. This page owns the full ToolDefinition, the typed schema DSL that builds it, the guarded execution shapes, and the UI-presentation vocabulary.
Source: packages/core/tools/src/index.ts · packages/core/tools/src/schema.ts · packages/core/tools/src/presentation.ts
ToolDefinition — a registered tool
A ToolSchema (the model-facing fields) plus the execute function, host-only scheduler metadata, and optional UI presenters. The registry holds these; the loop dispatches calls through them. The registry's schemas() builds the model-facing ToolSchema[] by an explicit allowlist — execute/timeoutMs/isConcurrencySafe/presentCall/presentResult must never leak into a model request.
interface ToolDefinition extends ToolSchema {
execute(args: unknown, exec: ToolRunContext): Promise<ToolExecuteReturn>
/**
* Cooperative tool-call timeout budget in milliseconds. Omit for no deadline.
* Enforced by `@deepseek-ai/dsh-timeout-policy` (a `tools/execute` wrapper); it
* is NEVER sent to the model — `schemas()` whitelists only name/description/
* parameters. Declaring it asserts this tool forwards `exec.signal` to a
* cooperative implementation that can reach quiescence when the signal aborts.
*/
timeoutMs?: number
/**
* Pure synchronous classifier for overlap with sibling tool calls. Only
* `true` opts in; omission, exceptions, non-`true` returns, and invalid
* `defineTool` arguments are exclusive. This metadata is never model-visible.
*
* Opted-in executions must not mutate parent-owned state. Shared state must
* tolerate concurrent dispatch; recorder races are permitted only when they
* commute or fail closed. See the parallel-tool-call RFC for the full contract.
* @param args - parsed arguments; `defineTool` validates before calling.
* @returns Whether this call may join a parallel group.
*/
isConcurrencySafe?(args: unknown): boolean
/**
* Optional: how to present the PENDING state of one call in a UI, derived from
* the call's `args` (parsed arguments, `unknown` — the tool validates/narrows
* its own input). Returns a {@link ToolCallView} (a `card`-tagged render intent),
* or `undefined` (or omit the method) to fall back to a generic presentation
* (title = tool name, raw args as input). Pure and side-effect-free: a UI may
* call it during live streaming AND a session-log replay, so it must depend
* only on `args`.
*/
presentCall?(args: unknown): ToolCallView | undefined
/**
* Optional: how to present the COMPLETED state, given the same `args` and the
* `result` (`execute`'s content + whether it errored). Returns a
* {@link ToolResultView}, or `undefined` (or omit the method) to keep the
* pending title and render the raw result content. Pure and side-effect-free
* for the same replay reason.
*/
presentResult?(args: unknown, result: ToolResult): ToolResultView | undefined
}
execute receives args: unknown — a raw ToolDefinition validates its own input. First-party tools don't write that by hand; they use defineTool, which validates and narrows for them.
The typed schema DSL
Plugin authors write per-property specs with a boolean required: true, and a type-level helper maps the spec to the execute argument type — zero casts. The DSL is machinery that types ToolDefinition; it is intentionally a sub-page detail, not core.
Source: packages/core/tools/src/schema.ts
interface SchemaProp {
type: SchemaType
/** Per-property required flag (NOT the JSON Schema top-level required array). */
required?: true
/** Human-readable description, surfaced in the JSON Schema as well. */
description?: string
/** Enum of allowed values (strings only). */
enum?: string[]
/** Default value. */
default?: unknown
/** Nested properties for type: 'object'. */
properties?: SchemaSpec
/** Items schema for type: 'array'. */
items?: SchemaProp
}
type SchemaSpec = Record<string, SchemaProp>
SchemaType is the primitive union 'string' | 'number' | 'boolean' | 'object' | 'array'. InferArgs<S> maps a SchemaSpec to the TS argument type — required: true props become required keys, everything else genuinely optional:
type InferArgs<S extends SchemaSpec> = Simplify<
& { [K in RequiredKeys<S>]: InferPropValue<S[K]> }
& { [K in Exclude<keyof S, RequiredKeys<S>>]?: InferPropValue<S[K]> }
>
defineTool({ name, description, parameters, execute, … }) ties it together: parameters is a SchemaSpec, execute(args, exec) gets args: InferArgs<typeof parameters>, and the helper converts the spec to JSON Schema (schemaSpecToJsonSchema) for the wire and validates model-generated args (validateArgs) before the typed body runs. A mismatch throws ToolArgsError (code: 'INVALID_ARGS'), which the registry turns into an isError result so the model can self-correct. Why a custom DSL and not schemastery: tool parameters need JSON Schema (the LLM wire format), not validation/transformation — the lightweight DSL gives the best authoring DX with the smallest surface.
Registration is a trusted same-process contract. The registry borrows the typed definition as readonly input and validates only semantic requirements such as a positive finite timeoutMs; schemas() materializes the explicit model-facing projection at the model boundary so execution and presentation share one resolved definition without leaking callbacks onto the wire.
ToolRestriction — one scope's live global filter
ToolRestriction applies only to the live deployment-global tool layer. The registry compiles readonly names into private sets, intersects multiple restrictions, then overlays scope-local tools. A deny-only filter admits later unlisted globals, while an allow-list excludes them.
interface ToolRestriction {
readonly allow?: readonly string[]
readonly deny?: readonly string[]
}
Execution: extensible waterfalls plus monotonic policy
ctx.tools.execute() accepts a caller-owned ToolExecutionInput, materializes its parsed JSON arguments once into a pipeline-owned ToolExecution, and runs that call through tools/pre-execute (the reorderable allow/deny/ask waterfall) → registered monotonic guards → tools/execute (around-dispatch wrappers) → tools/post-execute (inspect/replace the result) → tools/result (the immutable authoritative outcome). The outcome is a ToolExecutionResult.
type ToolExecutionToken = symbol & { readonly [toolExecutionTokenBrand]: true }
interface ToolExecutionInput {
readonly callId: CallId
readonly name: string
/** Parsed JSON arguments (unknown — tools validate their own input). */
readonly arguments: unknown
/** The agent on whose behalf the call runs (set by the agent loop). */
readonly agent?: Agent
/**
* Opaque token of the enclosing transport execution, when one exists. Code
* Mode sets this on SDK sub-dispatches so commit-style observers can wait for
* the outer `run_code` outcome without receiving its live mutable execution.
*/
readonly parent?: ToolExecutionToken
signal?: AbortSignal
}
A tool body receives the runtime extension. deferContext() is the composite-tool channel: it records nested-dispatch context without injecting inside the still-open outer call.
interface ToolRunContext extends ToolExecution {
/**
* Defer one nested-dispatch context until this tool's final result reaches
* the agent loop. Contexts retain their individual source, envelope, and
* metadata and are emitted in call order.
*/
deferContext(context: HookContext): void
}
The agent loop asks the registry for each pending call's execution mode and uses it to form exclusive barriers and rolling-pool parallel runs:
type ToolExecutionMode =
| { kind: 'parallel' }
| { kind: 'exclusive' }
interface ToolExecution extends ToolExecutionInput {
/** Registry-assigned identity shared with nested calls only as their opaque `parent` token. */
readonly token: ToolExecutionToken
}
ToolExecutionToken is an opaque runtime Symbol used only for identity comparison. Before policy, execute() materializes and freezes arguments, rejects non-JSON input, and assigns the token. Identity fields and the optional parent token remain readonly; only signal may change around dispatch. Final observers receive the frozen execution identity.
A ToolGuard is scope-aware final pre-dispatch policy. Its shape deliberately has no allow result: undefined preserves the waterfall decision, while a returned reason can only reduce permission, so a later listener cannot undo it.
type ToolGuard = (execution: Readonly<ToolExecution>) => string | undefined
interface ToolExecutionResult {
content: ContentBlock[]
isError: boolean
/**
* Set when the call failed with a {@link HarnessError}: machine-routable
* `{ name, code }` for retry/sandbox plugins and replay. The model-facing
* text in `content` is always present; this is extra structure for code.
*/
error?: ToolErrorInfo
/**
* Extra model-facing contexts deferred by a composite tool or attached by
* `tools/post-execute` listeners for the NEXT request. They are not part of
* this call's `content`: the loop accepts them into the active-batch FIFO and
* appends them after every recorded `tool/result` when the batch settles, even
* when execution is interrupted. The array preserves each context's source,
* envelope, metadata, and production order. An accepted outer call keeps
* deferred contexts before decision contexts; a block retains only contexts
* supplied by the blocking decision.
*/
additionalContexts?: HookContext[]
/**
* The tool-private presentation payload from a successful `execute` (the object
* return form). Threaded onto the `tool/result` session event and back into
* {@link ToolResult} for `presentResult`. Opaque (`unknown`); absent when the
* tool attached none or the call failed.
*/
meta?: unknown
}
The result carries only the outcome. Call identity remains on the immutable ToolExecution that accompanies it through every hook and on the durable tool/call / tool/result session events, so wrappers cannot create a second, disagreeing identity.
The registry materializes and freezes the final accepted result immediately before tools/result. Its content, structured error, additional context, and presentation metadata must round-trip losslessly through JSON; an invalid outcome becomes a JSON-safe isError result, so the observed live outcome is safe for the later durable tool/result append.
Each interception waterfall returns a typed Decision (the idiom shared with the agent/* seams). tools/pre-execute listeners receive (exec, next) and return a PreToolDecision; tools/execute wrappers return a ToolExecutionResult; tools/post-execute listeners receive (exec, result, next) and return a PostToolDecision:
type PreToolDecision =
| { kind: 'allow' }
| { kind: 'deny'; reason: string }
| { kind: 'ask'; reason?: string }
type PostToolDecision =
| { kind: 'accept'; content?: ContentBlock[]; additionalContexts?: HookContext[] }
| { kind: 'block'; feedback: ContentBlock[]; additionalContexts?: HookContext[] }
Call next() for the default or return a decision to short-circuit. Pre-policy may deny or ask; only allowed-once proceeds, while a non-grant, missing approval channel or service, or agent-less request becomes a denial. Guards may still impose a final denial. Arguments cannot be rewritten because history, audit, UI, and execution must agree.
Post-policy may replace content; a block becomes an isError result containing its corrective feedback. tools/result receives the frozen execution and result after normalization; observers cannot transform them, and observer failures are contained. Unknown and throwing tools both become structured errors (ToolNotFoundError maps to UNKNOWN_TOOL), so the call fails without ending the turn.
The structured-output schema subset
The vocabulary a caller uses to demand a machine-readable result from a subagent (SubagentStartRequest.outputSchema, subagent.md) or a workflow agent() call. It is deliberately NOT full JSON Schema: the schema travels verbatim to the model as a forced tool's parameters, and the produced value is validated client-side by validateStructuredValue — so every accepted keyword must be one the validator actually enforces, and assertSupportedOutputSchema rejects anything else loud (OutputSchemaError, listing every violation). Both walkers reason over own enumerable properties only (JSON carries nothing else) and reject non-plain objects (Date, Map) that would serialize lossily.
type StructuredScalar = string | number | boolean | null
type StructuredSchemaType = 'object' | 'array' | 'string' | 'number' | 'integer' | 'boolean' | 'null'
interface StructuredSchemaNode {
type: StructuredSchemaType
properties?: Record<string, StructuredSchemaNode>
required?: string[]
additionalProperties?: boolean
items?: StructuredSchemaNode
enum?: StructuredScalar[]
const?: StructuredScalar
description?: string
title?: string
default?: unknown
examples?: unknown
}
A schema is an object-rooted node (enum/const are scalar-only; description/title/default/examples are annotations, allowed and ignored but still required to be JSON data — they ride the wire):
type StructuredOutputSchema = StructuredSchemaNode & { type: 'object' }
Tool-presentation UI vocabulary
How a tool wants its call shown in a UI (an editor tool-call card, a CLI log line), provider-neutral so a tool describes itself without depending on any client protocol. presentCall/presentResult return a card-tagged render intent — a discriminated union a UI bridge switches on:
ToolCallView(pending):{ card: 'generic', title, kind?, rawInput?, content?, locations? }(the default card;locationsis{ path, line? }[]files the call reads/modifies, for editor follow-along),{ card: 'terminal', title, description?, cwd? }(a shell command → a terminal card), or{ card: 'diff', title, diffs, locations? }(a file create/modify → an inline diff card;diffsis{ path, oldText, newText }[],oldText: nullfor a new file).ToolResultView(completed):{ card: 'generic', title?, content? },{ card: 'terminal', title?, output?, exitCode?, signal? }(the captured run output + exit; a capable UI shows an exit-status pill, an incapable one gets a fenced```consolefallback the bridge derives fromoutput), or{ card: 'diff', title?, diffs }(a completed file mutation → the change to show, typically the applied hunks with context lines computed from the before/after content, or a whole-file diff when there is no before-image — e.g. a file create. Atool_call_update's content REPLACES the call's content, so a mutation tool returns this even when it duplicates the call-time snippet, to keep the result from clobbering the diff with result text).
ToolCallKind ('read' | 'edit' | 'delete' | 'move' | 'search' | 'execute' | 'fetch' | 'other') picks an icon on a generic card. FileLocation ({ path, line? }) and FileDiff ({ path, oldText, newText }) are the shared file-card vocabulary. The design is pinned in the render-intent-union RFC; the ACP bridge maps a diff card to a { type: 'diff' } content block, a terminal card to the _meta terminal convention, and relativizes a file card's title against the session cwd.
The full presentation field docs live in packages/core/tools/src/presentation.ts. The bash schema and executor are on bash.md; generic background controls are on tasks.md.