dsh-tools
Tool registry and execution pipeline. Tool plugins register their schemas and executors; the agent loop executes each call through tools/pre-execute (the extensible allow/deny gate) → monotonic registered guards → tools/execute (an around-dispatch wrapper for timeout/retry/metrics plugins) → tools/post-execute (inspect/replace the result, attach context) → the observe-only tools/result notification. The registry also owns HOW its tools are presented to the model — its mode config selects native function calling, Code Mode, or both.
Service: ToolRegistry (ctx key: tools)
Config
tools:
mode: native # native (default) | code | both
native contributes the calling agent's visible end capabilities as wire function definitions. Under code, this registry contributes the reserved run_code transport plus the generated tools:sdk prompt section (see Code Mode); both contributes the visible native definitions and both infrastructure pieces. Restrictions cannot remove run_code, and registering, shadowing, or explicitly filtering that reserved name fails loudly. An expert system-prompt/assemble listener may replace any prompt or schema contribution; its returned assembly is authoritative, so the listener owns preserving Code Mode when the protocol should remain active. Non-native modes require a loaded ctx.codeRuntime with language: 'typescript'; a missing or mismatched runtime rejects every prompt assembly with an actionable error, and a systemPrompt.toolOrder naming tools the mode no longer contributes rejects the assembly the same way.
Public API
ctx.tools.register(definition: ToolDefinition): () => voidRegister a trusted typed same-process definition. The layer is the calling context's scope: a plain plugin context registers globally; an agent'sagent.ctxregisters for that agent alone, shadowing a same-named global tool there. Duplicate names within one layer throw; non-native modes also reject the reservedrun_codetransport name.timeoutMs, when present, must be positive and finite. Disposed with the calling fiber.ctx.tools.restrict(filter: ToolRestriction): () => voidScoped-only (throws on a plain context): mask the global end-capability surface for the calling agent —allowkeeps only the listed global tools,denyremoves them; multiple restrictions intersect; scope-local registrations are merged afterward. The readonly arrays compile once into private sets. Every listed name must exist in the current pre-restriction global registry; scope-local, unknown, and reservedrun_codenames fail loudly. A deny-list admits a later global tool unless it names that tool; an allow-list excludes later names; neither filters a later scope-local registration.restrict({})rejects. This is live registration composition, not a parent-derived authority ceiling; see the agent-scope security non-goal.ctx.tools.get(name: string, scope?: ScopeKey): ToolDefinition | undefinedResolution as one scope sees it (shadowing applied; a restricted-away global reads as absent) — presenters pass the calling agent so the card matches what executed.ctx.tools.schemas(scope?: ScopeKey): ToolSchema[]Schemas of everything the scope can see (without theexecutefunctions). The shipped tools' schemas are catalogued in docs/tool-catalog.md, generated by booting each tool plugin and harvesting this method (see the tool-schema-catalog RFC).ctx.tools.guard(guard: ToolGuard): () => voidRegister a monotonic synchronous execution guard aftertools/pre-execute: returning a reason denies the call, whileundefinedleaves it unchanged. A plain-context guard applies globally; anagent.ctxguard applies only to that agent. Later waterfall listeners cannot turn a guard denial back into permission. Disposed with the calling fiber.ctx.tools.execute(exec: ToolExecutionInput): Promise<ToolExecutionResult>Assign a fresh opaque correlation token, losslessly materialize and deep-freeze arguments once at the model/tool boundary, then run the call throughtools/pre-execute→ guards →tools/execute→tools/post-execute. Invalid arguments normalize through the same authoritative result path without reaching policy or the body. The final outcome is independently materialized and deep-frozen once beforetools/result. Optionalsignalremains the operational field an around-dispatch wrapper may replace.
Injected services
SystemPrompt — the registry automatically feeds its tool schemas into the system-prompt assembly via ctx.systemPrompt.tools(). The approval seam is consumed opportunistically instead (ctx.get('approval'), no static inject): a deployment without it keeps the ask→deny degrade, and the registry stays active either way.
Live events
The live registry pipeline has three transformable waterfalls followed by the observe-only tools/result boundary; registry changes are deliberately unfiltered shared-state notifications. Exact signatures, dispatch modes, scope filtering, and failure-containment contracts live in the generated Cordis event catalog, while the complete ordering is visualized in the generated tool execution pipeline. tools/result is live; the similarly named tool/result is the durable session event the agent loop appends afterwards.
Key types
ToolDefinition—ToolSchema+execute(args, exec), optional presentation callbacks, and cooperativetimeoutMs.ToolExecutionInput— the caller-supplied call description:{ callId, name, arguments, agent?, parent?, signal? }; callers may pass an enclosing execution's opaque token asparentbut never choose the new execution's own token.ToolExecutionToken— a fresh brandedSymbolassigned by the registry. It supports equality correlation only and never crosses a model, log, or worker boundary.ToolExecution— the pipeline-owned call: immutable{ token, callId, name, arguments, agent?, parent? }identity plus optional operationalsignal, which an around wrapper may add, replace, remove, and restore. A nested call'sparentis aToolExecutionToken, not an execution object.ToolExecutionResult— losslessly JSON-serializable outcome:{ callId, content, isError, error?, additionalContext?, meta? }. The registry materializes and freezes the complete post-policy value before final observation. On failure with aHarnessError,error: { name, code }carries the structured failure class alongside the model-facing text.PreToolDecision—{kind:'allow'}|{kind:'deny', reason}|{kind:'ask', reason?}. Input rewrite is deliberately not offered;askis serviced byctx.approvalwhen mounted and otherwise degrades to deny.PostToolDecision—{kind:'accept', content?, additionalContext?}(keep the call successful, optionally replacing the model-facing content) |{kind:'block', feedback, additionalContext?}(turn it into anisErrorwhose content is the corrective feedback). Output replacement is clean becausetool/resultis logged AFTERexecute()returns.ToolGuard—(execution) => string | undefined; the returned string is a final monotonic denial reason evaluated after the reorderable pre-execute waterfall and before dispatch.ToolCallView/ToolResultView— provider-neutralcard-tagged render intents a tool returns frompresentCall/presentResultto own how a UI renders ITS calls (see "Tool-owned UI presentation").
Extension points
- Tool plugins call
ctx.tools.register()— schemas flow into the assembly automatically. tools/pre-executeis the reorderable allow/deny/ask gate (sandbox, permission, hooks): listeners receive(exec, next)and callnext()to delegate to the default (allow) or return aPreToolDecisionto short-circuit; adenyskips dispatch, while anaskresolves through the approval seam and dispatches only after a grant. Either non-grant path yields anisErrorresult.ctx.tools.guard()installs scope-aware monotonic policy after that waterfall when a denial must not be overridable by listener ordering.tools/executeis the around-dispatch seam (timeout, retry, metrics): listeners receive(exec, next)and callnext()to delegate to core dispatch (returning itsToolExecutionResult, optionally wrapped), or return a replacement result to short-circuit dispatch; the basenext()is dispatch-with-normalization, soawait next()already yields anisErrorresult for a thrown or unknown tool. A wrapper may change onlyexec.signalbeforenext()—adding a per-call deadline, replacing a caller signal, or restoring absence afterwards—because call identity is protected before policy begins.tools/post-executeis the inspect/transform seam:(exec, result, next)→ aPostToolDecisionthat can replace content, block with feedback, or attachadditionalContext. Core dispatch is the base of thetools/executewaterfall; the tool body keeps its own error boundary so a thrown tool still reachespost-executeas anisError. Finally,tools/resultobserves the immutable authoritative result after every transform and error boundary. All follow the typed-decision idiom shared with theagent/*seams (seedsh-agent);@deepseek-ai/dsh-timeout-policyis the referencetools/executewrapper.- MCP servers: one plugin per server, discover tools, call
ctx.tools.register()with the server's schemas.
Typed tool parameter schemas
First-party plugin authors can use the defineTool() helper (exported from this package) for typed tool parameter schemas:
import { readFile } from 'node:fs/promises'
import type { Context } from 'cordis'
import { defineTool } from '@deepseek-ai/dsh-tools'
declare const ctx: Context
ctx.tools.register(defineTool({
name: 'read_file',
description: 'Read a file from disk.',
parameters: {
path: { type: 'string', required: true, description: 'Absolute file path' },
offset: { type: 'number' },
limit: { type: 'number' },
},
async execute(args, exec) {
// args is typed: { path: string; offset?: number; limit?: number }
const text = await readFile(args.path, 'utf8')
return [{ type: 'text', text }]
},
}))
The helper converts the author-facing SchemaSpec (with required: true as a per-property boolean) to standard JSON Schema for the wire format and uses the same typed spec for execute/presentation validation. Raw JSON-Schema tool definitions (from MCP servers) are still accepted by the registry directly.
A defineTool tool also validates the model-generated arguments against its SchemaSpec before execute runs (validateArgs). The model's JSON is untrusted — InferArgs<S> is a compile-time claim, not a runtime guarantee — so on a mismatch (missing required key, wrong primitive, bad enum member, nested violation) the tool throws a ToolArgsError (code: 'INVALID_ARGS'); the registry turns it into an isError result whose text lists the violations, which the model sees and self-corrects from. Validation mirrors the JSON Schema conversion exactly: extra keys are allowed, default is not applied, and an object/array prop without properties/items only type-checks. Raw-registered tools (MCP) are not validated by the harness — they validate their own input.
See defineTool, validateArgs, ToolArgsError, SchemaSpec, InferArgs, and schemaSpecToJsonSchema in the public API for details.
defineTool also validates an optional timeoutMs at definition time when present: it must be a positive finite number, or the helper throws — the budget is attached to the produced ToolDefinition (for @deepseek-ai/dsh-timeout-policy) and never reaches the model.
Structured-output schema subset
A separate vocabulary for callers that DEMAND a machine-readable value from an agent — the subagent seam's SubagentStartRequest.outputSchema (and, by extension, a workflow's agent({ schema })). Unlike SchemaSpec (the author-facing DSL for tool parameters), a StructuredOutputSchema is an object-rooted raw JSON Schema subset as data: it travels verbatim to the model as a forced tool's parameters, and the produced value is validated against it.
The subset is deliberately narrow and REJECTS LOUD outside it — accepting a keyword the validator doesn't enforce would validate less than the schema promises (accepted-then-ignored). Supported: single-string type (object/array/string/number/integer/boolean/null; type arrays rejected), properties/required/additionalProperties (boolean; every required key must be declared), items, scalar-only enum/const; annotations (description/title/default/examples) are ignored but must still be JSON data. assertSupportedOutputSchema(schema) throws OutputSchemaError (code: 'UNSUPPORTED_SCHEMA', listing every violation) for anything else; validateStructuredValue(schema, value) returns path-qualified violations (empty = valid, total — never throws).
Tool-owned UI presentation
A tool owns how ITS calls render in a UI (an editor's tool-call card, a CLI log line) — a UI plugin must NOT special-case tool names. A ToolDefinition may declare two optional, pure, display-only methods that return a card-tagged render intent (a discriminated union — a tool declares its card kind once and a UI bridge switches on card):
presentCall(args): ToolCallView | undefined— the PENDING state, one of:{ card: 'generic', title, kind?, rawInput?, content?, locations? }— the default card: a human-readabletitle, an optionalkind(read/edit/execute/… for icon/treatment, defaultother), an optionalrawInput(the salient input to show in a detail view — e.g. a background task id, NOT the whole args object), optionalcontent(extra UI content blocks), and optionallocations({ path, line? }[]— files this call reads/modifies, so a capable UI can follow along; the ACP bridge forwards them astool_call.locations).{ card: 'terminal', title, description?, cwd? }— a shell command: a capable UI renders a terminal card (thetitleis the command,descriptionrenders above it,cwdheads it); an incapable UI falls back to a generic execute card.{ card: 'diff', title, diffs, locations? }— a file create/modify: a capable UI renders an inline diff card fromdiffs({ path, oldText, newText }[];oldText: nullfor a new file). Used bywrite/edit.
presentResult(args, result): ToolResultView | undefined— the COMPLETED state, given the sameargsand the{ content, isError, meta? }result, one of:{ card: 'generic', title?, content? }— an optional replacementtitleand reformattedcontent.{ card: 'terminal', title?, output?, exitCode?, signal? }— a terminal run's capturedoutputand exit status. A capable UI shows an exit-status pill; an incapable UI gets a fenced```consolefallback the BRIDGE derives fromoutput(the tool does not encode the fences).{ card: 'diff', title?, diffs }— a completed file mutation as an inline diff.diffsisFileDiff[]— typically the applied hunks with surrounding context computed from the before/after content, or a whole-file diff (oldText: null) when there is no before-image (a file create). Used bywrite/edit; atool_call_update.contentreplaces the call's content, so a mutation tool returns this even when it duplicates the call-time snippet (else the result text would clobber the pending diff).
Returning undefined (or omitting a method) tells a UI to fall back to a generic presentation (title = tool name, raw args as input, raw result content). Both methods must be pure and side-effect-free: a UI may call them during live streaming AND during a session-log replay, so they depend only on their arguments. result.meta is the tool's own optional presentation payload (opaque unknown, JSON-serializable), attached by execute (see below) and persisted on the tool/result event, so a presentResult reading it stays replay-deterministic (the same meta is read back from the log). With defineTool, args is the typed InferArgs<S> shape; the helper soft-validates before calling (a malformed/older logged arg shape yields undefined rather than throwing, since display must never crash a replay). The views are provider-neutral — the ACP bridge (dsh-acp) maps each card to ACP tool_call/tool_call_update wire fields (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. See the render-intent-union RFC (docs/rfc/implemented/architecture/2026-07-02-tool-render-intent-union.md) and the applied-hunk-diffs RFC (docs/rfc/implemented/architecture/2026-07-02-result-time-applied-hunk-diffs.md); dsh-tool-bash (terminal) and dsh-tool-fs (diff/generic) are the reference implementations.
import { defineTool } from '@deepseek-ai/dsh-tools'
const bash = defineTool({
name: 'bash',
description: 'Run a shell command.',
parameters: {
command: { type: 'string', required: true, description: 'The command to run.' },
description: { type: 'string', required: true, description: 'One-line summary shown in the UI.' },
},
async execute(args) {
return [{ type: 'text', text: `ran: ${args.command}` }]
},
// A terminal card: the command is the title, the description renders above it.
presentCall: args => ({ card: 'terminal', title: args.command, description: args.description }),
// A terminal result: the raw output + exit; the bridge derives the fenced fallback.
presentResult: (_args, result) => {
const block = result.content.length === 1 ? result.content[0] : undefined
if (block === undefined || block.type !== 'text') return undefined
return { card: 'terminal', output: block.text }
},
})
Code Mode
Under mode: code (or both) the registry turns the tool surface into a programming API, per the Code Mode RFC: the model writes a TypeScript program (the body of an async function) and passes it to the reserved wire transport run_code; the program runs in ctx.codeRuntime (the code-execution seam — the shipped backend is a worker thread) with one async binding per visible end-capability tool (await tools.bash({...})), and ONLY what it prints or returns re-enters the model's context. Scope restrictions change those SDK bindings but cannot remove or replace the transport itself.
- The SDK section (
tools:sdk, order 150): a lazy prompt section regenerating, at each assembly, adeclare const tools: {...}TypeScript declaration of the calling scope's visible end capabilities (exotic names via quoted keys), plus fixed usage instructions. Deterministic — lexicographic tool order, byte-identical text for an unchanged tool set (prefix-cache-friendly). The codegen (jsonSchemaToTs, exported) is total: constructs outside thedefineToolsubset degrade tounknown, never throw. - The dispatch bridge (
run_code's execute): every binding call is JSON-normalized before dispatch (a value that does not survive —BigInt, circulars — rejects that one call, so the dispatched form and logged form are the same JSON value by construction), serialized through a per-run queue (evenPromise.allexecutes underlying calls one at a time in submission order), given the outer execution's opaque token asparent, and run through the complete pre-execute → guards → execute → post-execute → result pipeline. A denial reaches the program as a binding rejection, and each sub-call is logged as atool/code-dispatchsession event with deterministic id<parent>:code:<n>;deriveMessages()does not surface that event. Token correlation lets commit-style observers defer an inner success until the finalrun_coderesult without exposing the live outer execution; ordinary tool side effects are not rolled back. A sub-call'sadditionalContextis deliberately dropped because inserting it inside a running parent call would break tool-call/result adjacency. - Settlement discipline: the bridge owns a run-scoped abort that follows the outer signal in and fires when the run settles for any reason, so a budget expiry aborts an in-flight sub-tool instead of orphaning it; the bridge then drains its queue BEFORE returning, so every
tool/code-dispatchlands inside the open turn. A failed run throwsCodeRunFailedError(code: 'CODE_RUN_FAILED', message = the failure kind + captured logs), which the pipeline converts to a structuredisErrorthe model self-corrects from.
The wire collapse is the registry's own contribution (systemPrompt.tools() is mode-aware), so the logged request/header records it for free. When no assembly listener changes the registry's prompt or schema contributions, code assembles exactly [run_code], pinned by tests and the snapshot goldens. Try it: pnpm run demo:code-mode (the coding-agent example's Code Mode overlay); pnpm run demo:code-mode acp serves the same mode over ACP instead of the REPL.
What is NOT here (TODO)
- Concurrency metadata — tool definitions do not declare whether executions are safe to overlap.
- Parallel execution — the loop and Code Mode bridge execute tool calls sequentially until that metadata exists.