/** * Agent-scoped dispatch and prompt assembly helpers. Ordinary events use the * fused dispatcher so subject and scope key cannot diverge; registry lifecycle * code instead captures one stable carrier for both edges. * @module @deepseek-ai/dsh-agent/dispatch */ import type { Context, Events } from 'cordis' import { scopeTarget } from '@deepseek-ai/dsh-scope' import type { Scoped } from '@deepseek-ai/dsh-scope' import type { AssembleContext } from '@deepseek-ai/dsh-system-prompt' import type { Agent } from './types.ts' /** Extract the parameter tuple from an event handler type (its `this` is not part of the tuple). */ type Params = F extends (...args: infer P) => unknown ? P : never /** Extract the return type from an event handler type. */ type Return = F extends (...args: never[]) => infer R ? R : never /** * The event names whose subject is an agent: handler parameters start with an * `Agent` AND the handler declares a `Scoped` `this` (the scope-carrier * contract). The `this` check keeps accidental first-parameter-happens-to-be- * an-Agent events (or zero-arg events, whose parameter tuple would satisfy a * bare rest-tuple check via callability) out of the fused-dispatch surface. */ export type AgentSubjectEvent = { [K in keyof Events]: Events[K] extends (this: Scoped, ...args: infer P) => unknown ? P extends [Agent, ...unknown[]] ? K : never : never }[keyof Events] /** The event arguments AFTER the injected agent subject. */ type Tail = Params extends [Agent, ...infer R] ? R : never /** * The fused dispatcher {@link agentEvents} returns: each method dispatches the * named agent-subject event with the agent's scope carrier as `thisArg` and * the agent itself injected as the first event argument. */ export interface AgentEventDispatch { /** * Fire-and-forget notification in the agent's scope. Every listener is * invoked; synchronous throws and returned-promise rejections are logged and * contained per listener, so a notification cannot veto lifecycle progress * or starve a later observer. * @param name - the agent-subject event to emit. * @param rest - the event's arguments after the injected agent. */ emit(name: K, ...rest: Tail): void /** * Awaited in-order dispatch (Cordis `serial`) in the agent's scope. * @param name - the agent-subject event to dispatch. * @param rest - the event's arguments after the injected agent. * @returns the serial chain's result (the first bail value, if any). */ serial(name: K, ...rest: Tail): Promise>> /** * Around-middleware dispatch (Cordis `waterfall`) in the agent's scope. The * declared event parameters already end with the `next` callback, so `rest` * is exactly the event's arguments after the injected agent — the final * element being the innermost `next` (the default the listener chain wraps). * @param name - the agent-subject event to dispatch. * @param rest - the event's arguments after the injected agent. * @returns the waterfall's composed result. */ waterfall(name: K, ...rest: Tail): Return } /** * Build a dispatcher that couples the agent subject to its scope carrier. * @param ctx - the context to dispatch through (any context of the app). * @param agent - the subject agent; also the scope-carrier key. * @returns the fused dispatcher. */ export function agentEvents(ctx: Context, agent: Agent): AgentEventDispatch { const carrier: Scoped = scopeTarget(agent, agent) // The ordinary dispatch methods forward through Cordis' variadic mixins. The // fused (carrier, name, agent, ...rest) tuple is provably a valid argument // list for the matching thisArg overload, but TypeScript cannot relate the // generic Tail spread back to that overload's conditional parameter // tuple — hence one contained, shape-preserving cast per method. return { emit(name, ...rest) { // Cordis emit invokes callbacks through Array.map: one synchronous throw // starves later listeners, and returned promises are discarded. Agent // notifications are non-vetoing, so resolve the same filtered callback // set ourselves and contain both failure modes independently. const args: unknown[] = [carrier, name, agent, ...rest] const callbacks = ctx.events.dispatch('emit', args) for (const callback of callbacks) { try { const returned: unknown = callback(...args) void Promise.resolve(returned).catch((error: unknown) => { ctx.logger.warn(`agent event "${name}" listener rejected: ${String(error)}`) }) } catch (error: unknown) { ctx.logger.warn(`agent event "${name}" listener threw: ${String(error)}`) } } }, async serial(name, ...rest) { // eslint-disable-next-line @typescript-eslint/unbound-method -- the events mixin accessor returns a pre-bound function const serial = ctx.serial as (thisArg: Scoped, name: string, ...args: unknown[]) => Promise return await serial(carrier, name, agent, ...rest) }, waterfall(name, ...rest) { // eslint-disable-next-line @typescript-eslint/unbound-method -- the events mixin accessor returns a pre-bound function const waterfall = ctx.waterfall as (thisArg: Scoped, name: string, ...args: unknown[]) => never return waterfall(carrier, name, agent, ...rest) }, } } /** * Build the prompt assembly context with agent and scope set together, so * agent-scoped prompt and tool contributions cannot be silently omitted. * @param agent - the agent the assembly is for. * @returns the context to pass to `assemble()`. */ export function assembleContextFor(agent: Agent): AssembleContext { return { agent, scope: agent } }