/** * Worker-side execution logic, written as plain functions over an injected port so the unit * suite can run every line IN-PROCESS against a fake port (a real worker thread is a separate * V8 isolate the coverage provider cannot observe). * @module @deepseek-ai/dsh-code-runtime-worker/src/bootstrap */ import { inspect } from 'node:util' import type { DoneMessage, ReplyMessage, WorkerBootData, WorkerToHost } from './protocol.ts' import { jsonValueBytesUpTo } from './output-json.ts' import { decodeWorkerJson, encodeWorkerJson, snapshotCodeJsonValue } from './worker-json.ts' /** The port surface the bootstrap needs — satisfied by `parentPort` and by the tests' fake. */ export interface BootstrapPort { postMessage(message: WorkerToHost): void on(event: 'message', listener: (message: ReplyMessage) => void): void } /** * A writable stream's `write` slot, as the bootstrap patches it (see * {@link captureStreamWrites}). Method-typed so the real * `process.stdout`/`process.stderr` (narrower chunk parameters) remain * assignable. */ export interface PatchableStream { write(chunk: unknown, ...rest: unknown[]): boolean } /** * Ordered text capture under one shared byte budget, delivered to a sink as * each item lands (the real sink streams text over the port eagerly, so * captured output survives a mid-run termination). Once the budget is * exhausted it emits the fitting prefix and reports the limit once; the host * turns that condition into an explicit `output-limit` run failure. */ export class LogBuffer { private remaining: number private truncated = false // Explicit fields, not constructor parameter properties: this module loads // under Node's native strip-only mode, which rejects non-erasable syntax — // and parameter properties are non-erasable. private readonly sink: (text: string) => void private readonly onLimit: () => void constructor(maxBytes: number, sink: (text: string) => void, onLimit: () => void = () => {}) { this.sink = sink this.onLimit = onLimit this.remaining = maxBytes } /** * Emit text to the sink, charging it against the budget (drops + marks once exhausted). * @param text - the captured text to deliver. */ push(text: string): void { if (this.truncated) return const cost = Buffer.byteLength(text, 'utf8') if (cost > this.remaining) { this.truncated = true const prefix = truncateUtf8Bytes(text, this.remaining) if (prefix.length > 0) this.sink(prefix) this.remaining = 0 this.onLimit() return } this.remaining -= cost this.sink(text) } } /** The five console methods the shim captures, in the seam's level vocabulary. */ const CONSOLE_LEVELS = ['log', 'info', 'warn', 'error', 'debug'] as const /** * A `console` replacement whose five leveled methods render their arguments * `util.inspect`-style (matching real console formatting closely enough for * a model to recognize its own output) into the buffer. Only these five * exist — the program gets a deliberately small console, not Node's full * surface. * @param logs - the buffer every rendered line is pushed into. * @returns the five-method console object handed to the program. */ export function makeConsoleShim(logs: LogBuffer): Record<(typeof CONSOLE_LEVELS)[number], (...args: unknown[]) => void> { const render = (args: unknown[]): string => args.map(arg => typeof arg === 'string' ? arg : inspect(arg, INSPECT_OPTIONS)).join(' ') const shim = Object.create(null) as Record<(typeof CONSOLE_LEVELS)[number], (...args: unknown[]) => void> for (const level of CONSOLE_LEVELS) { shim[level] = (...args: unknown[]) => { logs.push(render(args)) } } return shim } /** * Redirect a stream's `write` into the log buffer (the program-visible * `process.stdout`/`process.stderr` in the real worker), so raw writes land in emission order * alongside console output instead of racing down a pipe. It preserves Node's optional callback * contract: the callback runs asynchronously after admission, even when the log budget drops * the write. * * @param logs - the buffer captured writes are pushed into. * @param stream - the stream whose `write` slot is patched. * @returns the restore function (the in-process tests un-patch; the real * worker never needs to). */ export function captureStreamWrites(logs: LogBuffer, stream: PatchableStream): () => void { // The slot's VALUE is stored for restore and reassigned — never invoked // detached, so the unbound-method concern does not apply. // eslint-disable-next-line @typescript-eslint/unbound-method const original = stream.write stream.write = (chunk: unknown, ...rest: unknown[]): boolean => { logs.push(typeof chunk === 'string' ? chunk : String(chunk)) // Node's optional-encoding shape: the callback is whichever of the next // two positions holds a function (a non-function there is the encoding). const callback = [rest[0], rest[1]].find( (arg): arg is (error?: Error | null) => void => typeof arg === 'function', ) if (callback) queueMicrotask(() => { callback(null) }) return true } return () => { stream.write = original } } /** Bounded inspect options: deep enough to be useful, bounded so a pathological value cannot explode the rendering. */ const INSPECT_OPTIONS = { depth: 4, maxArrayLength: 100, maxStringLength: 10_000 } as const /** * The longest prefix of `text` whose UTF-8 encoding fits `maxBytes`, cut at * a code-point boundary (never mid-surrogate-pair). The byte caps are BYTE * caps — `String.prototype.slice` counts UTF-16 code units, up to 3× smaller * than what a multibyte string actually costs across the boundary. * @param text - the string to bound. * @param maxBytes - the UTF-8 byte budget the prefix must fit. * @returns the prefix (all of `text` when it already fits). */ export function truncateUtf8Bytes(text: string, maxBytes: number): string { if (Buffer.byteLength(text, 'utf8') <= maxBytes) return text let bytes = 0 let end = 0 for (const char of text) { const cost = Buffer.byteLength(char, 'utf8') if (bytes + cost > maxBytes) break bytes += cost end += char.length } return text.slice(0, end) } /** * Prepare the program's completion value for the done message. Only lossless * JSON crosses, and an individually oversized value reports `output-limit`; * the host revalidates both and accounts for the combined outer envelope. * * @param value - the program's completion value. * @param maxOutputBytes - the byte cap for the outer result. * @returns the done-message fragment: `{}` for `undefined`, else a flat wire `{ value }`. */ export function prepareCompletion(value: unknown, maxOutputBytes: number): Omit { if (value === undefined) return {} let snapshot: ReturnType try { snapshot = snapshotCodeJsonValue(value) } catch { snapshot = undefined } if (snapshot === undefined) { return { error: { kind: 'invalid-output', message: 'program completion must be lossless JSON' } } } if (jsonValueBytesUpTo(snapshot, maxOutputBytes) === undefined) { return { error: { kind: 'output-limit', message: `outer output exceeded ${maxOutputBytes} bytes` } } } return { value: encodeWorkerJson(snapshot) } } /** One awaited binding call's settlement handles, keyed by call id in the pending map. */ export interface PendingCall { resolve(value: unknown): void reject(error: Error): void } /** Program-visible typed rejection for a failed member of the `tools` namespace. */ export class ToolCallError extends Error { override readonly name = 'ToolCallError' readonly toolName: string constructor(toolName: string, message: string) { super(message) this.toolName = toolName } } /** Create the namespace-specific rejection for one lossy binding argument. */ function bindingArgumentFailure(global: string, name: string): Error { const message = 'binding arguments must be lossless JSON' return global === 'tools' ? new ToolCallError(name, message) : new Error(message) } /** * Route host replies into the pending-call map: each reply settles its call * at most once, and a reply for an unknown id (stray, or a duplicate answer * to an id already settled) is ignored. Shared wiring between * {@link runWorkerMain} and the tests that exercise {@link makeNamespaces} * standalone. * @param port - the port whose `message` events carry the replies. * @param pending - the id-keyed map of unsettled binding calls. */ export function wireReplies(port: BootstrapPort, pending: Map): void { port.on('message', (message: ReplyMessage) => { const entry = pending.get(message.id) if (!entry) return pending.delete(message.id) if (message.ok) { const value = decodeWorkerJson(message.value) if (value === undefined) entry.reject(new Error('binding resolution must be lossless JSON')) else entry.resolve(value) } else { entry.reject(new Error(message.message)) } }) } /** * Build the binding namespace objects the program sees: one null-prototype global per * namespace, each declared name an own enumerable async function that bridges over the port * (`__proto__`/`constructor`/`toString` are ordinary keys, never prototype collisions). * Lossy arguments reject before posting; clone failures and host failure * replies reject only the corresponding call. * * @param data - the boot payload's namespace declarations (globals + names). * @param port - the port binding calls are posted to. * @param pending - the id-keyed map each posted call parks its handles in. * @param nextId - the shared mutable id counter (worker-issued correlation ids). * @returns one namespace object per declaration, in declaration order. */ export function makeNamespaces( data: Pick, port: BootstrapPort, pending: Map, nextId: { value: number }, ): Record[] { return data.namespaces.map(({ global, names }) => { const namespace = Object.create(null) as Record for (const name of names) { Object.defineProperty(namespace, name, { enumerable: true, value: (args: unknown): Promise => { let detached: ReturnType try { detached = snapshotCodeJsonValue(args) } catch { detached = undefined } if (detached === undefined) return Promise.reject(bindingArgumentFailure(global, name)) return new Promise((resolve, reject) => { const id = nextId.value++ pending.set(id, { resolve, reject: (error) => { reject(global === 'tools' ? new ToolCallError(name, error.message) : error) }, }) try { port.postMessage({ type: 'call', id, global, name, args: encodeWorkerJson(detached) }) } catch (error: unknown) { pending.delete(id) const message = `binding arguments must be structured-cloneable: ${error instanceof Error ? error.message : String(error)}` reject(global === 'tools' ? new ToolCallError(name, message) : new Error(message)) } }) }, }) } return namespace }) } /** * Run one strict async-function body, allowing top-level `await` and `return`, and post exactly * one terminal {@link DoneMessage}; a thrown program error becomes its `error` field. * @param port - host message port or test double. * @param data - the boot payload the host sent. * @param streams - stdout/stderr objects captured as program logs. * @returns after posting the done message. */ export async function runWorkerMain( port: BootstrapPort, data: WorkerBootData, streams: { stdout: PatchableStream; stderr: PatchableStream }, ): Promise { const logs = new LogBuffer( data.maxOutputBytes, (text) => { port.postMessage({ type: 'log', text }) }, () => { port.postMessage({ type: 'output-limit' }) }, ) captureStreamWrites(logs, streams.stdout) captureStreamWrites(logs, streams.stderr) const pending = new Map() wireReplies(port, pending) const nextId = { value: 1 } const namespaces = makeNamespaces(data, port, pending, nextId) const consoleShim = makeConsoleShim(logs) let done: DoneMessage try { // The async function constructor, reached through an instance because // `AsyncFunction` is not a global. The program body is strict-mode. /* v8 ignore next -- the arrow exists only to reach the AsyncFunction constructor; it is never invoked. */ const AsyncFunction = (async () => {}).constructor as new (...args: string[]) => (...fnArgs: unknown[]) => Promise const fn = new AsyncFunction(...data.namespaces.map(namespace => namespace.global), 'ToolCallError', 'console', `'use strict';\n${data.code}`) const value = await fn(...namespaces, ToolCallError, consoleShim) done = { type: 'done', ...prepareCompletion(value, data.maxOutputBytes) } } catch (error: unknown) { const message = error instanceof Error ? error.stack ?? error.message : String(error) done = { type: 'done', error: { kind: 'exception', message } } } port.postMessage(done) }