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eve

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Filesystem-first framework for durable backend AI agents that run anywhere.

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import type { Event, HealthCheckPayload, ValidQueueName, WorkflowRun, World } from '#compiled/@workflow/world/index.js'; import { type CryptoKey } from '../encryption.js'; /** * Validates a workflow name and returns the corresponding queue name. * Ensures the workflow name only contains safe characters before * interpolating it into the queue name string. */ export declare function getWorkflowQueueName(workflowName: string, namespace?: string): ValidQueueName; /** * Result of a health check operation. */ export interface HealthCheckResult { healthy: boolean; /** Error message if health check failed */ error?: string; /** Latency if the health check was successful */ latencyMs?: number; /** Spec version of the responding deployment */ specVersion?: number; /** * `@workflow/core` version of the responding deployment, used for * capability detection (see `getRunCapabilities`). Omitted when the * responding deployment did not provide the field as a string — * for example, an older `@workflow/core` that predates this field, * or a non-JSON plain-text health response. */ workflowCoreVersion?: string; } /** * Checks if the given message is a health check payload. * If so, returns the parsed payload. Otherwise returns undefined. */ export declare function parseHealthCheckPayload(message: unknown): HealthCheckPayload | undefined; /** * Handles a health check message by writing the result to the world's stream. * The caller can listen to this stream to get the health check response. * * @param healthCheck - The parsed health check payload * @param endpoint - Which endpoint is responding ('workflow' or 'step') */ export declare function handleHealthCheckMessage(healthCheck: HealthCheckPayload, endpoint: 'workflow' | 'step', worldSpecVersion?: number): Promise<void>; export type HealthCheckEndpoint = 'workflow' | 'step'; export interface HealthCheckOptions { /** Timeout in milliseconds to wait for health check response. Default: 30000 (30s) */ timeout?: number; /** Deployment ID to send the health check to. Falls back to process.env.VERCEL_DEPLOYMENT_ID. */ deploymentId?: string; /** * Queue namespace of the target deployment (e.g. `'eve'` for topics like * `__eve_wkf_workflow_*`). Falls back to `WORKFLOW_QUEUE_NAMESPACE` in the * calling process. Cross-context callers (e.g. the observability * dashboard) must pass the target deployment's namespace explicitly — * the env fallback resolves in the caller's process, and a message * published to a mismatched topic has no consumer, so the check would * always time out. */ namespace?: string; } export declare function healthCheck(world: World, endpoint: HealthCheckEndpoint, options?: HealthCheckOptions): Promise<HealthCheckResult>; /** * Loads workflow run events by iterating through all pages of paginated * results. Events are returned in chronological (ascending) order for * deterministic workflow replay. * * @param runId - The workflow run ID. * @param afterCursor - If provided, only events after this cursor are * returned (incremental load). If omitted, all events are returned. * The returned cursor can be passed back in on a subsequent call for * incremental loading. */ export declare function loadWorkflowRunEvents(runId: string, afterCursor?: string): Promise<{ events: Event[]; cursor: string | null; }>; /** * Maximum number of times a replay-context event creation will reload the * event log and retry after the backend rejects it as stale (412). After this * many failed reloads the precondition error propagates so the run is * re-invoked from the queue with a fresh replay. */ export declare const PRECONDITION_MAX_RELOAD_RETRIES = 2; /** * A mutable view of the runtime's in-memory event log. `withPreconditionRetry` * appends freshly-loaded events to `events` (in place) and advances `cursor` * when it reloads, so the caller's loaded snapshot stays current. */ export interface MutableEventLog { events: Event[]; cursor: string | null; } /** * Whether the optimistic-concurrency guard for event creation is enabled. * **On by default** where the runtime executes: replay-context creates send a * `stateUpdatedAt` snapshot (and can be rejected with 412 by a supporting * backend) unless `WORKFLOW_PRECONDITION_GUARD` is set to `0`. Backends without * guard support ignore the snapshot, so enabling by default is * backward-compatible. */ export declare function isPreconditionGuardEnabled(): boolean; /** * The `stateUpdatedAt` value to send with a replay-context event creation: the * ULID time (epoch ms) of the latest event the runtime has loaded. Events are * stored in ascending order, so the last one is the newest. Returns `undefined` * when there are no events or the latest id is not a decodable ULID. * * Granularity: snapshots are epoch-milliseconds, and the backend allows an * equal-timestamp snapshot (an up-to-date client must not be rejected). Two * out-of-band events landing in the same millisecond where only the first was * loaded therefore pass the guard undetected — the guard is best-effort by * design, and fails open rather than livelocking. */ export declare function latestEventStateUpdatedAt(events: Event[]): number | undefined; /** * The `stateUpdatedAt` to attach to a replay-context event creation: * the loaded snapshot's ULID time when the precondition guard is enabled, * `undefined` (no guard, backend behaves as before) otherwise. */ export declare function stateUpdatedAtForCreate(events: Event[]): number | undefined; /** * Runs a replay-context event creation with the optimistic-concurrency guard. * * `op` receives the current `stateUpdatedAt` (the ULID time of the latest * loaded event) to pass to `world.events.create`. If the backend rejects the * creation as stale (`PreconditionFailedError` / 412), the event log is * reloaded to completion from the last cursor, merged into `log` in place, and * `op` is retried with the now-newer snapshot — up to * `PRECONDITION_MAX_RELOAD_RETRIES` times. If it still fails, the error is * rethrown so the run falls back to a queue re-invocation. Non-precondition * errors are rethrown immediately. */ export declare function withPreconditionRetry<T>(runId: string, log: MutableEventLog, op: (stateUpdatedAt: number | undefined) => Promise<T>): Promise<T>; /** * Wraps a request/response handler and adds a health check "mode" * based on the presence of a `__health` query parameter. */ export declare function withHealthCheck(handler: (req: Request) => Promise<Response>, worldSpecVersion?: number): (req: Request) => Promise<Response>; /** * Queues a message to the specified queue with tracing. */ export declare function queueMessage(world: World, ...args: Parameters<typeof world.queue>): Promise<void>; /** * Calculates the queue overhead time in milliseconds for a given message. */ export declare function getQueueOverhead(message: { requestedAt?: Date; }): { [k: string]: number; } | undefined; /** * Returns a memoized accessor for the per-run AES-256 encryption key. * * The first call resolves the key via `world.getEncryptionKeyForRun` (which * may do HKDF derivation locally on Vercel, or a network fetch from * external contexts) and imports it as a `CryptoKey`; subsequent calls * await the same cached promise. If the world doesn't support encryption * or the run has no key configured, the cached value is `undefined`. * * Used by step / workflow handlers to defer the (potentially expensive) * key fetch until the first code path that actually needs it — typically * input hydration on the success path, or error dehydration on a failure * path. Both paths can race-call the accessor without triggering duplicate * fetches. * * Errors thrown by `getEncryptionKeyForRun` propagate to every caller * (the cached promise rejects). This is intentional: when encryption is * configured, we never want to silently fall back to plaintext * serialization. A propagated error in an event-emission path leaves the * outer try/catch to log and surface the issue; the queue's redelivery * semantics will retry the key fetch on the next attempt. */ export declare function memoizeEncryptionKey(world: World, runOrId: WorkflowRun | string): () => Promise<CryptoKey | undefined>; //# sourceMappingURL=helpers.d.ts.map