generated from coulomb/repo-seed
Delivers all 12 tasks (T22–T33): Temporal Schedule manager + startup sync, NATS JetStream event router, FastAPI CRUD + manual trigger, Prometheus metrics wiring, custom search-attribute tagging, and operational runbook. Marks workplan status as done. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
183 lines
7.0 KiB
Python
183 lines
7.0 KiB
Python
"""Temporal workflow definitions for activity-core.
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Two workflows are registered here:
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- RunActivityWorkflow → orchestrator-tq
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- TaskExecutorWorkflow → task-execution-tq
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Workflow IDs follow the conventions in docs/conventions.md:
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RunActivityWorkflow: activity-{activity_id}:{trigger_key}
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TaskExecutorWorkflow: task-{run_id}:{task_type}:{index}
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"""
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from __future__ import annotations
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import uuid
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from datetime import timedelta
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from temporalio import workflow
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from temporalio.common import RetryPolicy, SearchAttributeKey, TypedSearchAttributes, SearchAttributePair
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with workflow.unsafe.imports_passed_through():
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from activity_core.activities import (
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load_activity_definition,
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log_run,
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persist_task_instance,
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resolve_context,
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)
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from activity_core.template_engine import evaluate_templates
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from activity_core.schedule_manager import SCHEDULED_TRIGGER_KEY
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# T32: Custom search attributes for Temporal visibility (must be registered in Temporal first).
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# Registration: temporal operator search-attribute create --name ActivityId --type Keyword
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_ACTIVITY_ID_KEY = SearchAttributeKey.for_keyword("ActivityId")
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_ACTIVITY_NAME_KEY = SearchAttributeKey.for_keyword("ActivityName")
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_RETRY_POLICY = RetryPolicy(
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initial_interval=timedelta(seconds=1),
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backoff_coefficient=2.0,
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maximum_interval=timedelta(minutes=5),
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maximum_attempts=10,
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)
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_ACTIVITY_TIMEOUT = timedelta(minutes=5)
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_TASK_QUEUE = "task-execution-tq"
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@workflow.defn
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class RunActivityWorkflow:
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"""Durable orchestration workflow.
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Sequence:
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1. load_activity_definition(activity_id) → defn dict
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2. resolve_context(defn.context_sources) → context snapshot
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3. evaluate_templates(templates, context) → task specs (pure, no activity)
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4. log_run(...) → run_id
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5. start_child_workflow per task spec (fire-and-forget, detached)
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"""
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@workflow.run
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async def run(
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self,
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activity_id: str,
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trigger_key: str,
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scheduled_for: str | None = None,
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) -> dict:
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"""
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Args:
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activity_id: UUID of the ActivityDefinition row.
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trigger_key: ISO-8601 datetime (cron) or event_id (event trigger).
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Used as the idempotency key component.
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scheduled_for: ISO-8601 string of the nominal scheduled time (cron only).
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Returns:
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{"run_id": str, "tasks_spawned": int}
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"""
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# ── 1. Load definition ────────────────────────────────────────────────
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defn: dict = await workflow.execute_activity(
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load_activity_definition,
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activity_id,
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start_to_close_timeout=_ACTIVITY_TIMEOUT,
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retry_policy=_RETRY_POLICY,
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)
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# T32: Tag this workflow execution with activity metadata so runs are
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# filterable in the Temporal UI (requires ActivityId + ActivityName to be
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# registered as custom search attributes — see docs/runbook.md).
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workflow.upsert_search_attributes(
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TypedSearchAttributes([
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SearchAttributePair(_ACTIVITY_ID_KEY, activity_id),
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SearchAttributePair(_ACTIVITY_NAME_KEY, defn.get("name", "")),
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])
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)
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# ── 2. Resolve context ────────────────────────────────────────────────
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context_snapshot: dict = await workflow.execute_activity(
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resolve_context,
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defn["context_sources"],
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start_to_close_timeout=_ACTIVITY_TIMEOUT,
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retry_policy=_RETRY_POLICY,
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)
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# ── 3. Evaluate templates (pure — no activity) ────────────────────────
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task_specs: list[dict] = evaluate_templates(
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defn["task_templates"], context_snapshot
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)
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# ── 4. Log the run ────────────────────────────────────────────────────
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# run_id is derived deterministically so log_run retries are idempotent.
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# For schedule-fired runs the trigger_key is the sentinel "scheduled";
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# each fire has a unique workflow_id (embeds ${firstScheduledTime}), so
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# we use the workflow_id as the dedup key instead.
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if trigger_key == SCHEDULED_TRIGGER_KEY:
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dedup_source = workflow.info().workflow_id
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else:
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dedup_source = f"{activity_id}:{trigger_key}"
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run_id = str(uuid.uuid5(uuid.NAMESPACE_URL, dedup_source))
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await workflow.execute_activity(
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log_run,
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{
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"run_id": run_id,
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"activity_id": activity_id,
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"scheduled_for": scheduled_for,
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"context_snapshot": context_snapshot,
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"tasks_spawned": len(task_specs),
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"version_used": defn["version"],
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},
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start_to_close_timeout=_ACTIVITY_TIMEOUT,
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retry_policy=_RETRY_POLICY,
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)
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# ── 5. Spawn task executor children (fire-and-forget) ─────────────────
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for index, spec in enumerate(task_specs):
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child_id = f"task-{run_id}:{spec['task_type']}:{index}"
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await workflow.start_child_workflow(
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TaskExecutorWorkflow,
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args=[run_id, spec["task_type"], spec["params"]],
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id=child_id,
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task_queue=_TASK_QUEUE,
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parent_close_policy=workflow.ParentClosePolicy.ABANDON,
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)
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return {"run_id": run_id, "tasks_spawned": len(task_specs)}
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@workflow.defn
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class TaskExecutorWorkflow:
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"""Child workflow that executes one concrete task instance.
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Stub behaviour: persists a task_instances row with status=done and
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returns immediately. Real task execution logic replaces this in a
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later workstream.
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task_id is derived deterministically from the workflow's own ID so
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persist_task_instance retries remain idempotent.
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"""
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@workflow.run
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async def run(self, run_id: str, task_type: str, params: dict) -> dict:
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# Derive a stable task_id from this workflow's own ID.
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task_id = str(
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uuid.uuid5(uuid.NAMESPACE_URL, workflow.info().workflow_id)
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)
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workflow.logger.info(
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"TaskExecutorWorkflow started",
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extra={"run_id": run_id, "task_type": task_type, "task_id": task_id},
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)
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await workflow.execute_activity(
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persist_task_instance,
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{
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"id": task_id,
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"run_id": run_id,
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"type": task_type,
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"params": params,
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"status": "done",
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},
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task_queue=_TASK_QUEUE,
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start_to_close_timeout=_ACTIVITY_TIMEOUT,
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retry_policy=_RETRY_POLICY,
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)
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return {"task_id": task_id, "status": "done"}
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