mirror of
https://github.com/openswarm-ai/openswarm.git
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379 lines
14 KiB
Python
379 lines
14 KiB
Python
import asyncio
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import logging
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from contextlib import asynccontextmanager
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from datetime import datetime
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from typing import Optional
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from fastapi import HTTPException, Header, Request
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from backend.config.Apps import SubApp
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from backend.apps.workflows.models import (
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Workflow,
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WorkflowCreate,
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WorkflowUpdate,
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WorkflowRun,
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)
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from backend.apps.workflows import storage, scheduler, executor, audit, escalation
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logger = logging.getLogger(__name__)
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def _scan_cron_for_openswarm() -> list[str]:
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"""Surface OS-level scheduled-task entries that reference us.
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macOS + Linux: read `crontab -l`. Windows: query `schtasks` for any
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task whose command/path contains 'openswarm'. Best-effort across all
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three; any failure (no tool installed, permission denied, parse
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error) just returns []. Surfaced to the FE so the Workflows hub can
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offer a one-click migration banner to convert into native workflows.
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"""
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import subprocess
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import platform as _platform
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findings: list[str] = []
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if _platform.system() == "Windows":
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try:
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proc = subprocess.run(
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["schtasks", "/query", "/fo", "CSV", "/v"],
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capture_output=True, text=True, timeout=4,
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)
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if proc.returncode != 0:
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return []
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for line in (proc.stdout or "").splitlines():
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if "openswarm" in line.lower() and not line.lstrip().startswith('"#'):
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findings.append(line.strip())
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except Exception:
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return []
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return findings
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# macOS + Linux
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try:
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proc = subprocess.run(
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["crontab", "-l"],
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capture_output=True, text=True, timeout=2,
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)
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if proc.returncode != 0:
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return []
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out = proc.stdout or ""
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return [line.strip() for line in out.splitlines() if "openswarm" in line.lower() and not line.strip().startswith("#")]
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except Exception:
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return []
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_cron_findings: list[str] = []
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@asynccontextmanager
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async def workflows_lifespan():
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storage.init()
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await scheduler.start()
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# Cheap one-shot scan for prior cron entries that reference us. We
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# don't migrate automatically; the FE shows a banner with a "Convert
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# to OpenSwarm scheduled tasks" button so the user is in control.
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global _cron_findings
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_cron_findings = _scan_cron_for_openswarm()
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try:
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yield
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finally:
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await scheduler.stop()
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workflows = SubApp("workflows", workflows_lifespan)
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def _derive_icon(wf: Workflow) -> str:
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"""Cheap icon hint used until proper auto-icon generation lands.
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Pull the first emoji from the title, falling back to the first
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letter. Keeps the Search list (image 2 annotation) populated without
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waiting on the LLM-based icon generator.
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"""
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title = (wf.title or "").strip()
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for ch in title:
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if ord(ch) > 0x2700:
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return ch
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if title:
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return title[:1].upper()
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return "W"
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@workflows.router.get("/list")
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async def list_workflows(dashboard_id: Optional[str] = None):
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items = storage.list_workflows()
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if dashboard_id:
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items = [w for w in items if not w.dashboard_id or w.dashboard_id == dashboard_id]
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items.sort(key=lambda w: w.updated_at or w.created_at, reverse=True)
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# Enrich with cost_estimate so calendar tooltips and the WorkflowsHub
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# list don't have to round-trip to GET /workflows/{id} per row. Cheap
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# because fires_in_window walks at most ~30 fires per workflow.
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return {"workflows": [_enriched(w) for w in items]}
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@workflows.router.post("/create")
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async def create_workflow(body: WorkflowCreate):
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actions = body.actions
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# Scheduled workflows default to freeze=on for safety. The user can
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# flip "Full agent access" in the editor with an explicit confirm.
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# Source-session creates inherit the chat's tool choices so we leave
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# them alone there (the source session itself already vetted the
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# blast radius).
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if body.schedule.enabled and not actions.freeze and not body.source_session_id:
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actions = actions.model_copy(update={"freeze": True})
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wf = Workflow(
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title=body.title,
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description=body.description,
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icon=body.icon,
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system_prompt=body.system_prompt,
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use_synced_prompt=body.use_synced_prompt,
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steps=body.steps,
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actions=actions,
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schedule=body.schedule,
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permissions=body.permissions or [],
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source_session_id=body.source_session_id,
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dashboard_id=body.dashboard_id,
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model=body.model or "sonnet",
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mode=body.mode or "agent",
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provider=body.provider or "anthropic",
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cost_cap_usd_monthly=body.cost_cap_usd_monthly,
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)
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if not wf.icon:
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wf.icon = _derive_icon(wf)
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if wf.schedule.enabled:
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wf.next_run_at = scheduler.compute_next_fire(wf)
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# AI-generated description when the caller didn't supply one. Best-
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# effort via the user's configured aux model; on failure we leave
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# description empty so the UI just hides the row rather than showing
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# a fake placeholder. Doesn't block create — caller gets the workflow
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# back, and a background task fills the description in seconds.
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if not (wf.description or "").strip():
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try:
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wf.description = await _generate_description(wf)
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except Exception:
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pass
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storage.save_workflow(wf)
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scheduler.kick()
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return _enriched(wf)
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async def _generate_description(wf: Workflow) -> str:
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"""One aux-model call: summarize steps into a one-paragraph blurb.
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Returns "" on any failure so the caller can write the result back
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unconditionally. Never raises.
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"""
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if not wf.steps:
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return ""
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try:
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from backend.apps.agents.providers.registry import resolve_aux_model
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from backend.apps.agents.providers.registry import get_anthropic_client_for_model
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from backend.apps.settings.settings import load_settings as _ls
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except Exception:
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return ""
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settings = _ls()
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try:
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aux_model, _ = await resolve_aux_model(settings, preferred_tier="haiku")
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client = get_anthropic_client_for_model(settings, aux_model)
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except Exception:
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return ""
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steps_lines = "\n".join(f"{i+1}. {s.text}" for i, s in enumerate(wf.steps) if s.text)
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prompt = (
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"Write one short paragraph (2-3 sentences, under 50 words) that "
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"describes what this workflow does, in plain English. No bullet "
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"points, no preamble like 'This workflow...'. Just the description.\n\n"
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f"Title: {wf.title}\n\n"
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f"Steps:\n{steps_lines}"
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)
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try:
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resp = await client.messages.create(
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model=aux_model,
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max_tokens=160,
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messages=[{"role": "user", "content": prompt}],
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)
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text = ""
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if isinstance(resp.content, list):
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for block in resp.content:
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if getattr(block, "type", None) == "text":
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text += getattr(block, "text", "")
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return text.strip()[:500]
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except Exception:
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return ""
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def _last_run_cost(wid: str) -> float:
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for r in storage.list_runs(wid, limit=10):
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if r.status in ("success", "ran_late") and r.cost_usd:
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return float(r.cost_usd)
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return 0.0
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def _enriched(wf: Workflow) -> dict:
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"""Serialize a workflow with a cost_estimate block attached.
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monthly_usd assumes future fires cost the same as the last successful
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fire. Surfaces honestly as "at last run's cost" in the UI so users
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understand it's a projection, not a quota.
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"""
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base = wf.model_dump(mode="json")
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last = _last_run_cost(wf.id)
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fires = scheduler.fires_in_window(wf, days=30)
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base["cost_estimate"] = {
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"monthly_usd": round(last * fires, 4),
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"last_run_usd": round(last, 4),
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"fires_per_month": fires,
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}
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return base
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@workflows.router.get("/active")
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async def list_active_runs():
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"""Snapshot of currently-running workflow runs. Used by the tray and
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the auto-updater veto."""
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return {"active": scheduler.list_active()}
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@workflows.router.post("/pause-all")
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async def pause_all_schedules():
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storage.set_paused(True)
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scheduler.kick()
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return {"paused": True}
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@workflows.router.post("/resume-all")
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async def resume_all_schedules():
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storage.set_paused(False)
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scheduler.kick()
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return {"paused": False}
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@workflows.router.get("/paused")
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async def get_paused_state():
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return {"paused": storage.get_paused()}
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@workflows.router.get("/cron/findings")
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async def cron_findings():
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"""Cron entries we found at startup that reference OpenSwarm. The
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FE renders a one-time banner inviting users to convert them; we
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return the raw lines so the user can verify before migrating."""
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return {"entries": list(_cron_findings)}
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@workflows.router.get("/cloud/sms/status")
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async def cloud_sms_status():
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"""Probe used by the FE to decide whether to show the 'falls back to
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in-app notify' acknowledgement on the text/call tiers. Returns
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enabled=False until the cloud SMS bridge ships."""
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return {"enabled": False}
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@workflows.router.post("/runs/{run_id}/ack")
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async def ack_run(run_id: str):
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cancelled = escalation.cancel(run_id)
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return {"acked": True, "had_pending_escalation": cancelled}
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@workflows.router.get("/runs/{run_id}/escalation")
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async def get_run_escalation(run_id: str):
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state = escalation.status(run_id)
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return {"state": state}
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@workflows.router.get("/{workflow_id}")
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async def get_workflow(workflow_id: str):
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wf = storage.get_workflow(workflow_id)
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if not wf:
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raise HTTPException(status_code=404, detail="Workflow not found")
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return _enriched(wf)
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@workflows.router.get("/{workflow_id}/audit")
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async def get_workflow_audit(workflow_id: str, limit: int = 50):
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wf = storage.get_workflow(workflow_id)
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if not wf:
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raise HTTPException(status_code=404, detail="Workflow not found")
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return {"entries": audit.read_tail(workflow_id, limit=limit)}
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@workflows.router.patch("/{workflow_id}")
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async def update_workflow(
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workflow_id: str,
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body: WorkflowUpdate,
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if_match: Optional[str] = Header(default=None, alias="If-Match"),
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):
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wf = storage.get_workflow(workflow_id)
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if not wf:
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raise HTTPException(status_code=404, detail="Workflow not found")
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# Optimistic concurrency: if the client passed If-Match, verify it
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# matches the current updated_at. Stale writes (another window or a
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# mid-edit background fire) get a 409 so the FE can prompt to reload
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# instead of silently clobbering the other actor's changes. Missing
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# header = legacy client, allow through (back-compat with the
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# frontend's pre-409 code path; FE rolls out If-Match immediately).
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if if_match:
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current_stamp = wf.updated_at.isoformat() if hasattr(wf.updated_at, "isoformat") else str(wf.updated_at)
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# Strip quotes a well-behaved HTTP client might add per RFC 7232.
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if if_match.strip().strip('"') != current_stamp:
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raise HTTPException(
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status_code=409,
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detail={
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"error": "stale_update",
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"message": "This workflow changed in another window or by a recent run. Reload and try again.",
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"current_updated_at": current_stamp,
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},
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)
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before = wf.model_dump(mode="json")
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data = body.model_dump(exclude_unset=True)
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for k, v in data.items():
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setattr(wf, k, v)
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wf.updated_at = datetime.now()
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if not wf.icon:
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wf.icon = _derive_icon(wf)
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wf.next_run_at = scheduler.compute_next_fire(wf) if wf.schedule.enabled else None
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storage.save_workflow(wf)
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audit.log_change(wf.id, "user", before, wf.model_dump(mode="json"))
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scheduler.kick()
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return _enriched(wf)
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@workflows.router.delete("/{workflow_id}")
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async def delete_workflow(workflow_id: str):
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existed = storage.delete_workflow(workflow_id)
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if not existed:
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raise HTTPException(status_code=404, detail="Workflow not found")
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scheduler.kick()
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return {"ok": True}
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@workflows.router.post("/{workflow_id}/run")
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async def run_workflow_now(workflow_id: str):
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wf = storage.get_workflow(workflow_id)
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if not wf:
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raise HTTPException(status_code=404, detail="Workflow not found")
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# executor.execute() owns the run record. Don't pre-create a stub here
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# or we end up with two rows per manual fire (one orphan "running"
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# row from this handler plus the real one from the executor).
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pre_ids = {r.id for r in storage.list_runs(wf.id, limit=10)}
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asyncio.create_task(executor.execute(wf, triggered_by="manual"))
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# Poll briefly for the newly created run id. We also surface the
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# run's status + error string when it lands quickly (e.g. cost-cap
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# short-circuit, _running collision) so the FE can render a toast
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# instead of silently switching to History.
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for _ in range(25):
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for r in storage.list_runs(wf.id, limit=10):
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if r.id not in pre_ids and r.triggered_by == "manual":
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return {
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"run_id": r.id,
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"status": r.status,
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"error": r.error,
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}
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await asyncio.sleep(0.01)
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return {"run_id": "", "status": None, "error": None}
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@workflows.router.get("/{workflow_id}/runs")
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async def list_workflow_runs(workflow_id: str, limit: int = 50):
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wf = storage.get_workflow(workflow_id)
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if not wf:
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raise HTTPException(status_code=404, detail="Workflow not found")
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runs = storage.list_runs(workflow_id, limit=limit)
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return {"runs": [r.model_dump(mode="json") for r in runs]}
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