237 lines
8.2 KiB
Python
237 lines
8.2 KiB
Python
"""Proactive workstream feed — contextual suggestions and actions (I-WORK-PROACTIVE).
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UI-/Domain-Trigger erzeugen kontextuelle Vorschläge/Actions im Workstream
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mit Priority, Dedupe, Cooldown und User-Einstellungen. Kein störendes
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Popup-/Clippy-Verhalten.
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"""
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from __future__ import annotations
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import logging
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import uuid
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from dataclasses import dataclass, field
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from datetime import UTC, datetime, timedelta
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from typing import Any, Literal
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from sqlalchemy.ext.asyncio import AsyncSession
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logger = logging.getLogger(__name__)
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Priority = Literal["low", "medium", "high", "urgent"]
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@dataclass
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class ProactiveSuggestion:
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"""A proactive suggestion/action for the workstream feed."""
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id: str = field(default_factory=lambda: str(uuid.uuid4()))
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trigger: str = "" # What triggered this (e.g. "mail.received", "contact.created")
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title: str = ""
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description: str = ""
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priority: Priority = "medium"
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action_type: str = "" # suggestion, action_required, info
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action_url: str = "" # Deep link to action
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entity_type: str | None = None
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entity_id: str | None = None
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blocks: list[dict[str, Any]] = field(default_factory=list)
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created_at: datetime = field(default_factory=lambda: datetime.now(UTC))
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expires_at: datetime | None = None
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metadata: dict[str, Any] = field(default_factory=dict)
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def to_dict(self) -> dict[str, Any]:
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return {
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"id": self.id,
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"trigger": self.trigger,
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"title": self.title,
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"description": self.description,
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"priority": self.priority,
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"action_type": self.action_type,
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"action_url": self.action_url,
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"entity_type": self.entity_type,
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"entity_id": self.entity_id,
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"blocks": self.blocks,
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"created_at": self.created_at.isoformat(),
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"expires_at": self.expires_at.isoformat() if self.expires_at else None,
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"metadata": self.metadata,
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}
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# ─── Dedupe + Cooldown ───────────────────────────────────────────────────────
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# In-memory dedupe cache (per-tenant). In production, use Redis.
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_dedupe_cache: dict[str, dict[str, datetime]] = {}
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# Default cooldown per trigger type (seconds)
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DEFAULT_COOLDOWNS: dict[str, int] = {
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"mail.received": 300, # 5 min between suggestions for same mail
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"contact.created": 600, # 10 min
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"workflow.completed": 60, # 1 min
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"agent.result": 120, # 2 min
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"default": 300, # 5 min default
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}
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def get_cooldown(trigger: str) -> int:
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"""Get cooldown period for a trigger type."""
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return DEFAULT_COOLDOWNS.get(trigger, DEFAULT_COOLDOWNS["default"])
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def _dedupe_key(tenant_id: uuid.UUID, trigger: str, entity_id: str | None) -> str:
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"""Build a dedupe key for a suggestion."""
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return f"{tenant_id}:{trigger}:{entity_id or 'none'}"
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def is_cooled_down(tenant_id: uuid.UUID, trigger: str, entity_id: str | None = None) -> bool:
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"""Check if a trigger is still in cooldown (should not produce new suggestions)."""
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key = _dedupe_key(tenant_id, trigger, entity_id)
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tenant_cache = _dedupe_cache.get(str(tenant_id), {})
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last_seen = tenant_cache.get(key)
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if last_seen is None:
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return False
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cooldown = get_cooldown(trigger)
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return datetime.now(UTC) - last_seen < timedelta(seconds=cooldown)
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def mark_suggested(tenant_id: uuid.UUID, trigger: str, entity_id: str | None = None) -> None:
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"""Mark a trigger as having produced a suggestion (for cooldown tracking)."""
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key = _dedupe_key(tenant_id, trigger, entity_id)
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tenant_id_str = str(tenant_id)
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if tenant_id_str not in _dedupe_cache:
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_dedupe_cache[tenant_id_str] = {}
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_dedupe_cache[tenant_id_str][key] = datetime.now(UTC)
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# ─── Suggestion Generators ───────────────────────────────────────────────────
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async def generate_suggestions(
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db: AsyncSession,
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tenant_id: uuid.UUID,
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user_id: uuid.UUID,
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trigger: str,
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payload: dict[str, Any],
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) -> list[ProactiveSuggestion]:
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"""Generate proactive suggestions for a trigger event (I-WORK-PROACTIVE).
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Checks cooldown, generates suggestions, and marks them as suggested.
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Returns a list of ProactiveSuggestion objects.
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"""
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entity_id = payload.get("entity_id") or payload.get("contact_id") or payload.get("message_id")
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# Check cooldown — don't spam
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if is_cooled_down(tenant_id, trigger, entity_id):
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return []
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suggestions: list[ProactiveSuggestion] = []
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# Generate based on trigger type
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if trigger == "mail.received":
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suggestions.append(ProactiveSuggestion(
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trigger=trigger,
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title="New email received",
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description=f"You received a new email from {payload.get('sender', 'unknown')}",
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priority="medium",
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action_type="info",
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action_url=f"/mail/messages/{entity_id}" if entity_id else "",
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entity_type="mail",
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entity_id=entity_id,
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blocks=[],
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))
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elif trigger == "contact.created":
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suggestions.append(ProactiveSuggestion(
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trigger=trigger,
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title="New contact created",
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description=f"New contact: {payload.get('name', 'Unknown')}",
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priority="low",
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action_type="suggestion",
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action_url=f"/contacts/{entity_id}" if entity_id else "",
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entity_type="contact",
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entity_id=entity_id,
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))
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elif trigger == "workflow.completed":
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suggestions.append(ProactiveSuggestion(
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trigger=trigger,
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title="Workflow completed",
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description=f"Workflow '{payload.get('workflow_name', 'Unknown')}' has been completed.",
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priority="medium",
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action_type="info",
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action_url=f"/workflows/instances/{entity_id}" if entity_id else "",
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entity_type="workflow_instance",
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entity_id=entity_id,
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))
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elif trigger == "agent.result":
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suggestions.append(ProactiveSuggestion(
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trigger=trigger,
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title="Agent completed task",
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description=f"Agent finished: {payload.get('summary', 'Task completed')}",
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priority="medium",
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action_type="action_required",
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action_url=f"/agents/runs/{entity_id}" if entity_id else "",
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entity_type="agent_run",
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entity_id=entity_id,
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))
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# Mark as suggested (cooldown)
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if suggestions:
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mark_suggested(tenant_id, trigger, entity_id)
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return suggestions
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# ─── User Settings ───────────────────────────────────────────────────────────
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def get_user_proactive_settings(user_id: uuid.UUID) -> dict[str, Any]:
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"""Get proactive feed settings for a user.
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In production, this would load from DB/user preferences.
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For now, returns defaults.
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"""
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return {
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"enabled": True,
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"min_priority": "low", # Don't show suggestions below this priority
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"max_per_hour": 20, # Rate limit suggestions per hour
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"triggers_enabled": {
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"mail.received": True,
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"contact.created": True,
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"workflow.completed": True,
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"agent.result": True,
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},
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}
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def filter_by_user_settings(
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suggestions: list[ProactiveSuggestion],
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settings: dict[str, Any],
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) -> list[ProactiveSuggestion]:
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"""Filter suggestions by user settings."""
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if not settings.get("enabled", True):
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return []
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min_priority = settings.get("min_priority", "low")
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priority_order = {"low": 0, "medium": 1, "high": 2, "urgent": 3}
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min_level = priority_order.get(min_priority, 0)
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triggers_enabled = settings.get("triggers_enabled", {})
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return [
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s for s in suggestions
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if priority_order.get(s.priority, 0) >= min_level
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and triggers_enabled.get(s.trigger, True)
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]
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__all__ = [
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"ProactiveSuggestion",
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"generate_suggestions",
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"is_cooled_down",
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"mark_suggested",
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"get_cooldown",
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"get_user_proactive_settings",
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"filter_by_user_settings",
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"DEFAULT_COOLDOWNS",
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]
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