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* fix(memory): bounded shutdown flush via MemoryManager.shutdown_flush Re-applies the memory-queue shutdown drain on top of the pluggable MemoryManager abstraction (#4122): the old top-level MemoryUpdateQueue singleton is gone, so the drain is now a backend contract instead of host code reaching into the queue. - MemoryManager ABC: shutdown_flush(timeout) -> bool. Every backend implements a bounded graceful-shutdown drain. - DeerMem: queue.flush_sync (daemon-thread + Event.wait hard timeout for the uninterruptible sync LLM call; joins an in-flight worker first so contexts a debounce Timer already pulled out are not lost on exit; skips inter-item sleep on the drain path; per-item succeeded/failed count), exposed via shutdown_flush. - noop: shutdown_flush is a clean no-op success. - Gateway lifespan: call get_memory_manager().shutdown_flush(timeout) after channels/scheduler stop, via asyncio.to_thread, try/except bounded. No host-level pending/processing guard -- the backend short-circuits on an idle buffer, so the host cannot "forget" the in-flight case (structurally eliminates the guard race flagged on the prior revision). - shutdown_flush_timeout_seconds added to the shared MemoryConfig (host-owned lifecycle budget, default 30, 1-300) + exposed on MemoryConfigResponse and the embedded client; config_version 25 -> 26. Tests: queue flush_sync (7), lifespan drain incl. False-branch caplog assertion + disabled gate (3), ABC contract noop/deermem (3). * fix(chart): gateway grace period so memory drain is not SIGKILLed K8s defaults terminationGracePeriodSeconds to 30s, shorter than the Gateway's graceful-shutdown work (channel stop ~5s + memory queue drain default 30s). Without an explicit grace period, K8s SIGKILLs the memory drain mid-flight and silently re-introduces the loss shutdown_flush is fixing (flagged on the prior revision). - gateway pod: terminationGracePeriodSeconds (default 45, configurable). - gateway container: preStop sleep (default 5, 0 disables) so the Service/ingress deregisters the pod before SIGTERM begins the drain. - values.yaml + README: both configurable; README documents that the grace period must track memory.shutdown_flush_timeout_seconds. * docs(memory): document shutdown_flush_timeout_seconds + lifespan drain Add the host-shared field to the memory config list and Config Schema summary in backend/AGENTS.md, noting the lifespan drain and the K8s grace-period relationship. * fix(chart): bump embedded config_version to 26 The chart's embedded `config:` block (values.yaml + README example) still had config_version: 25 after commit f3ca8e9f raised config.example.yaml to 26, failing the validate-chart config_version drift check. Bump both to 26.
485 lines
22 KiB
Python
485 lines
22 KiB
Python
"""Memory manager contract + pluggable backend factory.
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This module is the shared, backend-agnostic core of the memory package. It
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defines the :class:`MemoryManager` interface (9 methods) that every backend
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implements, plus a singleton :func:`get_memory_manager` factory that resolves
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the active backend from ``MemoryConfig.manager_class``.
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Swap backend = drop a ``backends/<name>/`` folder exposing ``MANAGER_CLASS``
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and set ``manager_class: <name>``. Nothing else in deer-flow changes.
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Scope note: this phase is *pluggable only*, not black-box. Agent-side
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conventions (``enabled`` gating at call sites, ``<memory>`` wrapping in
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``_get_memory_context``) stay where they are; they are backend-agnostic and
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do not impede pluggability.
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"""
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from __future__ import annotations
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import importlib
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import logging
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import os
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import threading
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from abc import ABC, abstractmethod
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from pathlib import Path
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from types import ModuleType
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from typing import Any
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from deerflow.config.memory_config import get_memory_config
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logger = logging.getLogger(__name__)
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# Backend packages live in <this dir>/backends/<name>/.
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_BACKENDS_DIR = Path(__file__).parent / "backends"
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# Sentinel attribute each backend's __init__ exposes (a MemoryManager subclass).
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_MANAGER_CLASS_ATTR = "MANAGER_CLASS"
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# Singleton instance + backend-registry cache (reset together by reset_memory_manager).
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# _manager_lock guards get_memory_manager()'s double-checked init (multi-threaded).
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_memory_manager: MemoryManager | None = None
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_backends_cache: dict[str, type[MemoryManager]] | None = None
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_manager_lock = threading.Lock()
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class MemoryManager(ABC):
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"""Backend-neutral memory manager contract (9 methods).
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Memories are bucketed per ``(agent_name, user_id)``; ``thread_id`` aligns
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with the deer-flow conversation thread. The contract is deliberately
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neutral so a third-party memory system can be adapted without deer-flow
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code changes:
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- :meth:`get_context` returns plain injection text; the *format* is the
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implementation's own choice and is NOT part of the contract (DeerMem
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does load + ``format_memory_for_injection``; another backend may do
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its own search + formatting).
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- :meth:`add` / :meth:`add_nowait` take raw conversation messages; any
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filtering / correction-/reinforcement-detection is the implementation's
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private concern (not on the contract).
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- No facts-model assumption: a backend need not store "facts" at all.
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Methods marked *stub* are part of the contract but have no caller yet in
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this phase; DeerMem raises ``NotImplementedError`` for them, a future
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backend (or a later DeerMem ``core/`` module) may implement them for real.
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"""
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def __init__(self, backend_config: dict[str, Any] | None = None) -> None:
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"""Receive backend-private config (the factory passes ``backend_config``).
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Default stores the raw dict; backends that need to parse it (e.g. DeerMem
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into a ``DeerMemConfig``) override ``__init__``. Backends that ignore
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private config (e.g. noop) inherit this unchanged.
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"""
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self._backend_config = backend_config
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# ── Write ────────────────────────────────────────────────────────────
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@abstractmethod
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def add(
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self,
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thread_id: str,
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messages: list[Any],
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*,
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agent_name: str | None = None,
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user_id: str | None = None,
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trace_id: str | None = None,
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) -> None:
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"""Queue a conversation for memory update (debounced, asynchronous).
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Args:
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thread_id: Conversation thread id.
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messages: Raw conversation messages; the implementation filters
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to user inputs + final assistant responses itself.
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agent_name: Per-agent bucket; ``None`` = global memory.
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user_id: Per-user bucket.
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trace_id: Request trace id captured for memory-LLM tracing.
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"""
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@abstractmethod
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def add_nowait(
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self,
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thread_id: str,
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messages: list[Any],
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*,
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agent_name: str | None = None,
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user_id: str | None = None,
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) -> None:
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"""Queue a conversation for *immediate* memory update (emergency flush).
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Used right before summarization removes messages from state, so the
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content is captured instead of lost.
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"""
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# ── Read ─────────────────────────────────────────────────────────────
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@abstractmethod
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def get_context(
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self,
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user_id: str | None,
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*,
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agent_name: str | None = None,
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thread_id: str | None = None,
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) -> str:
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"""Return injection-ready memory text for the given bucket.
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Implementations load their memory and format it however they choose;
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the returned string is injected verbatim by call sites. Format
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parameters are the backend's own private config (received via
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``backend_config`` at construction), NOT a host config on this method.
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"""
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@abstractmethod
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def search(
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self,
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query: str,
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top_k: int = 5,
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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category: str | None = None,
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) -> list[dict[str, Any]]:
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"""Search the bucket's memory for facts matching ``query``; return up to
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``top_k`` ranked by relevance. ``category`` (optional) filters BEFORE the
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``top_k`` slice so a category-scoped search is not starved by other
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categories' higher-ranked facts."""
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# ── Manage ───────────────────────────────────────────────────────────
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@abstractmethod
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def get_memory(
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self,
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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) -> dict[str, Any]:
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"""Return the full memory document for the bucket."""
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@abstractmethod
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def delete_memory(
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self,
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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) -> None:
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"""Delete the entire memory document for the bucket. *stub* this phase."""
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@abstractmethod
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def clear_memory(
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self,
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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) -> dict[str, Any]:
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"""Clear the bucket's memory; return the cleared (now-empty) document."""
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@abstractmethod
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def import_memory(
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self,
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memory_data: dict[str, Any],
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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) -> dict[str, Any]:
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"""Import a memory document into the bucket; return the merged result."""
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@abstractmethod
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def export_memory(
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self,
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*,
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user_id: str | None = None,
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agent_name: str | None = None,
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) -> dict[str, Any]:
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"""Export the memory document for the bucket. *stub* this phase (no caller yet)."""
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# ── Lifecycle ───────────────────────────────────────────────────────
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@abstractmethod
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def shutdown_flush(self, timeout: float) -> bool:
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"""Best-effort bounded drain of pending updates on graceful shutdown.
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Runs on the Gateway shutdown path (after IM channels and the scheduler
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stop, so no new IM/scheduler updates arrive during the drain) to flush
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updates still sitting in the backend's debounce buffer. Without it, any
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update enqueued since the last timer fire is lost on restart / rolling
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deploy / SIGTERM, because the buffer is pure in-memory and the debounce
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worker is a daemon thread killed on process exit.
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Implementations must honour a *hard* ``timeout``: the drain makes a
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synchronous LLM call that cannot be interrupted, so the caller (the
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Gateway lifespan) needs a real upper bound that lines up with the K8s
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``terminationGracePeriodSeconds`` (the drain must finish inside the pod
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grace window, or K8s SIGKILLs it mid-drain and the loss the drain is
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fixing is silently re-introduced).
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Returns ``True`` if the drain genuinely finished within ``timeout``
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(buffer empty, no worker still running, no exception); ``False`` on
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timeout or failure (the caller logs a warning and proceeds to exit --
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any unfinished tail is dropped, strictly better than no flush). A
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backend with no pending work (or no buffer at all) returns ``True``
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immediately, so the host may call this unconditionally when memory is
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enabled without gating on backend-private queue state.
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"""
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# ── Backend discovery (drop-in) ───────────────────────────────────────────
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def _scan_backends() -> dict[str, type[MemoryManager]]:
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"""Discover pluggable backends under ``backends/<name>/``.
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Each subpackage that exposes a ``MANAGER_CLASS`` attribute (a
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:class:`MemoryManager` subclass) is registered under its folder name.
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Results are cached for the process. Folder name == backend name ==
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``manager_class`` config value (drop-in contract). A backend that fails
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to import is logged and skipped so a broken optional backend never breaks
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the factory.
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"""
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global _backends_cache
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if _backends_cache is not None:
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return _backends_cache
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registry: dict[str, type[MemoryManager]] = {}
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if not _BACKENDS_DIR.is_dir():
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_backends_cache = registry
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return registry
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for entry in sorted(_BACKENDS_DIR.iterdir()):
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if not entry.is_dir() or entry.name.startswith(("_", ".")):
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continue
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if not (entry / "__init__.py").is_file():
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continue
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dotted = f"deerflow.agents.memory.backends.{entry.name}"
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try:
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module: ModuleType = importlib.import_module(dotted)
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except Exception: # noqa: BLE001 - a broken backend must not break the factory
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logger.exception("Failed to import memory backend %r; skipping", entry.name)
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continue
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cls = getattr(module, _MANAGER_CLASS_ATTR, None)
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if cls is None:
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continue
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if not (isinstance(cls, type) and issubclass(cls, MemoryManager)):
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logger.warning(
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"Memory backend %r exposes MANAGER_CLASS=%r which is not a MemoryManager subclass; skipping",
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entry.name,
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cls,
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)
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continue
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registry[entry.name] = cls
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_backends_cache = registry
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return registry
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def _resolve_manager_class(manager_class: str) -> type[MemoryManager]:
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"""Resolve a ``manager_class`` config value to a concrete class.
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Resolution order:
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1. Registered short name (from :func:`_scan_backends`).
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2. Dotted import path (``pkg.mod:Cls`` or ``pkg.mod.Cls``).
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A value that resolves to neither is a config error: raise rather than
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silently fall back to a different storage backend. Memory is persistent
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state, so silently substituting DeerMem when an explicit ``manager_class``
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fails to resolve (typo / import error / missing attr) would route writes to
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the wrong store -- a silent data-integrity footgun. Fail loud (the manager
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is resolved eagerly at startup so it can be warmed) so the operator fixes
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``memory.manager_class`` instead of discovering the mismatch later.
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"""
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registry = _scan_backends()
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if manager_class in registry:
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return registry[manager_class]
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# Treat as a dotted path: support both "pkg.mod:Cls" and "pkg.mod.Cls".
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dotted_error: str | None = None
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if ":" in manager_class:
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module_path, _, attr = manager_class.partition(":")
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else:
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module_path, _, attr = manager_class.rpartition(".")
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if module_path and attr:
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try:
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module = importlib.import_module(module_path)
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except ImportError as e:
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dotted_error = f"cannot import module {module_path!r}: {e}"
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else:
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cls = getattr(module, attr, None)
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if cls is None:
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dotted_error = f"attribute {attr!r} not found in {module_path!r}"
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elif not (isinstance(cls, type) and issubclass(cls, MemoryManager)):
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dotted_error = f"{manager_class!r} resolved to non-MemoryManager {cls!r}"
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else:
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return cls
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raise ValueError(
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f"memory.manager_class={manager_class!r} is not a registered backend name "
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f"(known: {sorted(registry)}) nor a resolvable 'pkg.mod:Cls' path" + (f": {dotted_error}" if dotted_error else "") + ". Fix memory.manager_class in config; refusing to silently fall back to a "
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"different storage backend (memory is persistent state -- a wrong store is a "
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"silent data-integrity footgun)."
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)
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# ── Host-default hooks (injected into backend_config by the factory) ──────
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#
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# DeerMemConfig declares ``tracing_callback`` and ``should_keep_hidden_message``
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# as optional, host-agnostic slots (default ``None``). The portable package
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# never names a deer-flow concept, so the host fills these slots HERE -- in the
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# factory, which is host code outside ``backends/deermem/``. Backends whose
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# config schema declares these slots (DeerMem) consume them via
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# ``from_backend_config``'s known-field filter; others (e.g. noop) ignore
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# them. An explicit value in ``backend_config`` (set programmatically) takes
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# precedence and is left untouched.
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#
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# Imports are lazy (matching the ``runtime_home`` precedent) so this module
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# stays cheap to import and so another agent vendoring the contract only has
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# to edit these two helpers, not the top-level imports.
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def _host_default_tracing_callback(
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invoke_config: dict[str, Any],
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*,
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thread_id: str | None,
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user_id: str | None,
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trace_id: str | None,
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model_name: str | None,
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) -> None:
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"""deer-flow default for DeerMem's ``tracing_callback`` slot.
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Merges Langfuse trace metadata into ``invoke_config`` (no-op when
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Langfuse is not an enabled tracing provider). Maps DeerMem's ``trace_id``
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onto ``inject_langfuse_metadata``'s ``deerflow_trace_id`` kwarg -- the
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name mismatch that previously made memory LLM tracing silently TypeError
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is bridged here, at the host seam, so the portable package is untouched.
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"""
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from deerflow.tracing import inject_langfuse_metadata
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inject_langfuse_metadata(
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invoke_config,
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thread_id=thread_id,
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user_id=user_id,
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assistant_id="memory_agent",
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model_name=model_name,
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environment=os.environ.get("DEER_FLOW_ENV") or os.environ.get("ENVIRONMENT"),
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deerflow_trace_id=trace_id,
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)
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def _host_default_should_keep_hidden_message(additional_kwargs: Any) -> bool:
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"""deer-flow default for DeerMem's ``should_keep_hidden_message`` slot.
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Keep a ``hide_from_ui`` message only when it carries a human-input
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clarification response, so the user's clarification is captured into
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memory; drop all other hidden messages (framework-internal reminders,
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view-image payloads, etc.). Restores the pre-abstraction behaviour where
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``message_processing`` imported ``read_human_input_response`` directly.
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"""
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from deerflow.agents.human_input import read_human_input_response
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return read_human_input_response(additional_kwargs) is not None
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def _host_default_llm() -> Any:
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"""deer-flow default for DeerMem's ``host_llm`` slot (zero-config extraction).
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Builds the host's default chat model (``create_chat_model(name=None)`` ->
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app default, ``attach_tracing=True`` so memory LLM calls surface in langfuse
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via the metadata ``tracing_callback`` merges), mirroring pre-abstraction
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``model_name: null``. Returns ``None`` if no model is available (no models
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configured) so DeerMem no-ops extraction with a clear error rather than
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crashing startup.
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"""
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try:
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from deerflow.models import create_chat_model
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return create_chat_model(name=None)
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except Exception: # noqa: BLE001 - no default model is a config state, not a crash
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logger.warning("Could not build host default model for DeerMem memory extraction; memory extraction will be disabled", exc_info=True)
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return None
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# ── Singleton factory ─────────────────────────────────────────────────────
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def get_memory_manager() -> MemoryManager:
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"""Return the singleton :class:`MemoryManager` for the active config.
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Reads ``MemoryConfig.manager_class`` and resolves it via
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:func:`_resolve_manager_class`. The instance is cached; call
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:func:`reset_memory_manager` to force re-resolution (tests / runtime
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backend switching).
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"""
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global _memory_manager
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if _memory_manager is not None:
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return _memory_manager
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# deer-flow is multi-threaded: memory injection runs via asyncio.to_thread,
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# the update queue fires on a Timer thread, and gateway/agent threads all
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# reach here. Double-checked locking ensures only one instance is built even
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# on first-call contention -- essential since backends now own stateful
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# dependencies (DeerMem owns its storage/queue/updater; others may open
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# connections) constructed here in __init__.
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with _manager_lock:
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if _memory_manager is not None:
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return _memory_manager
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cfg = get_memory_config()
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manager_class = cfg.manager_class
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cls = _resolve_manager_class(manager_class)
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backend_config = dict(cfg.backend_config or {})
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# Zero-config UX: default DeerMem storage to deer-flow's state dir
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# (absolute, CWD-independent) so memory lands at
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# {runtime_home}/users/{user_id}/memory.json (deer-flow's base_dir,
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# same as pre-abstraction) unless the host explicitly sets storage_path.
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if not backend_config.get("storage_path"):
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from deerflow.config.runtime_paths import runtime_home
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backend_config["storage_path"] = str(runtime_home())
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elif not Path(backend_config.get("storage_path", "")).is_absolute():
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# A relative storage_path is resolved against runtime_home() (base_dir-
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# relative, CWD-independent) to preserve pre-abstraction semantics; left
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# as-is it would be CWD-relative and fragile. (Resolved here in host code
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# so the portable paths.py stays free of any runtime_home dependency.)
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from deerflow.config.runtime_paths import runtime_home
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backend_config["storage_path"] = str((Path(runtime_home()) / backend_config["storage_path"]).resolve())
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# Guard: DeerMem treats storage_path as a root DIRECTORY (per-user memory
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# under {storage_path}/users/{uid}/memory.json). A file-style value (e.g. a
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# leftover .json file from the pre-abstraction file-path semantics) would
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# make FileMemoryStorage.save's mkdir(parents=True) raise NotADirectoryError,
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# caught as OSError -> silent write failure. Fail loud at startup instead
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# (memory is persistent state -- a wrong root is a data-integrity footgun).
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_resolved_storage_path = Path(backend_config["storage_path"])
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if _resolved_storage_path.is_file():
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raise ValueError(
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f"memory.backend_config.storage_path={backend_config['storage_path']!r} "
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f"resolves to an existing file {_resolved_storage_path}; DeerMem treats "
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f"storage_path as a root DIRECTORY (per-user memory under "
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f"{{storage_path}}/users/{{uid}}/memory.json). Point it at a directory."
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)
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# Host-default hooks: callables cannot come from YAML, so the host
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# injects them here. DeerMem consumes them (known config fields);
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# noop ignores them (unknown-field filter in from_backend_config).
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# An explicit value (incl. ``null`` in YAML) takes precedence -> the
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# host default is only filled when the key is absent.
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if "tracing_callback" not in backend_config:
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backend_config["tracing_callback"] = _host_default_tracing_callback
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if "should_keep_hidden_message" not in backend_config:
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backend_config["should_keep_hidden_message"] = _host_default_should_keep_hidden_message
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# Zero-config LLM: when no memory model is configured, inject the host's
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# default chat model so memory extraction works out of the box (mirrors
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# pre-abstraction `model_name: null` -> app default). DeerMem prefers
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# host_llm over build_llm(model); other backends ignore the slot.
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model_cfg = backend_config.get("model")
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if not (isinstance(model_cfg, dict) and model_cfg.get("model")) and "host_llm" not in backend_config:
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backend_config["host_llm"] = _host_default_llm()
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# Restore structured-log trace correlation on the memory-update worker
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|
# thread (Timer / executor): bind trace_id into the request-trace
|
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# ContextVar. A None trace_id is left unbound by the updater's guard.
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if "trace_context_manager" not in backend_config:
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from deerflow.trace_context import request_trace_context
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backend_config["trace_context_manager"] = request_trace_context
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|
_memory_manager = cls(backend_config=backend_config)
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logger.info("Memory manager resolved: %s (manager_class=%r)", cls.__name__, manager_class)
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return _memory_manager
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def reset_memory_manager() -> None:
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"""Clear the cached singleton manager and the backend registry.
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|
|
|
The next :func:`get_memory_manager` call re-reads the config and re-scans
|
|
backends. Use this in tests or when switching backends at runtime.
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"""
|
|
global _memory_manager, _backends_cache
|
|
with _manager_lock:
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|
_memory_manager = None
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|
_backends_cache = None
|