- gateway/sense/decision_cache.py:DecisionCache(sha256(scope+文本) 键、 LRU + TTL 60s、4096 条上限、时钟可注入),对齐 auth._AuthCache 进程内模式 - Grader:仅 live 模式缓存纯决策负载(probs/head_version/vec); 命中跳过 embed + 线性头预测;tier 仍按当前 conformal 阈值即时重算; 观察落盘(observer.log)不因缓存命中跳过——校准数据完整性不受影响 - collect/shadow 模式不走缓存(校准必须全量);invalidate() 同步清空缓存 (阈值/工件切换即时生效,TTL 仅兜底陈旧) pytest 455 passed(T-X2 后 447 + 8)
174 lines
6.8 KiB
Python
174 lines
6.8 KiB
Python
"""分级决策组合(T-G5,§8 主时序):
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embedder.embed(挂 -> fallback=T2+规则门,D-G4)
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-> features.gate(t1_hard_ok)
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-> LinearHead.predict -> {p1,p2,p3}
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-> conformal 阈值:p1>=τ1 且 t1_hard_ok -> T1;p3>=τ3 或 repo_signals -> T3;其余 T2
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-> mode 裁剪:collect/shadow 只写观察(decided≠executed),live 返回决策
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-> observer.log(全模式必写)
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"""
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from __future__ import annotations
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import time
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import uuid
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from dataclasses import dataclass, field
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from typing import Any, Dict, List, Optional
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from gateway.sense.calibrate import load_active
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from gateway.sense.classifier import LinearHead
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from gateway.sense.config import SenseConfig
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from gateway.sense.decision_cache import DecisionCache
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from gateway.sense.embedder import embed
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from gateway.sense.errors import EmbedderDown
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from gateway.sense.features import gate
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@dataclass
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class TierDecision:
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tier: str # 决策档(live 时即执行档的候选)
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probs: Dict[str, float]
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hard_gates: Dict[str, Any]
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thresholds_version: str = ""
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head_version: str = ""
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mode: str = "collect"
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fallback: bool = False # True = embedder/工件故障,规则门退化
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executed_tier: str = "" # 现行为执行的档位(collect/shadow 记录用)
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def _rule_tier(feats) -> str:
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"""规则门兜底(无模型时的决策):仓库级 -> T3;t1 硬门过 -> T1;否则 T2。"""
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if feats.repo_signals:
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return "T3"
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if feats.t1_hard_ok:
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return "T1"
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return "T2"
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class Grader:
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"""决策器(持有 active 工件缓存;工件/阈值切换后调 invalidate)。"""
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def __init__(self, cfg: SenseConfig, store, observer=None):
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self.cfg = cfg
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self.store = store
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self.observer = observer
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self._head: Optional[LinearHead] = None
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self._head_loaded = False
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self._thresholds: Optional[Dict[str, Any]] = None
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self._dcache = DecisionCache() # T-X3:live 模式决策缓存
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def _load_head(self):
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if not self._head_loaded:
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art = self.store.active_artifact("head")
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if art:
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try:
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self._head = LinearHead.load(art["path"], version=art["version"])
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except Exception: # noqa: BLE001
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self._head = None
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self._head_loaded = True
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return self._head
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def invalidate(self) -> None:
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"""工件 promote 后调用(重载 active 工件与阈值;同步清空决策缓存)。"""
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self._head = None
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self._head_loaded = False
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self._thresholds = None
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self._dcache.clear()
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def _thresholds_cached(self) -> Dict[str, Any]:
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if self._thresholds is None:
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self._thresholds = load_active(self.store, self.cfg.models_dir)
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return self._thresholds
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async def decide(self, query_or_messages, consumer: str,
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domain: str = "", request_id: str = "",
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executed_tier: str = "") -> TierDecision:
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"""分级决策(§8 时序;全模式写观察)。
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T-X3:live 模式下对 (consumer, 文本) 的纯决策负载(probs/head_version/vec)
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做 60s LRU 缓存,命中时跳过 embed + 线性头;观察/审计照常落盘。
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collect/shadow 模式不走缓存(校准数据必须全量产出)。
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"""
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ts = time.time()
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rid = request_id or ("rt" + uuid.uuid4().hex[:10])
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text = (query_or_messages if isinstance(query_or_messages, str)
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else "\n".join(str(m.get("content") or "")
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for m in query_or_messages))
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feats = gate(query_or_messages, consumer, self.cfg)
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probs: Dict[str, float] = {}
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head_version = ""
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fallback = False
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vec: Optional[List[int]] = None
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cached = self._dcache.get(consumer, text) \
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if self.cfg.mode == "live" else None
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if cached is not None:
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probs = dict(cached["probs"])
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head_version = str(cached["head_version"])
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vec = cached["vec"]
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else:
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try:
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vec = await embed(text, self.cfg.embedder)
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except EmbedderDown:
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fallback = True
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head = None if fallback else self._load_head()
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if head is None:
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fallback = True
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if not fallback and vec is not None:
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probs = head.predict([float(v) for v in vec])
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head_version = head.version
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if self.cfg.mode == "live":
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self._dcache.put(consumer, text,
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{"probs": dict(probs),
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"head_version": head_version,
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"vec": vec})
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th = self._thresholds_cached()
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th_version = str(th.get("version") or "")
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# ---- 决策 ----
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if fallback:
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tier = _rule_tier(feats) # D-G4 规则门退化
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else:
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t1_ok = (probs.get("t1", 0.0) >= float(th.get("t1", 0.9))
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and feats.t1_hard_ok)
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t3_ok = (probs.get("t3", 0.0) >= float(th.get("t3", 0.9))
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or feats.repo_signals)
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if t3_ok and not t1_ok:
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tier = "T3"
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elif t1_ok:
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tier = "T1"
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else:
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tier = "T2"
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# ---- mode 裁剪(D-G7)----
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if self.cfg.mode == "live":
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executed = tier # live:决策即执行
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else:
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# collect/shadow:现行为——规则门等价(T1 门/T3 信号)近似 v2 现状
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executed = executed_tier or _rule_tier(feats)
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decision = TierDecision(
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tier=tier, probs=probs,
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hard_gates={"turns": feats.turns, "est_tokens": feats.est_tokens,
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"single_turn": feats.single_turn,
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"intent_blocked": feats.intent_blocked,
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"repo_signals": feats.repo_signals,
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"over_length": feats.over_length,
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"t1_hard_ok": feats.t1_hard_ok},
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thresholds_version=th_version, head_version=head_version,
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mode=self.cfg.mode, fallback=fallback,
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executed_tier=executed)
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# ---- 观察必写(全模式)----
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if self.observer is not None:
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self.observer.log(__import__("gateway.sense.observer",
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fromlist=["Observation"]).Observation(
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request_id=rid, consumer=consumer, decided_tier=tier,
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executed_tier=executed, probs=probs,
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policy_version=f"head:{head_version}|th:{th_version}",
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features=decision.hard_gates, embedding=vec,
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bucket="default", domain=domain, ts=ts))
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return decision
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