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"""客服对话记忆的基础置信度计算工具。"""
from __future__ import annotations
from typing import Any
class BaseConfidenceCalcTool:
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"""根据来源、证据和时间计算单条客服记忆的长期置信度。"""
SOURCE_INITIAL = {
"dialogue_confirmed": 0.75,
"dialogue_stated": 0.50,
"dialogue_inferred": 0.45,
}
MEMORY_THRESHOLDS = {
"PROFILE_FACT": 0.75,
"CUSTOMER_PREFERENCE": 0.65,
"INVESTMENT_GOAL": 0.70,
"SERVICE_FACT": 0.75,
}
DEFAULT_THRESHOLD = 0.80
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VERSION = "confidence-v2"
def calc(
self,
tag: str,
source: str,
evidence_count: int,
age_days: int,
) -> float:
"""计算基础置信度分数,返回范围为 0 到 1 的浮点数。"""
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self._validate(tag, source, evidence_count, age_days)
base = self.SOURCE_INITIAL[source]
gain = min(evidence_count * 0.05, 0.30)
decay = max(0.80, 1 - age_days / 365 * 0.20)
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return max(0.0, min(1.0, (base + gain) * decay))
def evaluate(
self,
*,
tag: str,
source: str,
evidence_count: int,
age_days: int,
memory_type: str | None = None,
threshold: float | None = None,
) -> dict[str, Any]:
"""返回可供记忆模块保存的完整置信度评估结果。"""
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score = self.calc(tag, source, evidence_count, age_days)
if threshold is None:
threshold = self.MEMORY_THRESHOLDS.get(
memory_type or "", self.DEFAULT_THRESHOLD
)
if not 0.0 <= threshold <= 1.0:
raise ValueError("threshold 必须在 [0.0, 1.0] 范围内")
base = self.SOURCE_INITIAL[source]
status = "confirmed" if score >= threshold else "candidate"
return {
"source_confidence": base,
"confidence": score,
"status": status,
"evidence_count": evidence_count,
"age_days": age_days,
"threshold": threshold,
"confidence_reason": self._reason(
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source, evidence_count, age_days
),
"confidence_version": self.VERSION,
}
def batch_calc(self, tags: list[dict[str, Any]]) -> list[float]:
"""批量计算基础分数。"""
return [self.calc(**tag) for tag in tags]
def batch_evaluate(self, items: list[dict[str, Any]]) -> list[dict[str, Any]]:
"""批量生成完整评估结果。"""
return [self.evaluate(**item) for item in items]
@classmethod
def _validate(
cls,
tag: str,
source: str,
evidence_count: int,
age_days: int,
) -> None:
"""校验工具输入,避免非法计数污染记忆分数。"""
if not tag or not tag.strip():
raise ValueError("tag 不能为空")
if source not in cls.SOURCE_INITIAL:
raise ValueError(f"不支持的客服对话来源: {source}")
for name, value in (
("evidence_count", evidence_count),
("age_days", age_days),
):
if not isinstance(value, int) or isinstance(value, bool) or value < 0:
raise ValueError(f"{name} 必须是非负整数")
@staticmethod
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def _reason(source: str, evidence_count: int, age_days: int) -> str:
"""生成便于审计和排查的评分原因。"""
return (
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f"来源={source}; 支持证据={evidence_count}; "
f"存在天数={age_days}; 采用证据增益和时间衰减"
)
__all__ = ["BaseConfidenceCalcTool"]