Fine-Tuning Language Models to Know What They Know 事件
PRODUCT_LAUNCH2026-05-26影响: MEDIUM
Fine-Tuning Language Models to Know What They Know arXiv:2602.02605v2 Announce Type: replace-cross Abstract: Evaluating true metacognition in Large Language Models (LLMs) is difficult due to biases and heuristics. This paper presents a framework to measure and enhance LLM metacognition while controlling for these biases. A measurement method using the $d'_{\rm type2}$ metric is established to isolate metacognitive ability. The Evolution Strategy for Metacognitive Alignment (ESMA) is proposed, d
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Fine-Tuning Language Models to Know What They Know
ArXiv CS.CL2026-05-26