יום שלישי, 15 בספטמבר 2026 LIVE
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כתבה arXiv cs.CL ·

החזרת דגם הערך: גנרטיביים כמבקרים לדגימת ערך בRL של LLM

Bringing Value Models Back: Generative Critics for Value Modeling in LLM Reinforcement Learning
אנו מציגים גנרטיביים כמבקרים לדגימת ערך בRL של LLM. ניתן לשפר דגימת ערך, יציבות וכלליות מחוץ לתחום עם גנרטיביים.
תקציר מקורי באנגליתarXiv:2604.10701v2 Announce Type: replace-cross Abstract: Credit assignment is a central challenge in reinforcement learning (RL). Classical actor-critic methods address this challenge through fine-grained advantage estimation based on a learned value function. However, learned value models are often avoided in modern large language model (LLM) RL because conventional discriminative critics are difficult to train reliably. We revisit value modeling and argue that this difficulty is partly due to limited expressiveness. In particular, representation complexity theory suggests that value functions can be hard to approximate under the one-shot prediction paradigm used by existing value models, and our scaling experiments show that such critics do not improve reliably with scale. Motivated by
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