cs.CR, cs.LG

Token-Efficient Change Detection in LLM APIs

arXiv:2602.11083v2 Announce Type: replace
Abstract: Remote change detection in LLMs is a difficult problem. Existing methods are either too expensive for deployment at scale, or require initial white-box access to model weights or grey-box access to l…

cs.LG

PACE: Parameter Change for Unsupervised Environment Design

arXiv:2605.01358v1 Announce Type: new
Abstract: Unsupervised Environment Design (UED) offers a promising paradigm for improving reinforcement learning generalization by adaptively shaping training environments, but it requires reliable environment eva…

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