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Sanghyun Hong

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#natural language process... Preprint Sep 2026

Membership Inference in Fine-tuned Diffusion Language Models via Token-level Memorization Asymmetry

This work identifies a phenomenon termed token-level memorization asymmetry through theoretical analysis of diffusion training dynamics and proposes Q-Skew, a quantile-weighted skewness-based indicator for membership inference on finetuned DLMs.

Shengfang Zhai, Leo Marchyok, Yuling Shi et al. · 0 citations

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