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Cunchun Li

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Rethinking Token Reweighting for SFT: Suppress, Reverse, and Extrapolate Learned Features

Cunchun Li, Haonan He, Yifan Gao وآخرون · 2026

Supervised fine-tuning (SFT) learns most aggressively from tokens that the model deems least likely. This helps acquire new behaviors, but also amplifies noisy or conflicting supervision and can overwrite useful pretrained knowledge. Through a unified policy-loss view, we revisit existing token-reweighting methods and …

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