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Learning from Your Own Mistakes: Constructing Learnable Micro-Reflective Trajectories for Self-Distillation

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Self-distillation improves reasoning in large language models by using the model's own rollouts as training signal, typically through implicit logit-level alignment that minimizes KL divergence toward a privileged target distribution. However, because this supervision is generated via uncontrolled sampling, it provides no diagnostic insight into the model's specific errors or corrective guidance for its individual failure patterns.

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arXiv Machine Learning
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Learning from Your Own Mistakes: Constructing Learnable Micro-Reflective Trajectories for Self-Distillation

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