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Negative Self-Distillation: Learning to Reason by Avoiding Flaws

First seen · 9/10/2026, 04:00 AMLatest activity · 9/10/2026, 04:00 AM

Standard on-policy self-distillation often degrades complex reasoning by forcing models to mimic artificially confident traces, suppressing the uncertainty and exploratory backtracking essential for hard problems. Negative Self-Distillation (NSD) inverts this paradigm by optimizing models to steer clear of their own flawed reasoning rather than imitating ground-truth solutions. To avoid degrading general language skills during unlearning, NSD uses a dynamic gating mechanism that isolates reasoning-critical tokens from routine linguistic priors. The framework consistently outpaces conventional self-distillation and label-free reinforcement learning baselines.

Event heat · last 24 hours

There are 6 persisted snapshots in the last 24 hours. Peak heat was 0 at 9/12, 20:00; latest heat is 0.

There are 6 persisted snapshots in the last 24 hours. Peak heat was 0 at 9/12, 20:00; latest heat is 0.10.509/12, 20:00, event heat 09/12, 23:00, event heat 09/13, 02:00, event heat 09/13, 05:00, event heat 09/13, 08:00, event heat 09/13, 11:00, event heat 024 hours agoNow
  1. 9/12, 20:00, event heat 0
  2. 9/12, 23:00, event heat 0
  3. 9/13, 02:00, event heat 0
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Reporting Timeline

  1. AggregatorHuggingFace Daily Papers9/10, 04:00 AMnot independentRepresentative
    Negative Self-Distillation: Learning to Reason by Avoiding Flaws