On-Policy Distillation Teaches New Skills but Not New Knowledge
Abstract
On-policy distillation (OPD) strengthens language-model reasoning, yet whether students acquire new factual knowledge or compositional skill for multi-step reasoning remains unknown. We separate these capabilities using a controlled synthetic framework that measures the student's initial capabilities and independently controls the teacher's additional facts, compositional skill, or both. Across four models from three families, reverse-KL OPD reliably transfers compositional skill across unseen reasoning structures, but transfers minimal factual knowledge. Decoupling the distillation recipe reveals the source of this asymmetry: replacing reverse KL with forward KL restores factual transfer, whereas student rollouts specifically improve the execution of multi-step reasoning. Experiments on recent factual QA and competition mathematics show a similar asymmetry under reverse-KL OPD, yielding notable reasoning gains without factual memory expansion. Together, these results demonstrate that on-policy distillation does not expand a model's parametric knowledge, but instead teaches it to organize and compose the knowledge it already possesses.
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TL;DR: On-policy distillation (OPD) does not expand parametric memory—it teaches models how to organize what they already know.
Key Findings:
- Skill vs. Knowledge: Reverse-KL OPD reliably transfers compositional reasoning across unseen structures, but transfers minimal factual knowledge.
- The Mechanism: Switching from reverse-KL to forward-KL restores factual transfer, whereas student rollouts specifically drive multi-step reasoning execution.
- Empirical Validation: Tested across 4 model families: yields strong gains on competition math, but zero memory expansion on factual QA.
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