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distillation-compression

Transfers knowledge from large teacher models to smaller students via soft-label distillation (KL divergence, temperature scaling), feature-based distillation (intermediate layer matching, attention transfer), and structured pruning (head pruning, layer dropping). Use when reducing model size while preserving quality. Do not use for quantization-only workflows or MoE conversion.

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Source facts

Repository
merceralex397-collab/meta-skill-engineering
Last source activity
April 20, 2026 at 01:25
Detected SKILL.md language
English
Stars
2
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0

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