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maestro-pruning-bad-experts-mixture-of-experts

MAESTRO: Markov-chain Approximated Expert Sparsification via Transition-based Routing for MoE structured pruning. Models expert activation as Ergodic Markov chains for globally-aware importance. Outperforms baselines by 10.61% at 50% compression. Lower cross-task variance. Activation: mixture-of-experts, expert pruning, MoE deployment, structured pruning, language model efficiency.

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Repository
hiyenwong/ai_collection
Last source activity
July 12, 2026 at 14:22
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English
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