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Chaofang Ma

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#small language model Preprint Aug 2026

Not All Attention Heads Contribute to Critical Visual Token Selection: Head-Aware Pruning Matters More

ProViP is proposed, a training-free progressive visual token pruning framework that removes redundant visual tokens based on the embedding similarity of input tokens before reasoning of the LLM backbone, and then prunes tokens during reasoning via head-aware pruning.

Chaofang Ma, Lin Jiang, Carol Jingyi Li et al. · 0 citations