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Weiguang Pang

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Conference Aug 2026

Poster: Task-Aware Dynamic Visual Token Pruning for Efficient Vision-Language-Action Inference

Vision-language-action (VLA) models map language instructions and multi-view observations to robot actions, but dense visual-token processing imposes substantial inference overhead. This paper presents TADP, a training-free dynamic visualtoken pruning framework for efficient VLA inference. TADP estimates task-conditioned visual-token importance after early vision-language interaction, decouples main- and wrist-view budgets, reuses keyframe scores under temporal consistency, and refreshes view-specific caches independently. On LIBERO, TADP achieves a 96.25% average success rate while using only 39% of OpenVLA-OFT FLOPs, corresponding to a 61% FLOP reduction.

Jianping Lin, Xiao-Lei Sun, Weiguang Pang · 0 citations

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