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FoPru: Focal Pruning for Efficient Large Vision-Language Models

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arxiv 2411.14164 v1 pith:J2INVTDX submitted 2024-11-21 cs.CV cs.AI

classification cs.CVcs.AI
keywords tokensvisuallargelvlmsinferencemodelspruningsignificant
verification ladder T0 review T1 audit T2 compute T3 formal
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Large Vision-Language Models (LVLMs) represent a significant advancement toward achieving superior multimodal capabilities by enabling powerful Large Language Models (LLMs) to understand visual input. Typically, LVLMs utilize visual encoders, such as CLIP, to transform images into visual tokens, which are then aligned with textual tokens through projection layers before being input into the LLM for inference. Although existing LVLMs have achieved significant success, their inference efficiency is still limited by the substantial number of visual tokens and the potential redundancy among them. To mitigate this issue, we propose Focal Pruning (FoPru), a training-free method that prunes visual tokens based on the attention-based token significance derived from the vision encoder. Specifically, we introduce two alternative pruning strategies: 1) the rank strategy, which leverages all token significance scores to retain more critical tokens in a global view; 2) the row strategy, which focuses on preserving continuous key information in images from a local perspective. Finally, the selected tokens are reordered to maintain their original positional relationships. Extensive experiments across various LVLMs and multimodal datasets demonstrate that our method can prune a large number of redundant tokens while maintaining high accuracy, leading to significant improvements in inference efficiency.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. METEOR: Multi-Encoder Collaborative Token Pruning for Efficient Vision Language Models

    cs.CV 2025-07 conditional novelty 6.0 of 10

    METEOR is a three-stage token pruning framework that reduces visual tokens in multi-encoder MLLMs by 76% with only a 0.3% average accuracy drop.

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