Mixing Importance with Diversity: Joint Optimization for KV Cache Compression in Large Vision-Language Models
Xuyang Liu, Xiyan Gui, Yuchao Zhang, Linfeng Zhang
摘要
Recent large vision-language models (LVLMs) demonstrate remarkable capabilities in processing extended multi-modal sequences, yet the resulting key-value (KV) cache expansion creates a critical memory bottleneck that fundamentally limits deployment scalability. While existing KV cache compression methods focus on retaining high-importance KV pairs to minimize storage, they often overlook the modality-specific semantic redundancy patterns that emerge distinctively in multi-modal KV caches. In this work, we first analyze how, beyond simple importance, the KV cache in LVLMs exhibits varying levels of redundancy across attention heads. We show that relying solely on importance can only cover a subset of the full KV cache information distribution, leading to potential loss of semantic coverage. To address this, we propose MixKV, a novel method that mixes importance with diversity for optimized KV cache compression in LVLMs. MixKV adapts to head-wise semantic redundancy, selectively balancing diversity and importance when compressing KV pairs. Extensive experiments demonstrate that MixKV consistently enhances existing methods across multiple LVLMs. Under extreme compression (budget=64), MixKV improves baseline methods by an average of 5.1% across five multi-modal understanding benchmarks and achieves remarkable gains of 8.0% and 9.0% for SnapKV and AdaKV on GUI grounding tasks, all while maintaining comparable inference efficiency. Furthermore, MixKV extends seamlessly to LLMs with comparable performance gains. Our code is available at https://github.com/xuyang-liu16/MixKV .
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引用它的顶会 Paper11
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- VideoITG: Multimodal Video Understanding with Instructed Temporal GroundingShihao Wang, Guo Chen, De-An Huang, Zhiqi Li 等CVPR 2026 · 被引用 35 次
- Global Compression Commander: Plug-and-Play Inference Acceleration for High-Resolution Large Vision-Language ModelsXuyang Liu, Ziming Wang, Junjie Chen, Yuhang Han 等AAAI 2026 · 被引用 25 次
- Variation-aware Vision Token Dropping for Faster Large Vision-Language ModelsChen junjie, Xuyang Liu, Zichen Wen, Yiyu Wang 等CVPR 2026 · 被引用 24 次
它引用的顶会 Paper25
- Visual Instruction TuningHaotian Liu, Chunyuan Li, Qingyang Wu, Yong Jae LeeNeurIPS 2023 · 被引用 11,349 次
- SnapKV: LLM Knows What You are Looking for Before GenerationYuhong Li, Yingbing Huang, Bowen Yang, Bharat Venkitesh 等NeurIPS 2024 · 被引用 1,019 次
- H2O: Heavy-Hitter Oracle for Efficient Generative Inference of Large Language ModelsZhenyu Zhang, Ying Sheng, Tianyi Zhou, Tianlong Chen 等NeurIPS 2023 · 被引用 1,003 次
- LLM-Pruner: On the Structural Pruning of Large Language ModelsXinyin Ma, Gongfan Fang, Xinchao WangNeurIPS 2023 · 被引用 994 次
- KIVI: A Tuning-Free Asymmetric 2bit Quantization for KV CacheZirui Liu, Jiayi Yuan, Hongye Jin, Shaochen (Henry) Zhong 等ICML 2024 · 被引用 436 次
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