cs.AI updates on arXiv.org 07月23日 12:03
Advancing Visual Large Language Model for Multi-granular Versatile Perception
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本文提出MVP-LM,一个多粒度感知框架,整合视觉大语言模型,提高泛化能力。通过创新的多粒度解码器和数据统一策略,实现跨任务高效微调,并在多个基准测试中验证其有效性。

arXiv:2507.16213v1 Announce Type: cross Abstract: Perception is a fundamental task in the field of computer vision, encompassing a diverse set of subtasks that can be systematically categorized into four distinct groups based on two dimensions: prediction type and instruction type. Notably, existing researches often focus solely on a limited subset of these potential combinations, which constrains their applicability and versatility across various contexts. In response to this challenge, we present MVP-LM, a Multi-granular and Versatile Perception framework incorporating Visual Large Language Model. Our framework is designed to integrate both word-based and sentence-based perception tasks alongside box and mask predictions within a single architecture. MVP-LM features an innovative multi-granularity decoder in conjunction with a CoT-inspired dataset unification strategy, enabling seamless supervised fine-tuning across a wide spectrum of tasks, including but not limited to panoptic segmentation, detection, grounding, and referring expression segmentation. Furthermore, we introduce a query enhancement strategy aimed at harnessing the decoding and generative capabilities inherent in VLLMs. Extensive experiments conducted across a range of benchmarks in both word-based and sentence-based perception tasks substantiate the efficacy of our framework. The code will be available at https://github.com/xiangwentao666/MVP-LM.

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MVP-LM 视觉大语言模型 感知框架 泛化能力 视觉任务
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