Toward Modality Gap: Vision Prototype Learning for Weakly-supervised Semantic Segmentation with CLIP

模态(人机交互) 分割 人工智能 计算机科学 计算机视觉 自然语言处理
作者
Zhongxing Xu,Feilong Tang,Zhe Chen,Yingxue Su,Zhiyi Zhao,Ge Zhang,Jionglong Su,Zongyuan Ge
出处
期刊:Cornell University - arXiv [Cornell University]
标识
DOI:10.48550/arxiv.2412.19650
摘要

The application of Contrastive Language-Image Pre-training (CLIP) in Weakly Supervised Semantic Segmentation (WSSS) research powerful cross-modal semantic understanding capabilities. Existing methods attempt to optimize input text prompts for improved alignment of images and text, by finely adjusting text prototypes to facilitate semantic matching. Nevertheless, given the modality gap between text and vision spaces, the text prototypes employed by these methods have not effectively established a close correspondence with pixel-level vision features. In this work, our theoretical analysis indicates that the inherent modality gap results in misalignment of text and region features, and that this gap cannot be sufficiently reduced by minimizing contrast loss in CLIP. To mitigate the impact of the modality gap, we propose a Vision Prototype Learning (VPL) framework, by introducing more representative vision prototypes. The core of this framework is to learn class-specific vision prototypes in vision space with the help of text prototypes, for capturing high-quality localization maps. Moreover, we propose a regional semantic contrast module that contrasts regions embedding with corresponding prototypes, leading to more comprehensive and robust feature learning. Experimental results show that our proposed framework achieves state-of-the-art performance on two benchmark datasets.

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