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Learning Integral Objects with Intra-Class Discriminator for Weakly-Supervised Semantic Segmentation
Fan, Junsong1,2; Zhang, Zhaoxiang1,2,3; Song, Chunfeng1,2; Tan, Tieniu1,2,3
2020
会议名称The IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)
会议日期2020
会议地点VIRTUAL (线上)
摘要

Image-level weakly-supervised semantic segmentation (WSSS) aims at learning semantic segmentation by adopting only image class labels. Existing approaches generally rely on class activation maps (CAM) to generate pseudo-masks and then train segmentation models. The main difficulty is that the CAM estimate only covers partial foreground objects. In this paper, we argue that the critical factor preventing to obtain the full object mask is the classification boundary mismatch problem in applying the CAM to WSSS. Because the CAM is optimized by the classification task, it focuses on the discrimination across different image-level classes. However, the WSSS requires to distinguish pixels sharing the same image-level class to separate them into the foreground and the background. To alleviate this contradiction, we propose an efficient end-to-end Intra-Class Discriminator (ICD) framework, which learns intra-class boundaries to help separate the foreground and the background within each image-level class. Without bells and whistles, our approach achieves the state-of-the-art performance of image label based WSSS, with mIoU 68.0% on the VOC 2012 semantic segmentation benchmark, demonstrating the effectiveness of the proposed approach.

关键词weakly supervised learning semantic segmentation
收录类别EI
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/48763
专题模式识别实验室
通讯作者Zhang, Zhaoxiang; Tan, Tieniu
作者单位1.Institute of Automation, Chinese Academy of Sciences (CASIA)
2.School of Artificial Intelligence, University of Chinese Academy of Sciences (UCAS)
3.Center for Excellence in Brain Science and Intelligence Technology, CAS
第一作者单位中国科学院自动化研究所
通讯作者单位中国科学院自动化研究所
推荐引用方式
GB/T 7714
Fan, Junsong,Zhang, Zhaoxiang,Song, Chunfeng,et al. Learning Integral Objects with Intra-Class Discriminator for Weakly-Supervised Semantic Segmentation[C],2020.
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