Weakly Supervised Person Search
Yan, Lan1,2; Zheng, Wenbo1,3; Wang, Fei-Yue1; Gou, Chao4
2020-10-06
会议名称International Conference on Data Science and Advanced Analytics (DSAA)
会议日期2020-10-6
会议地点Sydney, Australia
摘要

While existing person search methods have achieved good performance, they require the images used for training contain labels about the identity and bounding box location of each person. However, it is expensive and difficult to manually annotate these labels in the large scale scenario. To overcome this issue, we consider weakly supervised person search. The weakly supervised setting means during training we only know which identities appear in the image set and how many individuals present in each image, without any identity or location information on the image. Facing this challenge, we propose a clustering and patch based weakly supervised learning (CPBWSL) framework, which separately addresses two sub-tasks including pedestrian detection and person re-identification. Particularly, we introduce multiple detectors to provide more detection results as well as fuzzy c-means clustering algorithm to cluster these results and remove low membership ones. Moreover, a patch based learning network is designed to generate different patches and learn discriminative patch features. Extensive experiments on two benchmarks indicate that the proposed weakly supervised setting is feasible and our method can achieve performance comparable to some fully supervised person search methods.

收录类别EI
语种英语
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/48877
专题多模态人工智能系统全国重点实验室_平行智能技术与系统团队
作者单位1.State Key Laboratory for Management and Control of Complex Systems, Institute of Automation, Chinese Academy of Sciences
2.University of Chinese Academy of Sciences
3.School of Software Engineering, Xi'an Jiaotong University
4.School of Intelligent Systems Engineering, Sun Yat-sen University
第一作者单位中国科学院自动化研究所
推荐引用方式
GB/T 7714
Yan, Lan,Zheng, Wenbo,Wang, Fei-Yue,et al. Weakly Supervised Person Search[C],2020.
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