Norm-Aware Embedding for Efficient Person Search
Di Chen, Shanshan Zhang, Jian Yang, Bernt Schiele
Abstract
Person Search is a practically relevant task that aims to jointly solve Person Detection and Person Re-identification (re-ID). Specifically, it requires to find and locate all instances with the same identity as the query person in a set of panoramic gallery images. One major challenge comes from the contradictory goals of the two sub-tasks, i.e., person detection focuses on finding the commonness of all persons while person re-ID handles the differences among multiple identities. Therefore, it is crucial to reconcile the relationship between the two sub-tasks in a joint person search model. To this end, we present a novel approach called Norm-Aware Embedding to disentangle the person embedding into norm and angle for detection and re-ID respectively, allowing for both effective and efficient multi-task training. We further extend the proposal-level person embedding to pixel-level, whose discrimination ability is less affected by misalignment. We outperform other one-step methods by a large margin and achieve comparable performance to two-step methods on both CUHK-SYSU and PRW. Also, our method is easy to train and resource-friendly, running at 12 fps on a single GPU.
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Cited by top-tier papers41
- Sequential End-to-end Network for Efficient Person SearchZhengjia Li, Duoqian MiaoAAAI 2021 · 122 citations
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- Cascade Transformers for End-to-End Person SearchRui Yu, Dawei Du, Rodney LaLonde, Daniel Davila et al.CVPR 2022 · 86 citations
- PSTR: End-to-End One-Step Person Search With TransformersJiale Cao, Yanwei Pang, Rao Muhammad Anwer, Hisham Cholakkal et al.CVPR 2022 · 80 citations
- Decoupled and Memory-Reinforced Networks: Towards Effective Feature Learning for One-Step Person SearchChuchu Han, Zhedong Zheng, Changxin Gao, Nong Sang et al.AAAI 2021 · 54 citations
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