Progressive Relation Learning for Group Activity Recognition
Guyue Hu, Bo Cui, Yuan He, Shan Yu
摘要
Group activities usually involve spatiotemporal dynamics among many interactive individuals, while only a few participants at several key frames essentially define the activity. Therefore, effectively modeling the group-relevant and suppressing the irrelevant actions (and interactions) are vital for group activity recognition. In this paper, we propose a novel method based on deep reinforcement learning to progressively refine the low-level features and highlevel relations of group activities. Firstly, we construct a semantic relation graph (SRG) to explicitly model the relations among persons. Then, two agents adopting policy according to two Markov decision processes are applied to progressively refine the SRG. Specifically, one featuredistilling (FD) agent in the discrete action space refines the low-level spatiotemporal features by distilling the most informative frames. Another relation-gating (RG) agent in continuous action space adjusts the high-level semantic graph to pay more attention to group-relevant relations. The SRG, FD agent, and RG agent are optimized alternately to mutually boost the performance of each other. Extensive experiments on two widely used benchmarks demonstrate the effectiveness and superiority of the proposed approach.
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引用它的顶会 Paper9
- GroupFormer: Group Activity Recognition with Clustered Spatial-Temporal TransformerShuaicheng Li, Qianggang Cao, Lingbo Liu, Kunlin Yang 等ICCV 2021 · 被引用 149 次
- Spatio-Temporal Dynamic Inference Network for Group Activity RecognitionHangjie Yuan, Dong Ni, Mang WangICCV 2021 · 被引用 113 次
- Dual-AI: Dual-path Actor Interaction Learning for Group Activity RecognitionMingfei Han, David Junhao Zhang, Yali Wang, Rui Yan 等CVPR 2022 · 被引用 80 次
- Learning Visual Context for Group Activity RecognitionHangjie Yuan, Dong NiAAAI 2021 · 被引用 77 次
- Detector-Free Weakly Supervised Group Activity RecognitionDongkeun Kim, Jinsung Lee, Minsu Cho, Suha KwakCVPR 2022 · 被引用 62 次
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