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Group Activity Recognition Using Joint Learning of Individual Action Recognition and People Grouping

17 Jul 2021MVA 2021 7archive 2025-07-28

Chihiro Nakatani, Kohei Sendo, Norimichi Ukita

This paper proposes joint learning of individual action recognition and people grouping for improving group activity recognition. By sharing the information between two similar tasks (i.e., individual action recognition and people grouping) through joint learning, errors of these two tasks are mutually corrected. This joint learning also improves the accuracy of group activity recognition. Our proposed method is designed to consist of any individual action recognition methods as a component. The effectiveness is validated with various IAR methods. By employing existing group activity recognition methods for ensembling with the proposed method, we achieved the best performance compared to the similar SOTA group activity recognition methods.

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Action RecognitionActivity RecognitionGroup Activity Recognition

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Group Activity Recognition Volleyball Joint learning (5-fusion) Accuracy 93.3 #5 of 12 Archive leaderboard report

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