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TubeR: Tube-Transformer for Action Detection

2021-04-02 10:21:22
Jiaojiao Zhao, Arthur Li, Chunhui Liu, Shuai Bing, Hao Chen, Cees G.M. Snoek, Joseph Tighe

Abstract

In this paper, we propose TubeR: the first transformer based network for end-to-end action detection, with an encoder and decoder optimized for modeling action tubes with variable lengths and aspect ratios. TubeR does not rely on hand-designed tube structures, automatically links predicted action boxes over time and learns a set of tube queries related to actions. By learning action tube embeddings, TubeR predicts more precise action tubes with flexible spatial and temporal extents. Our experiments demonstrate TubeR achieves state-of-the-art among single-stream methods on UCF101-24 and J-HMDB. TubeR outperforms existing one-model methods on AVA and is even competitive with the two-model methods. Moreover, we observe TubeR has the potential on tracking actors with different actions, which will foster future research in long-range video understanding.

Abstract (translated)

URL

https://arxiv.org/abs/2104.00969

PDF

https://arxiv.org/pdf/2104.00969.pdf


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