Literature DB >> 26186774

Human Action Recognition in Unconstrained Videos by Explicit Motion Modeling.

Yu-Gang Jiang, Qi Dai, Wei Liu, Xiangyang Xue, Chong-Wah Ngo.   

Abstract

Human action recognition in unconstrained videos is a challenging problem with many applications. Most state-of-the-art approaches adopted the well-known bag-of-features representations, generated based on isolated local patches or patch trajectories, where motion patterns, such as object-object and object-background relationships are mostly discarded. In this paper, we propose a simple representation aiming at modeling these motion relationships. We adopt global and local reference points to explicitly characterize motion information, so that the final representation is more robust to camera movements, which widely exist in unconstrained videos. Our approach operates on the top of visual codewords generated on dense local patch trajectories, and therefore, does not require foreground-background separation, which is normally a critical and difficult step in modeling object relationships. Through an extensive set of experimental evaluations, we show that the proposed representation produces a very competitive performance on several challenging benchmark data sets. Further combining it with the standard bag-of-features or Fisher vector representations can lead to substantial improvements.

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Year:  2015        PMID: 26186774     DOI: 10.1109/TIP.2015.2456412

Source DB:  PubMed          Journal:  IEEE Trans Image Process        ISSN: 1057-7149            Impact factor:   10.856


  2 in total

1.  Region-based Activity Recognition Using Conditional GAN.

Authors:  Xinyu Li; Yanyi Zhang; Jianyu Zhang; Yueyang Chen; Huangcan Li; Ivan Marsic; Randall S Burd
Journal:  Proc ACM Int Conf Multimed       Date:  2017-10

2.  Deep-Learning-Guided Student Classroom Action Understanding for Preschool Education.

Authors:  Xiaoli Li
Journal:  Appl Bionics Biomech       Date:  2022-08-08       Impact factor: 1.664

  2 in total

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