Compositional interaction descriptor for human interaction recognition

  • Cho, Nam-Gyu
  • Park, Se-Ho
  • Park, Jeong-Seon
  • Park, Unsang
  • Lee, Seong-Whan
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23
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26

초록

In this paper, we address the problem of human interaction recognition. We propose a novel compositional interaction descriptor to represent complex human interactions containing high intra and inter-class variations. The compositional interaction descriptor represents motion relationships on individual, local, and global levels to build a highly discriminative description. We evaluate the proposed method using UT-Interaction and BIT-Interaction public benchmark datasets. Experimental results demonstrate that the performance of the proposed approach is on a par with previous methods. (C) 2017 Elsevier B.V. All rights reserved.

키워드

Human interaction recognitionCompositional interaction descriptorHuman motion analysisREPRESENTATIONPREDICTIONMODEL
제목
Compositional interaction descriptor for human interaction recognition
저자
Cho, Nam-GyuPark, Se-HoPark, Jeong-SeonPark, UnsangLee, Seong-Whan
DOI
10.1016/j.neucom.2017.06.009
발행일
2017-12-06
유형
Article
저널명
Neurocomputing
267
페이지
169 ~ 181