Spatio-temporal information for human action recognition

被引:0
|
作者
Li Yao
Yunjian Liu
Shihui Huang
机构
[1] Key Laboratory of Computer Network and Information Integration (Southeast University),
[2] Ministry of Education,undefined
[3] State Key Laboratory for Novel Software Technology,undefined
[4] Nanjing University,undefined
[5] Computer Science and Engineering College,undefined
[6] Southeast University,undefined
来源
EURASIP Journal on Image and Video Processing | / 2016卷
关键词
Spatio-temporal; Video representation; Multi-feature fusion; Human action recognition;
D O I
暂无
中图分类号
学科分类号
摘要
Human activity recognition in videos is important for content-based videos indexing, intelligent monitoring, human-machine interaction, and virtual reality. This paper uses the low-level feature-based framework for human activity recognition which includes feature extraction and descriptor computing, early multi-feature fusion, video representation, and classification. This paper improves the first two steps. We propose a spatio-temporal bigraph-based multi-feature fusion algorithm to capture the useful visual information for recognition. Meanwhile, we introduce a compressed spatio-temporal video representation to bag of words representation. Our experiments on two popular datasets show efficient performance.
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