DocumentCode :
3022205
Title :
An X-T slice based method for action recognition
Author :
Shan, Yanhu ; Wang, Shiquan ; Zhang, Zhang ; Huang, Kaiqi
Author_Institution :
Nat. Lab. of Pattern Recognition, Inst. of Autom., Beijing, China
fYear :
2011
fDate :
6-13 Nov. 2011
Firstpage :
1897
Lastpage :
1903
Abstract :
This paper proposes a novel method for human action recognition. Different from many action recognition methods which consider an action sequence along the time axis, the proposed method views an action sequence along the space axis. This brings two advantages: the human body structures in all frames are encoded in the feature; the time information is completely used. The process of feature extraction is as follows: first an action sequence is cut into slices parallel to the X-T plane. Every slice, we call X-T slice, is transformed to a mean histogram and a variance histogram along the T axis. Then all mean histograms and all variance histograms are concatenated separately to two vectors, and finally encoded with Mel Frequency Cepstrum Coefficient (MFCC). MFCC, a feature commonly used in speech recognition, can effectively capture changes of 1-D signals over time. The encoded values are sent to classifier for action recognition. Our system achieves very efficient result: it needs only 0.02 second to deal with a frame on average with Matlab.
Keywords :
feature extraction; image coding; image recognition; image sequences; signal representation; Matlab; X-T plane; X-T slice based method; action sequence; feature extraction process; human action recognition; human body structures; mean histogram; mel frequency cepstrum coefficient; speech recognition; variance histogram; Feature extraction; Hidden Markov models; Histograms; Humans; Mel frequency cepstral coefficient; Reactive power; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision Workshops (ICCV Workshops), 2011 IEEE International Conference on
Conference_Location :
Barcelona
Print_ISBN :
978-1-4673-0062-9
Type :
conf
DOI :
10.1109/ICCVW.2011.6130480
Filename :
6130480
Link To Document :
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