Panoramic capturing and recognition of human activity

ICIP (2)(2002)

引用 13|浏览22
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摘要
This paper presents a unified approach to human activity capturing and recognition. It targets applications such as a speaker walking, turning around, sitting and getting up from a chair in a classroom setting. A panoramic camera capturing system is designed for video capture. Virtual camera control outputs the region of interest (ROI) video that covers the speaker. Given an ROI sequence, the virtual camera control parameters are used for the recognition of activities like walking, and the motion parameters of each frame are used for the recognition of other activities like turning around, sitting down and getting up etc. For motion parameter based recognition, the likelihood of the motion parameters is represented using a multivariate Gaussian model. The temporal change of the likelihood is characterized using a continuous density hidden Markov model (HMM). Experimental results show that the method works well in recognizing the above mentioned human body activities.
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关键词
video signal processing,panoramic camera capturing system,motion parameters,getting up,speaker walking,classroom,continuous density hidden markov model,hmm,video cameras,human activity capturing,turning around,region of interest video,multivariate gaussian model,roi sequence,human activity recognition,virtual camera control parameters,gait analysis,video capture,image sequences,panoramic capturing,human body activities,sitting,hidden markov models,image motion analysis,motion control,sun,application software,image segmentation,region of interest,human body
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