Automatic analysis of multimodal group actions in meetings.

IEEE Transactions on Pattern Analysis and Machine Intelligence(2005)

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摘要
This paper investigates the recognition of group actions in meetings. A framework is employed in which group actions result from the interactions of the individual participants. The group actions are modeled using different HMM-based approaches, where the observations are provided by a set of audiovisual features monitoring the actions of individuals. Experiments demonstrate the importance of taking interactions into account in modeling the group actions. It is also shown that the visual modality contains useful information, even for predominantly audio-based events, motivating a multimodal approach to meeting analysis.
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关键词
audio-based event,different hmm-based approach,asynchronous interaction.,visual modality,multimedia applications and numerical signal processing,automatic analysis,individual participant,meeting analysis,multimodal group actions,multimodal approach,group action,useful information,group actions result,computer conferencing,audiovisual feature,index terms statistical models,algorithms,information analysis,hidden markov models,speech,cluster analysis,vision,behavioral sciences,hmm,speech processing,social behavior,statistical models,machine vision,indexing terms,artificial intelligence,signal processing,application software,computer simulation,speech recognition,group processes,processing,statistical model
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