Office presence detection using multimodal context information

Xiao Huang, Juyang Weng, Zhengyou Zhang · 2004

An office presence detection system is presented. Context information from multi-sensory inputs is integrated to infer a user's activities in an office. We design a layered architecture to model human activities with different granularities. An IHDR (incremental hierarchical discriminant regression) tree is used to generate models automatically for acoustic signals from unsegmented auditory streams, with a high adaptive capability to new settings. Hidden Markov models (HMM) are implemented to detect human motion patterns. The outputs of the above two components are fed into high-level HMMs to analyze human activities. Experimental results of the real-time prototype system are reported.

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