Recognition of complex human behaviours using 3D imaging for intelligent surveillance applications

Abstract

We introduce a system that exploits 3-D imaging technology as an enabler for the robust recognition of the human form. We combine this with pose and feature recognition capabilities from which we can recognise high-level human behaviours. We propose a hierarchical methodology for the recognition of complex human behaviours, based on the identification of a set of atomic behaviours, individual and sequential poses (e.g. standing, sitting, walking, drinking and eating) that provides a framework from which we adopt time-based machine learning techniques to recognise complex behaviour patterns

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University of Essex Research Repository

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Last time updated on 06/03/2017

This paper was published in University of Essex Research Repository.

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