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Video anomaly detection using deep generative models

Abstract

Video anomaly detection faces three challenges: a) no explicit definition of abnormality; b) scarce labelled data and c) dependence on hand-crafted features. This thesis introduces novel detection systems using unsupervised generative models, which can address the first two challenges. By working directly on raw pixels, they also bypass the last

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Deakin Research Online

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Last time updated on 30/05/2021

This paper was published in Deakin Research Online.

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