ABANDONED OBJECT DETECTION VIA SUBSPACE LEARNING

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IEEE

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info:eu-repo/semantics/closedAccess

Özet

In this study, a novel video surveillance algorithm is developed for detection of abandoned objects in public scenes. Two different foreground model is used to detect moving and temporarily static objects. A subspace learning method, called GoDec, is used to detect foreground objects. By using GoDec algorithm, shape and contour of foreground objects are obtained more precisely than the traditional methods. Algorithm is tested on different public datasets and on a new dataset prepared in various environments by GTU, Gebze Technical University. According to test results, proposed method gives better results especially for background initialization and occlusion problems.

Açıklama

24th Signal Processing and Communication Application Conference (SIU) -- MAY 16-19, 2016 -- Zonguldak, TURKEY

Anahtar Kelimeler

Unattended Object Detectiom, Video Surveillance, Background Modelling, Subspace Learning

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2016 24th Signal Processing and Communication Application Conference (Siu)

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