Zamanda ortalaması alınmış ikili önplan imgeleri kullanarak taşıt sınıflandırması

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Baştanlar, Yalın

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Abstract

We describe a shape-based method for classification of vehicles from omnidirectional videos. Different from similar approaches, the binary images of vehicles obtained by background subtraction in a sequence of frames are averaged over time. We show with experiments that using the average shape of the object results in a more accurate classification than using a single frame. The vehicle types we classify are motorcycle, car and van. We created an omnidirectional video dataset and repeated experiments with shuffled train-test sets to ensure randomization.

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23nd Signal Processing and Communications Applications Conference (SIU)

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Omnidirectional camera, Omnidirectional video, Vehicle detection, Vehicle classification

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391

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394
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