Abstract

On road vehicles have increased in numbers and monitoring them is a challenging task. In common areas of public crowd people and vehicles are common objects for monitoring. The proposed system aims at detecting number plate information indicating the possibility for security relevant issues. Existing system performs recognition mainly by using license plate alone. Addition of the features (logo, colour, shape) will increase the security of the system. Identification of the number plate region has been done by Blob detection method at the predefined aspect ratio. After detection, extraction of the number plate information using Eigen value regularization method. Further, two methodology included in this study are, identifying the tampered region in a car image either by extracting HoG feature in the spatial domain or block differences in DCT coefficients and their corresponding histogram in the transform domain respectively. Experimental results for the given car dataset describes the identification of the number plate region and tampered region quantitatively. The work presents detailed results of how the proposed approach gives better results using HoG approach. The approach gives good results in videos of cars recorded in frontal view in good lighting conditions. The paper in overall suggest a hybrid approach for detecting number plate information in cars taken in good lighting conditions.

Highlights

  • In the field of video processing, digital video surveillance system plays a major part in monitoring interested objects

  • The extended proposed method of this study is to identify whether the detected number plate region is tampered or not using two different methodologies for further authentication

  • It is another methodology that has been proposed in the frequency domain that tells whether the number plate region has been tampered or not

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Summary

Introduction

In the field of video processing, digital video surveillance system plays a major part in monitoring interested objects (e.g., vehicles, people). Recognition of cars has one of its most important applications in surveillance systems, especially in buildings with tight security like parliament, other government offices. Existing vehicle recognition system mainly uses license plate information as a feature for recognition (Deb et al, 2009; Conci et al, 2009; Ozbay and Ercelebi, 2005; Cika et al, 2011). If it is tampered or replaced, effective system along with this feature has to be used for identifying whether the car is authenticated or not. The information in number plate in written to a text file for further processing

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