CARRIED BAGGAGE DETECTION AND CLASSIFICATION USING MULTI-TREND BINARY CODE DESCRIPTOR AND SUPPORT VECTOR MACHINE

Author:

bano Shah1,Shah Syed Adnan2,Ahmad Wakeel2,Ilyas Muhammad3

Affiliation:

1. University of Engineering and Technology, Taxila, Pakistan

2. University of Engineering and Technology, Taxila

3. University of Sargodha, Pakistan

Abstract

Automatic video surveillance systems have gained significant importance due to an increase in crime rate over the last two decades. Automatic baggage detection through surveillance camera can help in security and monitoring in public places. A detection algorithm for humans (with or without carrying baggage) is proposed in this paper. Detection in the proposed method can be achieved by employing spatial information of the baggage of various texture patterns with locus to the human body carrying it. To extract the features of body parts (such as head, trunk and limbs), the descriptor is exhibited and trained by the support vector machine classifier. The proposed approach has been widely assessed by using publically available datasets. The experimental results have shown that the proposed approach is viable for baggage detection and classification as compared to the other available approaches.

Publisher

NED University of Engineering and Technology

Subject

General Medicine

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