Automatic vehicle identification and matching in multiple perspectives

By: Call Number: AIT Diss. no.ISE-21-03 Contributor(s): Material type: SeriesSeries: Asian Institute of Technology. Dissertation ; no. ISE-21-03Publication details: Pathum Thani, Thailand : Asian Institute of Technology, 2021Description: 46 leaves : illSubject(s): Online resources: Dissertation note: Thesis (Ph. D.) - Asian Institute of Technology, 2021 Summary: This dissertation propose an implementation of automated vehicle tracking system based on vision sensors and video analytics. The proposed system can process video streams from multiple traffic cameras to identify vehicles that appears in the scenes and predicts the route of a particular vehicle by matching the visual properties (type, color, and make) and/or license number found in adjacent cameras. Classical image processing techniques and Convolutional Neural Network architectures (GoogLeNet and YOLO) are adopted for vehicle detection-classification, and license plate recognition. The study also propose an architectural design of distributed traffic camera system which can reduce the cost of installation in wide coverage area.
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40-Archives Asian Institute of Technology Library Archives AIT Diss. no.ISE-21-03 (Browse shelf(Opens below)) 1 Available 30020220004363
67-Electronic Resource Asian Institute of Technology Library Archives AIT Diss. no.ISE-21-03 (Browse shelf(Opens below)) Not for loan
20-AIT Publication Asian Institute of Technology Library AIT Publications AIT Diss. no.ISE-21-03 (Browse shelf(Opens below)) 1 Available 30050121076698

A dissertation submitted in partial fulfillment of the requirements for the degree of Doctor of Engineering in Mechatronics and Embedded Systems, School of Engineering and Technology

Thesis (Ph. D.) - Asian Institute of Technology, 2021

This dissertation propose an implementation of automated vehicle tracking system based on vision sensors and video analytics. The proposed system can process video streams from multiple traffic cameras to identify vehicles that appears in the scenes and predicts the route of a particular vehicle by matching the visual properties (type, color, and make) and/or license number found in adjacent cameras. Classical image processing techniques and Convolutional Neural Network architectures (GoogLeNet and YOLO) are adopted for vehicle detection-classification, and license plate recognition. The study also propose an architectural design of distributed traffic camera system which can reduce the cost of installation in wide coverage area.

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