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Precise and efficient Chinese license plate recognition in the real monitoring scene of intelligent transportation system
Authors:Jia Wei  Gong Chao
Affiliation:School of Computer Science and Information Engineering, Hefei University of Technology, Hefei 230009, China
Abstract:In this paper, the performance of you only look once ( YOLO) series detectors on Chinese license platerecognition (LPR) in the real intelligent transportation system (ITS) monitoring scene is investigated. Specially, aprecise and efficient automatic license plate recognition ( ALPR ) system based on the YOLOv4 detector isproposed. The proposed ALPR system contains three stages including vehicle detection, license plate detection(LPD) and LPR. In vehicle detection stage, YOLOv4 detector is directly applied. In LPD stage, YOLOv4-tinydetector is exploited. In the last stage, the YOLOv4-tiny detector with attention mechanism for LPR is proposed touse. In addition, a large Chinese license plate dataset containing 10 500 images collected from all 31 provinces inthe Chinese mainland is created. This Chinese license plate dataset is named Hefei University of Technology licenseplate version 1 (HFUT-LP v1). Particularly, HFUT-LP v1 dataset is collected in the real ITS monitoring scene. Inorder to compare the performance of different object detection algorithms for ALPR, a variety of object detectionalgorithms are used to make a comprehensive performance evaluation. Experimental results show that theproposedALPR system achieves very high accuracy and has very fast processing speed, which is suitable for real-time LPR.
Keywords:
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