Paper
24 September 2011 Semi-automatic ground truth generation for license plate recognition system
Shen-Zheng Wang, San-Lung Zhao, Yi-Yuan Chen, Kung-Ming Lan
Author Affiliations +
Abstract
License plate recognition (LPR) system is to help alert relevant personnel of any passing vehicle in the surveillance area. In order to test algorithms for license plate recognition, it is necessary to have input frames in which the ground truth is determined. The purpose of ground truth data is here to provide an absolute reference for performance evaluation or training purposes. However, annotating ground truth data for real-life inputs is very disturbing task because of timeconsuming manual. In this paper, we proposed a method of semi-automatic ground truth generation for license plate recognition in video sequences. The method started from region of interesting detection to rapidly extract characters lines followed by a license plate recognition system to verify the license plate regions and recognized the numbers. On the top of the LPR system, we incorporated a tracking-validation mechanism to detect the time interval of passing vehicles in input sequences. The tracking mechanism is initialized by a single license plate region in one frame. Moreover, in order to tolerate the variation of the license plate appearances in the input sequences, the validator would be updated by capturing positive and negatives samples during tracking. Experimental results show that the proposed method can achieve promising results.
© (2011) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Shen-Zheng Wang, San-Lung Zhao, Yi-Yuan Chen, and Kung-Ming Lan "Semi-automatic ground truth generation for license plate recognition system", Proc. SPIE 8135, Applications of Digital Image Processing XXXIV, 81351B (24 September 2011); https://doi.org/10.1117/12.899125
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Cited by 1 scholarly publication.
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KEYWORDS
Video

Video surveillance

Image segmentation

Detection and tracking algorithms

Statistical modeling

Motion models

Information fusion

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