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Comparison of feature extractors in license plate recognition

机译:特征提取器在车牌识别中的比较

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Vehicle license plate recognition has been intensively studied in many countries. Due to the different types of license plates being used, the requirement of an automatic license plate recognition system is different for each country. In this paper, an automatic license plate recognition system is proposed for Malaysian vehicles with standard license plates using blob labeling and clustering for segmentation, seven popular and one proposed edge detectors for feature extraction and neural networks for classification. There were eight experiments conducted using eight different edge dectectors: Kirsch, Sobel, Laplacian, Wallis, Prewitt, Frei Chen and a proposed edge detector. The result had shown kirsch edge detectors is the best technique for feature exractor while the proposed achieved better results compared to Prewitt, Frei Chen and Wallis.
机译:车辆车牌识别已在许多国家进行集中研究。由于使用不同类型的牌照板,每个国家的自动许可板识别系统的要求不同。在本文中,为使用Blob标签和聚类进行标准牌照的马来西亚车辆的自动牌照识别系统,用于分割,七种流行的和一个提出的边缘探测器,用于分类的特征提取和神经网络。使用八个不同的边缘Dectectors进行了八个实验:Kirsch,Sobel,Laplacian,Wallis,Prowitt,Frei Chen和提出的边缘探测器。结果显示了Kirsch边缘探测器是特征映射器的最佳技术,而建议的结果与Prowitt,Frei Chen和Wallis相比取得了更好的结果。

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