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Best Combination of Binarization Methods for License Plate Character Segmentation

机译:车牌字符分割的最佳二值化方法组合

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A connected component analysis from a binary image is a popular character segmentation method but occasionally fails to segment the characters owing to image noise and uneven illumination. A multimethod binarization scheme that incorporates two or more binary images is a novel solution, but selection of binarization methods has never been analyzed before. This paper reveals the best combination of binarization methods and parameters and presents an in-depth analysis of the multimethod binarization scheme for better character segmentation. We carry out an extensive quantitative evaluation, which shows a significant improvement over conventional single-method binarization methods. Experiment results of six binarization methods and their combinations with different test images are presented.
机译:从二进制图像进行连通分量分析是一种流行的字符分割方法,但由于图像噪声和照明不均匀,有时无法对字符进行分割。包含两个或多个二进制图像的多方法二进制化方案是一种新颖的解决方案,但是以前从未对二进制化方法的选择进行过分析。本文揭示了二值化方法和参数的最佳组合,并对多方法二值化方案进行了深入分析,以实现更好的字符分割。我们进行了广泛的定量评估,显示出与常规单方法二值化方法相比有显着改进。给出了六种二值化方法的实验结果以及它们与不同测试图像的组合。

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