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An evaluation of statistical methods in handwritten hangul recognition

机译:手写朝鲜语识别统计方法的评估

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摘要

Although structural approaches have shown better performance than statistical ones in handwritten Hangul recognition (HHR), they have not been widely used in practical applications because of their vulnerability to image degradation and high computational complexity. Statistical approaches have not received high attention in HHR because their early trials were not promising enough. The past decade has seen significant improvements in statistical recognition in handwritten character recognition, including handwritten Chinese character recognition. Nevertheless, without a systematic evaluation on the effects of statistical methods in HHR, they cannot draw enough attention because of their discouraging experience. In this study, we comprehensively evaluate state-of-the-art statistical methods in HHR. Specifically, we implemented fifteen character normalization methods, five feature extraction methods, and four classification methods and evaluated their performances on two public handwritten Hangul databases. On the SERI database, statistical methods achieved the best performance of 93.71 % accuracy, which is higher than the best result achieved by structural recognizers. On the PE92 database, which has small number of samples per class, statistical methods gave slightly lower performance than the best structural recognizer.
机译:尽管在手写韩文识别(HHR)中,结构方法表现出比统计方法更好的性能,但是由于它们易受图像降级和高计算复杂度的影响,因此并未在实际应用中广泛使用。 HHR中的统计方法尚未引起高度重视,因为它们的早期试验前景不佳。在过去的十年中,手写字符识别(包括手写汉字识别)的统计识别有了显着改善。然而,如果不对HHR中的统计方法的效果进行系统的评估,由于经验不足,他们将无法引起足够的重视。在这项研究中,我们全面评估了HHR中的最新统计方法。具体来说,我们实施了15种字符归一化方法,5种特征提取方法和4种分类方法,并在两个公共手写韩文数据库上评估了它们的性能。在SERI数据库上,统计方法的最佳性能达到93.71%,比结构识别器的最佳结果要高。在PE92数据库中,每个类别的样本数量很少,统计方法的性能略低于最佳结构识别器。

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