基于韩文字符结构特性的手写字符串倾斜校正

D. You, Gyeonghwan Kim
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引用次数: 4

摘要

本文提出了一种基于笔画分布分析的手写韩文字符串倾斜校正方法,该方法反映了韩文字符的结构特性。该方法旨在解决传统方法在为英语/欧洲语言开发的手写韩文字符串倾斜校正中经常观察到的典型问题。从文本图像中提取的笔画分为两类:垂直和对角线。对每个聚类应用高斯建模,并从代表垂直笔画的模型中估计倾斜角。实验结果证明了该方法的有效性。为了进行性能比较,使用了1600张手写地址刺刺图像,成功率为96.7%,远远高于其他传统方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Slant correction of handwritten strings based on structural properties of Korean characters
A slant correction method for handwritten Korean strings based on analysis of stroke distribution, which reflects structural properties of Korean characters, is presented in this paper. The method aims to deal with typical problems which have been frequently observed in slant correction of handwritten Korean strings with conventional approaches developed for English/European languages. Extracted strokes from a line of text image are classified into two clusters: vertical and diagonal. Gaussian modeling is applied to each of the clusters and the slant angle is estimated from the model which represents the vertical strokes. Experimental results support the effectiveness of the proposed method. For the performance comparison 1,600 handwritten address sting images were used, and success rate of 96.7%, which is much higher than other conventional approaches, has been achieved.
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