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Segmentation of connected handwritten Chinese characters based on stroke analysis and background thinning

机译:基于行程分析的连接手写汉字分割及背景变薄

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摘要

Segmentation of connected handwritten Chinese characters is a very difficult task in document image analysis. In this paper, a novel algorithm based on stroke analysis and background thinning is proposed to segment connected handwritten Chinese characters. The feature points, viz. end points, fork points and comer points are detected in the thinned image. The segments between feature points are considered as substrokes and are extracted. Lengths of substrokes and the topological relations between them are employed to locate connected point. A new method based on background thinning is developed to decide a proper segmentation path. The experimental results show that satisfactory performance is achieved by the presented method for segmentation of connected handwritten Chinese characters.
机译:连接手写汉字的分割是文档图像分析中的一项非常困难的任务。本文提出了一种基于行程分析和背景细化的新型算法,以段段连接的手写汉字。特征点,viz。在稀释图像中检测到终点,叉点和分光点。特征点之间的段被视为子表口并被提取。采用它们的长度和它们之间的拓扑关系来定位连接点。开发了一种基于背景变薄的新方法来决定适当的分割路径。实验结果表明,通过呈现的手写汉字分割方法实现了令人满意的性能。

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