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A method for assessing norms of Chinese character based on K-means clustering and hough transformation

机译:基于K-均值聚类和霍夫变换的汉字规范评价方法

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In this paper, we process the image of Chinese characters, and assess the regular of Chinese characters in the image. Images of Chinese handwritten characters is processed to remove the irrelevant information such as background color, background noise. After processing and Hough transforming the image, we can get the information of strokes and angle through the outline of the image. After Hough transforming, the lengths and angles of the Hough Lines can be obtained and they are the approximate equivalent to the length and angle of strokes of Chinese characters themselves. Further analyzing the length and angles of the Hough Lines, the structure of Hough Lines can be equivalent to the structure of Chinese character strokes. Using the K-means algorithm of Clustering analysis, we grouped the degree of angles into different clusters. Because of Chinese characters strokes have vertical and horizontal features, we just need analyze the clusters near 0°, 90°, 180°, 45°, 135°. Finally,we use the length of the Hough lines as weights to assess norms of the Chinese characters.
机译:在本文中,我们处理汉字的图像,并评估图像中汉字的规则。处理中文手写字符的图像以去除不相关的信息,例如背景颜色,背景噪音。在对图像进行处理和霍夫变换之后,我们可以通过图像轮廓获取笔划和角度的信息。经过霍夫变换后,可以获得霍夫线的长度和角度,它们近似等于汉字本身的笔画的长度和角度。进一步分析霍夫线的长度和角度,霍夫线的结构可以等同于汉字笔划的结构。使用聚类分析的K-means算法,我们将角度的程度分为不同的聚类。由于汉字笔划具有垂直和水平特征,我们只需要分析0°,90°,180°,45°,135°附近的聚类。最后,我们使用霍夫线的长度作为权重来评估汉字规范。

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