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A New Character Segmentation Approach for Off-Line Cursive Handwritten Words

机译:离线草书手写单词的新字符分割方法

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Character Segmentation is the most crucial step for any OCR (Optical Character Recognition) System. The selection of segmentation algorithm being used is the key factor in deciding the accuracy of OCR system. If there is a good segmentation of characters, the recognition accuracy will also be high. Segmentation of words into characters becomes very difficult due to the cursive and unconstrained nature of the handwritten script. This paper proposes a new vertical segmentation algorithm in which the segmentation points are located after thinning the word image to get the stroke width of a single pixel. The knowledge of shape and geometry of English characters is used in the segmentation process to detect ligatures. The proposed segmentation approach is tested on a local benchmark database and high segmentation accuracy is found to be achieved.
机译:字符分割是任何OCR(光学字符识别)系统中最关键的步骤。所使用的分割算法的选择是决定OCR系统精度的关键因素。如果有很好的字符分割,识别精度也将很高。由于手写脚本的草书性和不受限制的性质,将单词分割成字符变得非常困难。本文提出了一种新的垂直分割算法,该算法在对单词图像进行细化之后,将分割点定位在单个像素的笔划宽度上。在分割过程中使用英文字符的形状和几何知识来检测连字。在本地基准数据库上对提出的分割方法进行了测试,发现可以实现较高的分割精度。

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