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Baseline detection of multi-lingual unconstrained handwritten text lines

机译:多语言无限制手写文本行的基线检测

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摘要

Many handwritten text recognition systems use the baseline information for better recognition of text line characters. Improper baseline detection reduces the performance of the recognition. In this paper we propose a novel baseline detection scheme for unconstrained handwritten text lines of multilingual documents. For baseline detection of a text line, at first, we detect the set of significant contour points (S-points) of the text line. Every non-singleton subsets of S-points forms a curve. The orientation invariant features of the curve determine whether the curve can construct a probable baseline of the input text line or not. It is determined by an SVM, trained using the orientation invariant features of the curves. The curves classified as probable baselines, are sorted according to their relative positions in ascending order to get the optimal baseline. We tested our method on different handwritten text lines of Bangla(Bengali), English(Roman), Kannada, Oriya, Devnagari and Persian scripts and obtained encouraging results. (C) 2016 Elsevier B.V. All rights reserved.
机译:许多手写文本识别系统使用基线信息来更好地识别文本行字符。基线检测不当会降低识别性能。在本文中,我们为多语言文档的无约束手写文本行提出了一种新颖的基线检测方案。对于文本行的基线检测,首先,我们检测文本行的重要轮廓点(S点)集合。 S点的每个非单子集都形成一条曲线。曲线的方向不变特征确定曲线是否可以构造输入文本行的大概基线。它由SVM确定,并使用曲线的方向不变特征进行训练。归类为可能的基线的曲线按其相对位置以升序排序,以获得最佳基线。我们在孟加拉(孟加拉),英语(罗马),卡纳达语,奥里亚语,德文加里语和波斯语脚本的不同手写文本行上测试了我们的方法,并获得了令人鼓舞的结果。 (C)2016 Elsevier B.V.保留所有权利。

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