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Novel Curve Signatures and a Combination Method for Thai On-Line Handwriting Character Recognition

机译:泰语在线手写字符识别的新颖曲线签名和组合方法

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There is no commercial character recognition software that supports Thai handwriting. Thai handwritten character recognition is needed to convert handwritten text written on mobile and tablet devices into computer encoded text. We propose a novel method that joins three curve signatures. The first signature is the normalized tangent angle function (TAF), which provides rough classification. The other two novel curve signatures are the relative position matrix (RPM), which is used to compare global curve features, and the straightened tangent angle function (STAF), which is used to compare the tangent angle along the cumulative unsigned curvature domain. In the recognition process, an input curve is extracted for these three signatures and the similarity against each character in the handwriting templates is measured. Then, the similarity scores are weighted and summed for ranking. Our experiment is done on 48 handwriting sample sets (44 Thai consonants appear in each set, and there are 4 sets per handwriting). Our methods yield an accuracy of 94.08% for personal handwriting, and 92.23% for general handwriting.
机译:没有支持泰语手写的商业字符识别软件。需要泰国手写字符识别才能将在移动设备和平板电脑设备上编写的手写文本转换为计算机编码的文本。我们提出了一种新颖的方法,该方法结合了三个曲线签名。第一个签名是归一化切角函数(TAF),它提供了粗略的分类。其他两个新颖的曲线签名是相对位置矩阵(RPM),用于比较整体曲线特征;拉直的切线角度函数(STAF),用于比较沿累积无符号曲率域的切线角度。在识别过程中,针对这三个签名提取输入曲线,并测量与手写模板中每个字符的相似性。然后,对相似度分数进行加权和求和以进行排名。我们的实验是在48个手写样本集中完成的(每个集合中出现了44个泰国辅音,每个手写有4个辅音)。我们的方法对于个人手写产生94.08%的准确性,对于一般手写产生92.23%的准确性。

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