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Character recognition based on non-linear multi-projection profiles measure

机译:基于非线性多投影轮廓测量的字符识别

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摘要

In this paper, we study a method for isolated handwritten or hand-printed character recognition using dynamic programming for matching the non-linear multi-projection profiles that are produced from the Radon transform. The idea is to use dynamic time warping (DTW) algorithm to match corresponding pairs of the Radon features for all possible projections. By using DTW, we can avoid compressing feature matrix into a single vector which may miss information. It can handle character images in different shapes and sizes that are usually happened in natural handwriting in addition to difficulties such as multi-class similarities, deformations and possible defects. Besides, a comprehensive study is made by taking a major set of state-of-the-art shape descriptors over several character and numeral datasets from different scripts such as Roman, Devanagari, Oriya, Bangla and Japanese-Katakana including symbol. For all scripts, the method shows a generic behaviour by providing optimal recognition rates but, with high computational cost.
机译:在本文中,我们研究了一种使用动态编程来匹配从Radon变换生成的非线性多投影轮廓的孤立手写或手印字符识别的方法。想法是使用动态时间规整(DTW)算法为所有可能的投影匹配相应的Radon特征对。通过使用DTW,我们可以避免将特征矩阵压缩为可能丢失信息的单个矢量。它可以处理自然手写中通常出现的不同形状和大小的字符图像,此外还具有诸如多类相似性,变形和可能的缺陷之类的困难。此外,通过对来自不同脚本(例如罗马,梵文,奥里亚语,孟加拉语和日语-片假名)的几个字符和数字数据集进行采集,并采用主要的最新形状描述符来进行全面研究。对于所有脚本,该方法通过提供最佳识别率但具有较高的计算成本来显示一般行为。

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