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Application of Structural and Topological Features to Recognize Online Handwritten Bangla Characters

机译:结构和拓扑特征在在线手写孟加拉字符识别中的应用

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摘要

This article presents a set of novel features for robust online Bangla handwritten character recognition. Two feature extraction methods are presented here. The first describes the transition from background to foreground pixels and vice versa. The second uses a combination of topological features and centre-of-gravity-(CG) based circular features where global information, local information, and Circular Quadrant Mass Distribution information have been extracted. The impact of each along with their combination have also been analyzed. A total of 15,000 isolated online Bangla character samples have been collected and used for the evaluation. A Support Vector Machine classifier records the best recognition rate when the transition count feature, CG-based circular features, and topological features are combined.
机译:本文介绍了一套强大的在线Bangla手写字符识别功能。这里介绍了两种特征提取方法。第一个描述了从背景像素到前景像素的过渡,反之亦然。第二种方法结合了拓扑特征和基于重心(CG)的圆形特征,其中已提取了全局信息,局部信息和圆形象限质量分布信息。还分析了每种方法及其组合的影响。总共收集了15,000个孤立的在线Bangla字符样本,并将其用于评估。当转换计数功能,基于CG的圆形功能和拓扑功能结合在一起时,支持向量机分类器记录最佳识别率。

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