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首页> 外文期刊>International journal of computational vision and robotics >Statistical features based character recognition for offline handwritten Tamil document images using HMM
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Statistical features based character recognition for offline handwritten Tamil document images using HMM

机译:基于统计特征的字符识别,用于使用HMM的离线手写Tamil文档图像

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摘要

Offline handwritten recognition has been one of the active and challenging research areas in the field of pattern recognition. More research work has been done for English, Chinese, Arabic, Japanese languages and numerals recognition but limited for Indian scripts. With respect to Tamil language, handwriting recognition is still an open challenge due to richness of language and versatile shapes. In this paper, the problem of recognising offline Tamil handwritten characters has been addressed by using a symbol-modelling HMM. Here, we propose six different statistical features which are extracted from the character boundaries, to classify a character using symbol-modelling HMM. Data samples are collected from HP data sets pertaining to 60 Tamil characters for training. For testing purpose, ten different samples are collected for every character addressing four different varieties of writers from HP data sets to evaluate the recognition performance. An accuracy of 85% has been achieved through this system.
机译:离线手写识别已成为模式识别领域中活跃而富挑战性的研究领域之一。对于英语,中文,阿拉伯语,日语和数字识别,已经进行了更多的研究工作,但对印度文字的研究有限。对于泰米尔语来说,由于语言丰富和形状多样,手写识别仍然是一个开放的挑战。在本文中,通过使用符号建模HMM解决了脱机的泰米尔语手写字符识别问题。在这里,我们建议从字符边界中提取六个不同的统计特征,以使用符号建模HMM对字符进行分类。从HP数据集中收集了与60个泰米尔字符有关的数据样本以进行训练。为了进行测试,从HP数据集中为每个字符收集了十个不同的样本,分别针对四种不同的作家,以评估识别性能。通过该系统可以达到85%的精度。

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