On-line Handwriting Recognition of Indian Scripts - The First Benchmark

T. Mondal, U. Bhattacharya, S. K. Parui, K. Das, Dinesh Mandalapu
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引用次数: 54

Abstract

Online handwriting recognition of Indian scripts has been drawing increasing attention in recent years. Related research has gained further momentum due to recent planned funding by the Govt. of India towards technology development of Indian languages and scripts. Standard databases of handwritten characters of a few Indian scripts have already become available. These include online handwritten character databases of Bangla, Devanagari, Tamil and Telugu and these are available free of cost on request. In the present paper, we present benchmark recognition results of the above databases of four most popular scripts of the Indian subcontinent based on two existing feature extraction methods viz. point-float and direction code histogram features and three classifiers viz. Nearest Neighbour (NN), Multilayer Perceptron (MLP) and Hidden Markov Model (HMM) to test the effectiveness of the existing classification methods and provide benchmark results for future online handwriting recognition research of these Indic scripts.
印度文字的在线手写识别-第一个基准
近年来,印度文字的在线手写识别越来越受到关注。由于印度政府最近计划为印度语言和文字的技术开发提供资金,相关研究获得了进一步的动力。一些印度文字的手写字符的标准数据库已经可用。其中包括孟加拉语、德文那加里语、泰米尔语和泰卢固语的在线手写字符数据库,这些数据库应要求免费提供。在本文中,我们基于两种现有的特征提取方法,即点浮点和方向码直方图特征,以及三种分类器,即最近邻(NN),给出了上述数据库中印度次大陆最流行的四种脚本的基准识别结果。利用多层感知器(MLP)和隐马尔可夫模型(HMM)来测试现有分类方法的有效性,为未来对这些印度文字的在线手写识别研究提供基准结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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