An Automatic Student Verification System Utilising Off-Line Thai Name Components

Hemmaphan Suwanwiwat, Abhijit Das, M. A. Ferrer-Ballester, U. Pal, M. Blumenstein
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引用次数: 3

Abstract

This research proposed an automatic student identification and verification system utilising off-line Thai name components. The Thai name components consist of first and last names. Dense texture-based feature descriptors were able to yield encouraging results when applied to different handwritten text recognition scenarios. As a result, the authors employed such features in investigating their performance on Thai name component verification system. In this research, Dense-Local Binary Pattern, Dense-Local Directional Pattern, and Local Binary Pattern combined with Local Directional Pattern were employed. A base-line shape/feature i.e. Hidden Markov Model (HMM) was also utilised in this study. As there is no dataset on Thai name verification in the literature, a dataset is proposed for a Thai name verification system. The name component samples were collected from high school students. It consists of 8,400 name components (first and last names) from 100 students. Each student provided 60 genuine name components, and each of the name components was forged by 12 other students. An encouraging result was found employing the above-mentioned features on the proposed dataset.
利用离线泰国姓名组件的自动学生验证系统
本研究提出一种利用离线泰语姓名组件的学生自动识别与验证系统。泰语名称组成部分由姓和名组成。当应用于不同的手写文本识别场景时,基于密集纹理的特征描述符能够产生令人鼓舞的结果。因此,作者利用这些特征来研究它们在泰语名称成分验证系统上的性能。本研究采用了密集局部二值图、密集局部方向图和局部二值图结合局部方向图。基线形状/特征,即隐马尔可夫模型(HMM)也被用于本研究。由于文献中没有关于泰语姓名验证的数据集,本文提出了一个泰语姓名验证系统的数据集。姓名成分样本取自高中生。它由100名学生的8400个名字组成(姓和名)。每个学生提供了60个真实姓名组件,每个名称组件由其他12名学生伪造。将上述特征应用到所提出的数据集上,得到了令人鼓舞的结果。
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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