僧伽罗文字识别系统的系统特征选择过程

T. Kumara, R. Ragel
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引用次数: 4

摘要

光学字符识别(OCR)是一个被广泛研究的课题。特征选择在功能OCR系统中起着至关重要的作用。正确的特征选择过程可以使OCR系统更快、更准确、更完整。僧伽罗语有完整的OCR系统。在本文中,我们介绍了一种可量化的、系统的OCR系统特征选择过程。使用which,我们证明了通常适用于英语字符的特征集不适用于僧伽罗字母。此外,我们研究和比较了文献中的一些现有特征,并介绍了适用于僧伽罗字母的新特征。我们认为,我们所确定和介绍的特征将有助于研究人员为僧伽罗语制作最好和完整的OCR系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A systematic feature selection process for a Sinhala character recognition system
Optical Character Recognition (OCR) is a well-researched topic. Feature selection plays a vital role in a functional OCR system. The right feature selection process would make an OCR system faster, accurate and complete. The Sinhala language suffers from complete OCR systems. In this paper, we introduce a quantifiable, and systematic feature selection process for OCR systems. Using which, we show that the feature set that usually works well with English characters will not work for Sinhala letters. Further, we examine and compare some existing features in the literature and also introduce new features that would work well for Sinhala letter. We argue that the features we have identified and introduced would help researchers to make the best and complete OCR system for Sinhala.
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