Classifier based text simplification for improved machine translation

Shruti Tyagi, Deepti Chopra, Iti Mathur, Nisheeth Joshi
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引用次数: 11

Abstract

Machine Translation is one of the research fields of Computational Linguistics. The objective of many MT Researchers is to develop an MT System that produce good quality and high accuracy output translations and which also covers maximum language pairs. As internet and Globalization is increasing day by day, we need a way that improves the quality of translation. For this reason, we have developed a Classifier based Text Simplification Model for English-Hindi Machine Translation Systems. We have used support vector machines and Naïve Bayes Classifier to develop this model. We have also evaluated the performance of these classifiers.
基于分类器的文本简化改进机器翻译
机器翻译是计算语言学的研究领域之一。许多机器翻译研究人员的目标是开发一个机器翻译系统,该系统可以产生高质量和高精度的输出翻译,并且还可以覆盖最大的语言对。随着互联网和全球化的日益发展,我们需要一种提高翻译质量的方法。基于这个原因,我们开发了一个基于分类器的英语-印地语机器翻译系统文本简化模型。我们使用了支持向量机和Naïve贝叶斯分类器来开发这个模型。我们还评估了这些分类器的性能。
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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