Tokenization and N-Gram for Indexing Indonesian Translation of the Quran

S. Putra, M. Gunawan, Agung Suryatno
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引用次数: 6

Abstract

Tokenization is an important process used to break the text into parts of a word. N-gram model now is widely used in computational linguistics for predicting the next item in such a contiguous sequence of $\mathbf{n}$ items from a particular sample of text. This paper focuses on the implementation of tokenization and n-gram model using RapidMiner to produce unigram and bigram word for indexing Indonesian Translation of the Quran (ITQ). This study uses ITQ data sets consisting of 114 documents. The methods are data extracting and preprocessing text including tokenization, stemming, stopword removal, transformation cases, and n-grams. The results of this study showed the model produces the 6794 and 60323 tokens combination unigram and bigram use for index ITQ. Significant the contribution of this study is to enhance the digital index of ITQ.
古兰经印尼语翻译的标记化和N-Gram索引
标记化是一个重要的过程,用于将文本分解为单词的部分。n -gram模型现在广泛应用于计算语言学中,用于预测来自特定文本样本的$\mathbf{n}$项的连续序列中的下一个项目。本文研究了利用RapidMiner实现标记化和n-gram模型,生成单字和双字词,用于索引《古兰经》印尼语翻译(ITQ)。本研究使用114篇文献的ITQ数据集。方法是数据提取和预处理文本,包括标记化、词干提取、停止词去除、转换案例和n-grams。本研究的结果表明,该模型为索引ITQ产生了6794和60323个标记组合单元格和二元格格。本研究的重要贡献在于提高了ITQ的数字索引。
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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