Tashaphyne0.4:基于韵律体建模方法的新型阿拉伯语光干器

IF 1.7 3区 计算机科学 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS Information Retrieval Journal Pub Date : 2023-12-14 DOI:10.1007/s10791-023-09429-y
Ra’ed M. Al-Khatib, Taha Zerrouki, Mohammed M. Abu Shquier, Amar Balla
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引用次数: 0

摘要

词干处理算法是增强自然语言处理中信息检索过程的重要工具。本文提出了一种名为 Tashaphyne0.4 的新型阿拉伯语轻词干算法,该算法的理念是从阿拉伯语文本中提取最精确的 "词根 "和 "词干"。因此,所提出的算法可同时充当词根、词干和分段工具。我们的方法包括三个阶段(即准备阶段、词干提取阶段和词根提取阶段)。Tashaphyne0.4 的效果优于其他六种词干提取器(即 Khoja、ISRI、Motaz/Light10、Tashaphyne0.3、FARASA 和 Assem 词干提取器)。比较使用了四个不同的阿拉伯语综合基准数据集。总之,我们提出的干词器在提取 "根 "和 "茎 "方面取得了显著的效果,优于其他同类干词器。
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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Tashaphyne0.4: a new arabic light stemmer based on rhyzome modeling approach

Stemming algorithms are crucial tools for enhancing the information retrieval process in natural language processing. This paper presents a novel Arabic light stemming algorithm called Tashaphyne0.4, the idea behind this algorithm is to extract the most precise ‘roots’, and ‘stems’ from words of an Arabic text. Thus, the proposed algorithm acts as rooter, stemmer, and segmentation tools at the same time. Our approach involves tri-fold phases (i.e., Preparation, Stems-Extractor, and Root-Extractor). Tashaphyne0.4 has shown better results than six other stemmers (i.e., Khoja, ISRI, Motaz/Light10, Tashaphyne0.3, FARASA, and Assem stemmers). The comparison is performed using four different Arabic comprehensive-benchmarks datasets. In conclusion, our proposed stemmer achieved remarkable results and outperformed other competitive stemmers in extracting ‘Roots’ and ‘Stems’.

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来源期刊
Information Retrieval Journal
Information Retrieval Journal 工程技术-计算机:信息系统
CiteScore
6.20
自引率
0.00%
发文量
17
审稿时长
13.5 months
期刊介绍: The journal provides an international forum for the publication of theory, algorithms, analysis and experiments across the broad area of information retrieval. Topics of interest include search, indexing, analysis, and evaluation for applications such as the web, social and streaming media, recommender systems, and text archives. This includes research on human factors in search, bridging artificial intelligence and information retrieval, and domain-specific search applications.
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