面向阿拉伯文信息检索的形态语义知识抽取系统

Nadia Soudani, Ibrahim Bounhas, Y. Slimani
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引用次数: 0

摘要

本文提出利用不同的形态语义资源来增强阿拉伯语信息检索。我们使用标准化的LMF阿拉伯语词典和阿拉伯语料库。通过这次交流,我们的目标是利用不同的现有资源,为阿拉伯语IR提取有用的知识。我们同样研究了阿拉伯语形态对红外有效性的影响。基于形态、语义和形态语义关系,提出了几种查询扩展策略。此外,结合这些知识也进行了研究和评价。我们实验了短变音符和词性消歧和标注在标引步骤中的作用。基于图的表示用于形式化基于图的知识资源表示。后者代表了一种强大的形式来表达文本语义,并支持NLP工具和应用程序作为IR。对不同的知识资源和不同的IR方法进行了实验比较。
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MOSSA: a morpho-semantic knowledge extraction system for Arabic information retrieval
In this paper, we propose to exploit different morpho-semantic resources to enhance Arabic information retrieval (IR). We use standardised LMF Arabic dictionaries and Arabic corpora. Our goal by this communication is to take advantage of the different existing resources to extract useful knowledge for Arabic IR. We equally study the impact of the Arabic morphology on IR effectiveness. Several query expansion strategies are carried based on morphological, semantic and morpho-semantic relations. In addition, combining such knowledge is also studied and evaluated. We experiment the effect of short diacritics and part of speech (POS) disambiguation and tagging in the indexing step. A graph-based representation is used to formalise knowledge resources graph-based representation. This latter represents a powerful formalism to express semantics of texts and to support NLP tools and applications as IR. Several experimental comparisons are handled between the different used knowledge resources and the different carried IR approaches.
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