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Semantic Similarity of Arabic Sentences with Word Embeddings - 2017

Semantic Similarity Of Arabic Sentences With Word Embeddings

Research Area:  Machine Learning

Abstract:

Semantic textual similarity is the basis of countless applications and plays an important role in diverse areas, such as information retrieval, plagiarism detection, information extraction and machine translation. This article proposes an innovative word embedding-based system devoted to calculate the semantic similarity in Arabic sentences. The main idea is to exploit vectors as word representations in a multidi-mensional space in order to capture the semantic and syntactic properties of words. IDF weighting and Part-of-Speech tagging are applied on the examined sentences to support the identification of words that are highly descriptive in each sentence. The performance of our proposed system is confirmed through the Pearson correlation between our assigned semantic similarity scores and human judgments.

Keywords:  

Author(s) Name:  El Moatez Billah Nagoudi , Didier Schwab

Journal name:  

Conferrence name:  Proceedings of the Third Arabic Natural Language Processing Workshop

Publisher name:  Association for Computational Linguistics

DOI:  10.18653/v1/W17-1303

Volume Information: