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A Concept-Based Sentiment Analysis Approach for Arabic

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Date

2020

Journal Title

Journal ISSN

Volume Title

Publisher

Zarka Private Univ

Open Access Color

GOLD

Green Open Access

No

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Publicly Funded

No
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Average
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Average
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Average

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Abstract

Concept-Based Sentiment Analysis (CBSA) methods are considered to be more advanced and more accurate when it compared to ordinary Sentiment Analysis methods, because it has the ability of detecting the emotions that conveyed by multi-word expressions concepts in language. This paper presented a CBSA system for Arabic language which utilizes both of machine learning approaches and concept-based sentiment lexicon. For extracting concepts from Arabic, a rule-based concept extraction algorithm called semantic parser is proposed. Different types of feature extraction and representation techniques are experimented among the building prosses of the sentiment analysis model for the presented Arabic CBSA system. A comprehensive and comparative experiments using different types of classification methods and classifier fusion models, together with different combinations of our proposed feature sets, are used to evaluate and test the presented CBSA system. The experiment results showed that the best performance for the sentiment analysis model is achieved by combined Support Vector Machine-Logistic Regression (SVM-LR) model where it obtained a F-score value of 93.23% using the Concept-Based-Features + Lexicon-Based-Features + Word2vec-Features (CBF + LEX+ W2V) features combinations.

Description

Raoof Nasser, Ahmed/0000-0002-9731-8167

Keywords

Arabic Sentiment Analysis, Concept-Based Sentiment Analysis, Machine Learning And Ensemble Learning

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

Nasser, Ahmed; Sever, Hayri (2020). "A Concept-based Sentiment Analysis Approach for Arabic", The International Arab Journal of Information Technology, Vol. 17, No. 5, pp. 778-788.

WoS Q

Q4

Scopus Q

Q2
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OpenCitations Citation Count
3

Source

The International Arab Journal of Information Technology

Volume

17

Issue

5

Start Page

778

End Page

788
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Citations

Scopus : 12

Captures

Mendeley Readers : 34

SCOPUS™ Citations

13

checked on Feb 23, 2026

Web of Science™ Citations

7

checked on Feb 23, 2026

Page Views

2

checked on Feb 23, 2026

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0.88115729

Sustainable Development Goals

3

GOOD HEALTH AND WELL-BEING
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