Volume 14 Number 12 (Dec. 2019)
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JCP 2019 Vol.14(12): 650-661 ISSN: 1796-203X
doi: 10.17706/jcp.14.12.650-661

Ontology Enrichment for Aspect-Oriented Sentiment Analysis with Deep Learning Using Logical Concept Analysis

Tho Quan, Trung Mai
Faculty of Computer Science and Engineering, Ho Chi Minh City University of Technology, Vietnam.

Abstract—Aspect-oriented sentiment analysis is a problem that have been attracting much attention from the research community. In the past, using ontologies to represent domain knowledge helped increase the performance of this task. Recently, with the rapid development of deep learning techniques, combination of deep learning with ontology has become very promising. A natural approach is to use aspects represented by ontologies to form input vectors s for deep learning models. However, ontologies often only represent concrete concepts, whereas machine learning techniques often focus on latent features. To address this, we propose using Logical Concept Analysis (LCA), an extension of Formal Concept Analysis (FCA), to enrich the ontology by generating more abstract concepts from existing concrete concepts. We have applied this approach to real data and achieved promising results.

Index Terms—Aspect-oriented sentiment analysis, ontology enrichment, deep learning, logical concept analysis.

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Cite: Tho Quan, Trung Mai, "Ontology Enrichment for Aspect-Oriented Sentiment Analysis with Deep Learning Using Logical Concept Analysis," Journal of Computers vol. 14, no. 12, pp. 650-661, 2019.

General Information

ISSN: 1796-203X
Abbreviated Title: J.Comput.
Frequency: Bimonthly
Editor-in-Chief: Prof. Liansheng Tan
Executive Editor: Ms. Nina Lee
Abstracting/ Indexing: DBLP, EBSCO,  ProQuest, INSPEC, ULRICH's Periodicals Directory, WorldCat,etc
E-mail: jcp@iap.org
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