SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES

With the fast development of World Wide Web 2.0 has resulted in huge number of reviews where the consumers share their opinion about a variety of products in the websites, forum and social media such as Twitter and Instagram. For the organizations, they have to analyze customer's behavior to fi...

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Main Authors: Muhammad Iqbal Abu Latiffi, Mohd Ridzwan Yaakub
Format: Article
Language:English
Published: UKM Press 2018-12-01
Series:Asia-Pacific Journal of Information Technology and Multimedia
Subjects:
Online Access:https://www.ukm.my/apjitm/view.php?id=25
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spelling doaj-fb039a89ab5d4d9f97e607b6ad74ef132021-06-21T06:54:44ZengUKM PressAsia-Pacific Journal of Information Technology and Multimedia2289-21922018-12-017026169https://doi.org/10.17576/apjitm-2018-0702-05SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUESMuhammad Iqbal Abu LatiffiMohd Ridzwan YaakubWith the fast development of World Wide Web 2.0 has resulted in huge number of reviews where the consumers share their opinion about a variety of products in the websites, forum and social media such as Twitter and Instagram. For the organizations, they have to analyze customer's behavior to find new market trends and insights. Sentiment analysis concept used to extract the positive, negative or neutral sentiment of the features from the unstructured data of product reviews. In this paper, we explore the techniques and tools used to enhance the ontology-based approach. Combination of ontology-based on Formal Concept Analysis (FCA) which a process of obtaining a formal ontology or a concept hierarchy from a group of objects with their properties and K-Nearest Neighbor (KNN) to classify the reviews. We believe with these techniques, we are able to view the strength and weakness of the product in more detail where the feature selection process will more be systematic and will result in the highest feature set.https://www.ukm.my/apjitm/view.php?id=25sentiment analysis; ontology; formal concept analysis; k-nearest neighbor
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Iqbal Abu Latiffi
Mohd Ridzwan Yaakub
spellingShingle Muhammad Iqbal Abu Latiffi
Mohd Ridzwan Yaakub
SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
Asia-Pacific Journal of Information Technology and Multimedia
sentiment analysis; ontology; formal concept analysis; k-nearest neighbor
author_facet Muhammad Iqbal Abu Latiffi
Mohd Ridzwan Yaakub
author_sort Muhammad Iqbal Abu Latiffi
title SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
title_short SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
title_full SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
title_fullStr SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
title_full_unstemmed SENTIMENT ANALYSIS: AN ENHANCEMENT OF ONTOLOGICAL-BASED USING HYBRID MACHINE LEARNING TECHNIQUES
title_sort sentiment analysis: an enhancement of ontological-based using hybrid machine learning techniques
publisher UKM Press
series Asia-Pacific Journal of Information Technology and Multimedia
issn 2289-2192
publishDate 2018-12-01
description With the fast development of World Wide Web 2.0 has resulted in huge number of reviews where the consumers share their opinion about a variety of products in the websites, forum and social media such as Twitter and Instagram. For the organizations, they have to analyze customer's behavior to find new market trends and insights. Sentiment analysis concept used to extract the positive, negative or neutral sentiment of the features from the unstructured data of product reviews. In this paper, we explore the techniques and tools used to enhance the ontology-based approach. Combination of ontology-based on Formal Concept Analysis (FCA) which a process of obtaining a formal ontology or a concept hierarchy from a group of objects with their properties and K-Nearest Neighbor (KNN) to classify the reviews. We believe with these techniques, we are able to view the strength and weakness of the product in more detail where the feature selection process will more be systematic and will result in the highest feature set.
topic sentiment analysis; ontology; formal concept analysis; k-nearest neighbor
url https://www.ukm.my/apjitm/view.php?id=25
work_keys_str_mv AT muhammadiqbalabulatiffi sentimentanalysisanenhancementofontologicalbasedusinghybridmachinelearningtechniques
AT mohdridzwanyaakub sentimentanalysisanenhancementofontologicalbasedusinghybridmachinelearningtechniques
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