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Malay sentiment analysis based on combined classification approaches and Senti-lexicon algorithm
- Source :
- PLoS ONE, PLoS ONE, Vol 13, Iss 4, p e0194852 (2018)
- Publication Year :
- 2016
-
Abstract
- Sentiment analysis techniques are increasingly exploited to categorize the opinion text to one or more predefined sentiment classes for the creation and automated maintenance of review-aggregation websites. In this paper, a Malay sentiment analysis classification model is proposed to improve classification performances based on the semantic orientation and machine learning approaches. First, a total of 2,478 Malay sentiment-lexicon phrases and words are assigned with a synonym and stored with the help of more than one Malay native speaker, and the polarity is manually allotted with a score. In addition, the supervised machine learning approaches and lexicon knowledge method are combined for Malay sentiment classification with evaluating thirteen features. Finally, three individual classifiers and a combined classifier are used to evaluate the classification accuracy. In experimental results, a wide-range of comparative experiments is conducted on a Malay Reviews Corpus (MRC), and it demonstrates that the feature extraction improves the performance of Malay sentiment analysis based on the combined classification. However, the results depend on three factors, the features, the number of features and the classification approach.
- Subjects :
- Computer science
Emotions
lcsh:Medicine
Social Sciences
02 engineering and technology
computer.software_genre
Lexicon
Machine Learning
User-Computer Interface
0202 electrical engineering, electronic engineering, information engineering
Psychology
Data Mining
lcsh:Science
Language
Multidisciplinary
Attitude to Computers
Applied Mathematics
Simulation and Modeling
Semantics
Knowledge
Categorization
Physical Sciences
language
020201 artificial intelligence & image processing
Supervised Machine Learning
Information Technology
Natural language processing
Algorithms
Research Article
Computer and Information Sciences
Feature extraction
InformationSystems_INFORMATIONSTORAGEANDRETRIEVAL
Research and Analysis Methods
Machine Learning Algorithms
Artificial Intelligence
020204 information systems
Support Vector Machines
Classifier (linguistics)
Humans
Malay
Lexicons
business.industry
lcsh:R
Sentiment analysis
Malaysia
Cognitive Psychology
Biology and Life Sciences
Linguistics
Models, Theoretical
language.human_language
Support vector machine
Statistical classification
ComputingMethodologies_PATTERNRECOGNITION
Attitude
Cognitive Science
lcsh:Q
Artificial intelligence
business
computer
Social Media
Mathematics
Neuroscience
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 13
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- PloS one
- Accession number :
- edsair.doi.dedup.....6be888b83e87fa48d26e2fc84c020daa