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  4. Sentiment analysis on film review in Gujarati language using machine learning
 
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Sentiment analysis on film review in Gujarati language using machine learning

Source
International Journal of Electrical and Computer Engineering
ISSN
20888708
Date Issued
2022-02-01
Author(s)
Shah, Parita
Swaminarayan, Priya
Patel, Maitri
DOI
10.11591/ijece.v12i1.pp1030-1039
Volume
12
Issue
1
Abstract
Opinion analysis is by a long shot most basic zone of characteristic language handling. It manages the portrayal of information to choose the motivation behind the wellspring of the content. The reason might be of a type of gratefulness (positive) or study (negative). This paper offers a correlation between the outcomes accomplished by applying the calculation arrangement using various classifiers for instance K-nearest neighbor and multinomial naive Bayes. These techniques are utilized to assess a significant assessment with either a positive remark or negative remark. The gathered information considered on the grounds of the extremity film datasets and an association with the results accessible proof has been created for a careful assessment. This paper investigates the word level count vectorizer and term frequency inverse document frequency (TF-IDF) influence on film sentiment analysis. We concluded that multinomial naive Bayes (MNB) classier generate more accurate result using TF-IDF vectorizer compared to CountVectorizer, K-nearest-neighbors (KNN) classifier has the same accuracy result in case of TF-IDF and CountVectorizer.
Publication link
https://ijece.iaescore.com/index.php/IJECE/article/download/24642/15441
URI
https://d8.irins.org/handle/IITG2025/25140
Subjects
Classifier | Features selection | Film | Gujarati | Precision | Sentimentality
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