JOURNAL ARTICLE

Sentiment Analysis of Mobile datasets using Naïve Bayes Algorithm

Smita BhanapSeema Kawthekar

Year: 2018 Journal:   International Journal of Advanced Research in Computer Science Vol: 9 (2)Pages: 785-787   Publisher: International Journal of Advanced Research in Computer Science

Abstract

Sentiment Analysis is one of the pursued field of Natural Language Processing (NLP). It is an intellectual process of extracting user’s feelings and emotions. The evolution of Internet has driven massive amount of personalized reviews for various related information on the Web specially twitter. These reviews are beneficial for business persons for understanding customer interest, taking better decisions and planning processes. User sentiment refers to the emotions expressed by them through the text reviews. These sentiments can be positive, negative or neutral. The study explores user sentiments and expresses them in terms of user sentiment polarity. Sentiment Analysis poses as a powerful tool for users to extract the needful information, as well as to aggregate the collective sentiments of the reviews. In this paper we present, a lexicon-based approach for sentiment analysis on Twitter. We have used Naive Bayes algorithm to find sentiment polarities of words in tweeter datasets of some mobile brands. Our approach allows for the detection of sentiment at tweet-level. We evaluate our approach on various mobile brands datasets resulting into accuracy for sentiment polarity classification. We compare various parameters precision, F measure, recall help to improve accuracy.

Keywords:
Sentiment analysis Computer science Naive Bayes classifier Lexicon Polarity (international relations) Field (mathematics) Artificial intelligence Process (computing) Machine learning Natural language processing Information retrieval Data mining Support vector machine

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Topics

Sentiment Analysis and Opinion Mining
Physical Sciences →  Computer Science →  Artificial Intelligence
Spam and Phishing Detection
Physical Sciences →  Computer Science →  Information Systems
Advanced Text Analysis Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
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