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The social media sentiment analysis framework: deep learning for sentiment analysis on social media

Publication Type : Journal Article

Publisher : International Journal of Electrical and Computer Engineering (IJECE)

Source : International Journal of Electrical and Computer Engineering (IJECE), 14(3), 1-1x.

Url : https://www.researchgate.net/publication/381071901_The_social_media_sentiment_analysis_framework_deep_learning_for_sentiment_analysis_on_social_media

Campus : Chennai

School : School of Engineering

Department : Electronics and Communication

Year : 2024

Abstract : Researching public opinion can help us learn important facts. People may quickly and easily express their thoughts and feelings on any subject using social media, which creates a deluge of unorganized data. Sentiment analysis on social media platforms like Twitter and Facebook has developed into a potent tool for gathering insights into users' perspectives. However, difficulties in interpreting natural language limit the effectiveness and precision of sentiment analysis. This research focuses on developing a social media sentiment analysis (SMSA) framework, incorporating a custom-built emotion thesaurus to enhance the precision of sentiment analysis. It delves into the efficacy of various deep learning algorithms, under different parameter calibrations, for sentiment extraction from social media. The study distinguishes itself by its unique approach towards sentiment dictionary creation and its application to deep learning models. It contributes new insights into sentiment analysis, particularly in social media contexts, showcasing notable advancements over previous methodologies. The results demonstrate improved accuracy and deeper understanding of social media sentiment, opening avenues for future research and applications in diverse fields.

Cite this Research Publication : Rangarajan, P. K., Gurusamy, B. M., Muthurasu, G., Mohan, R., Pallavi,G.,Vijayakumar, S., & Altalbe, A. (2024). The social media sentiment analysis framework: deep learning for sentiment analysis on social media. International Journal of Electrical and Computer Engineering (IJECE), 14(3), 1-1x

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