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Sentiment Analysis of Covid Vaccine Tweet with Vader, and Implementation of Different Machine Learning Models

Publication Type : Conference Paper

Source : International Conference on Computing Communication and Networking Technologies

Url : https://ieeexplore.ieee.org/abstract/document/10308224?casa_token=BuX0Lc5zzkYAAAAA:rlZ6s3tcGEz2eonitz34YnOsvQgJxwkLuebXTq1s02zPNbyrMSxwOsBwQWfnVOETFXo1AFjmNME9vg

Campus : Kochi

School : School of Arts and Sciences

Year : 2023

Abstract : Sentiment analysis, referred to as opinion mining, is a natural language processing technique that indicates a document's emotional tone. Since Covid-19 epidemic, there has been a lot of talk on social media and news sites about the necessity for a COVID-19 vaccine. However, the general public has expressed their concerns of vaccines security and efficacy on social media websites like Twitter. Using the Twitter API, these tweets are gathered from Twitter. For this research, we are using the Natural Language Toolkit for analyzing opinions expressed in tweets associated to covid vaccine utilizing the vocabulary- and rule-based sentiment analysis tool VADER, which has been specially designed to analyze sentiments from social media. The dataset is converted into TF-IDF vectorization and the model was trained using different classifiers. We compared different ML applications and got our highest accuracy with Linear SVC with L1-based feature selection.

Cite this Research Publication : Sentiment Analysis of Covid Vaccine Tweet with Vader, and Implementation of Different Machine Learning Models.Stanley, M., Aiswarya, K.R., Deepa, G. 2023 14th International Conference on Computing Communication and Networking Technologies, ICCCNT 2023, 2023

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