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Bayesian Sentiment Analytics for Emerging Trends in Unstructured Data Streams
oleh: Najam Sahar, Muhammad Irshad, Muhammad Khan
| Format: | Article |
|---|---|
| Diterbitkan: | European Alliance for Innovation (EAI) 2019-07-01 |
Deskripsi
Today the computational study of people’s opinion expressed in free form written text is called the field of sentiment analysis and opinion mining. Various research areas such as Natural Language Processing, Data Mining, Text Mining lie in field of Sentiment Analysis and is also becoming major part of importance to organizations because of online commerce is included in their operational strategy. Due to excess of user’s comments, feedback on web there is a need to analyze the user generated text. This research focuses on aspect level sentiment analysis in which identification of aspects and their related sentimentsis being done. Opinion analysis helps to identify the polarity of the text and feature extraction. This study is being done to provide an effective and efficient framework to calculate the sentiments of written text by using Naïve Bayes approach. For sentiment analysis dataset of 1060 reviews of different restaurants from online website TripAdvisor.com is being used. Theoutcome achieved good accuracy 80.833 percent.