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Sentiment Analysis on User Reaction for Online Food Delivery Services Using Bert Model

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dc.contributor.author Biswas, Jahanur
dc.contributor.author Rahman, Md. Mahbubur
dc.contributor.author Biswas, Al Amin
dc.contributor.author Khan, Md. Akib Zabed
dc.contributor.author Rajbongshi, Aditya
dc.contributor.author Niloy, Hasnaine Amin
dc.date.accessioned 2022-04-16T09:23:05Z
dc.date.available 2022-04-16T09:23:05Z
dc.date.issued 2021-06-03
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/7857
dc.description.abstract In this era of the information age, a major number of people spend their time on social networking sites. Among different social networking sites, Facebook is one of the most popular due to its accessibility and many other reasons. Nowadays, people use Facebook not only for general purposes but also for business purposes as it provides free opportunity to promote products and services. Users of the products or services share their opinion and feedback on the Facebook page. The amount of the users’ data regarding the opinion and feedback is huge. This is very essential to analyze this vast amount of data and extract knowledge from it. For business owners, it is important to consider their clients’ sentiments as proper analysis of customers’ feedback helps them to take better future planning. In this research work, we proposed a noble strategy to predict users’ sentiments from their Facebook comments on online food delivery services. To accomplish this research work, we have mainly considered the BERT machine learning technique. To understand the performance of the BERT in this context, we have applied Char-CNN, Graph-CNN, LSTM, and Bi-LSTM machine learning techniques also. Lastly, the obtained result of the BERT is compared with other four applied techniques in terms of performance evaluation techniques. It is found that BERT outperforms the other applied techniques with achieving the accuracy of 92.86%. en_US
dc.language.iso en_US en_US
dc.publisher 2021 7th International Conference on Advanced Computing and Communication Systems (ICACCS), IEEE en_US
dc.subject Prediction en_US
dc.subject BERT en_US
dc.subject Char-CNN en_US
dc.subject Graph-CNN en_US
dc.subject LSTM en_US
dc.subject Bi-LSTM en_US
dc.title Sentiment Analysis on User Reaction for Online Food Delivery Services Using Bert Model en_US
dc.type Article en_US


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