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- W4286593305 abstract "The rapid growth of internet facilities has increased the comments, posts, blogs, feedback, etc., on a large scale on social networking sites. These social media data are available in an unstructured form, which includes images, text, and videos. The processing of these data is difficult, but some sentiment analysis, information retrieval, and recommender systems are used to process these unstructured data. To extract the opinion and sentiment of internet users from their written social media text, a sentiment analysis system is required to develop, which can work on both monolingual and bilingual phonetic text. Therefore, a sentiment analysis (SA) system is developed, which performs well on different domain datasets. The system performance is tested on four different datasets and achieved better accuracy of 3% on social media datasets, 1.5% on movie reviews, 1.35% on Amazon product reviews, and 4.56% on large Amazon product reviews than the state-of-art techniques. Also, the stemmer (StemVerb) for verbs of the English language is proposed, which improves the SA system's performance." @default.
- W4286593305 created "2022-07-22" @default.
- W4286593305 creator A5019480822 @default.
- W4286593305 creator A5022665831 @default.
- W4286593305 date "2022-06-10" @default.
- W4286593305 modified "2023-09-26" @default.
- W4286593305 title "Classification of Code-Mixed Bilingual Phonetic Text Using Sentiment Analysis" @default.
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- W4286593305 doi "https://doi.org/10.4018/978-1-6684-6303-1.ch033" @default.
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