Feature Set Selection for Sentiment Analysis

Ganesh K. Shinde · International Journal for Research in Applied Science and Engineering Technology · 2021

Abstract: With proliferation of online blogging web sites, hundreds of thousands of text posts are generated. Using this rich information facilitate educated purchasing of objects, discovering and public developments involving more than a few merchandise in the market, discovering political inclination of societies previous to a country wide election, and many others. Considering that the final decade, Sentiment evaluation has received increased attention from many researchers as a procedure for addressing subject matters, such as the a fore mentioned ones. This paper specializes in Sentiment evaluation and use of sentiment Features. In this paper we have created the feature set and given input to svm and result verified for sentiment. Keywords: Sentiment analysis, support vector machine, maximum entropy, with features, without features, artificial intelligence.

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