Comparative Experiments on Sentiment Classification for Online Product ReviewsOpen Website

2006 (modified: 16 Jul 2019)AAAI 2006Readers: Everyone
Abstract: Evaluating text fragments for positive and negative subjective expressions and their strength can be important in applications such as single- or multi- document summarization, document ranking, data mining, etc. This paper looks at a simplified version of the problem: classifying online product reviews into positive and negative classes. We discuss a series of experiments with different machine learning algorithms in order to experimentally evaluate various trade-offs, using approximately 100K product reviews from the web.
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