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The thesis explores the potential of user-generated content for predicting human-related events by analyzing the emotions and valences expressed within it. It provides a theoretical framework for sentiment detection and classification methods, categorizing empirical literature into three prediction subjects. A comprehensive analysis reveals significant differences in prediction accuracies based on data sources and methods, highlighting that fine-grained sentiments enhance prediction accuracy. The study also addresses the scarcity of empirical data on fine-grained sentiment approaches for evaluation.
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From Valence to Emotions, Robert Kohtes
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- Released
- 2013
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- (Paperback)
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