Publication | Closed Access
Improving Movie Gross Prediction through News Analysis
113
Citations
12
References
2009
Year
Unknown Venue
Ranking AlgorithmEngineeringMachine LearningLearning To RankVideo RetrievalJournalismText MiningNatural Language ProcessingInformation RetrievalData ScienceData MiningQuantitative News DataNews AnalyticsNews SemanticsInternet Movie DatabaseContent AnalysisComputational JournalismPredictive AnalyticsKnowledge DiscoveryArtsImdb DataMovie Gross Prediction
Traditional movie gross predictions are based on numerical and categorical movie data from The Internet Movie Database (IMDB). In this paper, we use the quantitative news data generated by Lydia, our system for large-scale news analysis, to help people to predict movie grosses. By analyzing two different models (regression and k-nearest neighbor models), we find models using only news data can achieve similar performance to those using IMDB data. Moreover, we can achieve better performance by using the combination of IMDB data and news data. Further, the improvement is statistically significant.
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