Optimizing predictive precision in imbalanced datasets for actionable revenue change prediction

European Journal of Operational Research(2020)

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摘要
•We consider a revenue change prediction problem.•We propose a framework that casts the problem as a classification one.•Our method maximizes prediction precision while minimizing sacrifice in accuracy.•Our method treats class imbalance that is typical in datasets of this problem.•We validate our method on real-world datasets and compare it with prior art methods.
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关键词
(D) Analytics,Revenue change prediction,Classification,Machine learning,Bayesian optimization,Imbalanced datasets
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