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Predicting Insurance Losses Under Cross-Classification: A Comparison of Alternative Approaches
Authors:Herbert I. Weisberg  Thomas J. Tomberlin  Sangit Chatterjee
Affiliation:1. Consulting Statisticians, Inc. , Wellesley Hills , MA , 02181;2. Department of Statistics , Baruch College , New York , NY , 10010;3. College of Business, Northeastern University , Boston , MA , 02115
Abstract:Various mathematical and statistical models for estimation of automobile insurance pricing are reviewed. The methods are compared on their predictive ability based on two sets of automobile insurance data for two different states collected over two different periods. The issue of model complexity versus data availability is resolved through a comparison of the accuracy of prediction. The models reviewed range from the use of simple cell means to various multiplicative-additive schemes to the empirical-Bayes approach. The empirical-Bayes approach, with prediction based on both model-based and individual cell estimates, seems to yield the best forecast.
Keywords:Additive-multiplicative-hybrid models  Automobile insurance  Empirical Bayes  Predictive accuracy
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