Markov-switching model selection using Kullback-Leibler divergence

被引:77
作者
Smith, Aaron
Naik, Prasad A.
Tsai, Chih-Ling
机构
[1] Univ Calif Davis, Dept Agr & Resource Econ, Davis, CA 95616 USA
[2] Univ Calif Davis, Grad Sch Management, Davis, CA 95616 USA
[3] Peking Univ, Guanghua Sch Management, Beijing, Peoples R China
关键词
advertising effectiveness; business cycles; EM algorithm; hidden Markov models; information criterion; Markov-switching regression;
D O I
10.1016/j.jeconom.2005.07.005
中图分类号
F [经济];
学科分类号
02 ;
摘要
In Markov-switching regression models, we use Kullback-Leibler (KL) divergence between the true and candidate models to select the number of states and variables simultaneously. Specifically, we derive a new information criterion, Markov switching criterion (MSC), which is an estimate of KL divergence. MSC imposes an appropriate penalty to mitigate the over-retention of states in the Markov chain, and it performs well in Monte Carlo studies with single and multiple states, small and large samples, and low and high noise. We illustrate the usefulness of MSC via applications to the U.S. business cycle and to media advertising. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:553 / 577
页数:25
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