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A model-averaging treatment of multiple instruments in Poisson models with errors
Authors:Xiaomeng Zhang  Xinyu Zhang  Yanyuan Ma
Institution:1. Academy of Mathematics and Systems Science, Chinese Academy of Sciences, Beijing, 100190 China;2. Academy of Mathematics and Systems Science, Chinese Academy of Sciences, Beijing, 100190 China

Beijing Academy of Artificial Intelligence, Beijing, 100084 China;3. Department of Statistics, Pennsylvania State University, PA, 16802 U.S.A

Abstract:We analyze Poisson regression when covariates contain measurement errors and when multiple potential instrumental variables are available. Without empirical knowledge to select the most suitable variable as an instrument, we propose a novel model-averaging approach to resolve this issue. We prescribe an implementation and establish its optimality in terms of minimizing prediction risk. We further show that, as long as one model is correctly specified among all potential instrumental variable models, our method will lead to consistent prediction. The performance of our method is illustrated through simulations and a movie sales example.
Keywords:Count response  error in variable  instrumental variable  measurement error  minimum risk  model averaging  Poisson regression  prediction optimality
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