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Consistency of minimizing a penalized density power divergence estimator for mixing distribution
Authors:Taewook Lee  Sangyeol Lee
Affiliation:(1) Department of Statistics, Seoul National University, Seoul, 151-742, South Korea
Abstract:
In this paper, we study the MDPDE (minimizing a density power divergence estimator), proposed by Basu et al. (Biometrika 85:549–559, 1998), for mixing distributions whose component densities are members of some known parametric family. As with the ordinary MDPDE, we also consider a penalized version of the estimator, and show that they are consistent in the sense of weak convergence. A simulation result is provided to illustrate the robustness. Finally, we apply the penalized method to analyzing the red blood cell SLC data presented in Roeder (J Am Stat Assoc 89:487–495, 1994). This research was supported (in part) by KOSEF through Statistical Research Center for Complex Systems at Seoul National University.
Keywords:Penalized estimation  Density power divergence  Mixing distribution  Finite mixture model
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