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OALib Journal期刊
ISSN: 2333-9721
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Statistical models: Conventional, penalized and hierarchical likelihood

Keywords: Bayes estimators , Cross-validation , h-likelihood , Incomplete data , Kullback-Leibler risk , Likelihood , Penalized likelihood , Sieves , Statistical models

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Abstract:

We give an overview of statistical models and likelihood, together with two of its variants: penalized and hierarchical likelihood. The Kullback-Leibler divergence is referred to repeatedly in the literature, for defining the misspecification risk of a model and for grounding the likelihood and the likelihood cross-validation, which can be used for choosing weights in penalized likelihood. Families of penalized likelihood and particular sieves estimators are shown to be equivalent. The similarity of these likelihoods with a posteriori distributions in a Bayesian approach is considered.

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