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Nonparametric Bayesian data analysis

delete2004-02-01
delete336
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P
Peter Müller
F
Fernando A. Quintana
DOI:10.1214/088342304000000017delete
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摘要

摘要

En 中文
We review the current state of nonparametric Bayesian inference. The discussion follows a list of important statistical inference problems, including density estimation, regression, survival analysis, hierarchical models and model validation. For each inference problem we review relevant nonparametric Bayesian models and approaches including Dirichlet process (DP) models and variations, Polya trees, wavelet based models, neural network models, spline regression, CART, dependent DP models and model validation with DP and Polya tree extensions of parametric models.
Keyword:
Dirichlet process
regression
density estimation
survival analysis
Polya tree
random probability model (RPM)
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Statistical Science 封面图
Statistical Science
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