DIRICHLET PROCESS MIXTURE MODELS WITH MULTIPLE MODALITIES

被引:2
|
作者
Paisley, John [1 ]
Carin, Lawrence [1 ]
机构
[1] Duke Univ, Dept Elect & Comp Engn, Durham, NC 27708 USA
关键词
Dirichlet process; Bayesian hierarchical models; hidden Markov model; Gaussian mixture model; NONPARAMETRIC PROBLEMS; PRIORS;
D O I
10.1109/ICASSP.2009.4959908
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The Dirichlet process can be used as a nonparametric prior for an infinite-dimensional probability mass function on the parameter space of a mixture model. The set of parameters over which it is defined is generally used for a single, parametric distribution. We extend this idea to parameter spaces that characterize multiple distributions, or modalities. In this framework, observations containing multiple, incompatible pieces of information can be mixed upon, allowing for all information to inform the final clustering result. We provide a general MCMC sampling scheme and demonstrate this framework on a Gaussian-HMM mixture model applied to synthetic and Major League Baseball data.
引用
收藏
页码:1613 / 1616
页数:4
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