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独立和马尔可夫相关混合模型的最大惩罚似然估计

Maximum-penalized-likelihood estimation for independent and Markov-dependent mixture models.

作者信息

Leroux B G, Puterman M L

机构信息

Health and Welfare Canada, Environmental Health Centre, Ottawa, Ontario.

出版信息

Biometrics. 1992 Jun;48(2):545-58.

PMID:1637977
Abstract

This paper concerns the use and implementation of maximum-penalized-likelihood procedures for choosing the number of mixing components and estimating the parameters in independent and Markov-dependent mixture models. Computation of the estimates is achieved via algorithms for the automatic generation of starting values for the EM algorithm. Computation of the information matrix is also discussed. Poisson mixture models are applied to a sequence of counts of movements by a fetal lamb in utero obtained by ultrasound. The resulting estimates are seen to provide plausible mechanisms for the physiological process.

摘要

本文关注用于选择混合成分数量以及估计独立和马尔可夫相关混合模型中参数的最大惩罚似然程序的使用与实施。估计值的计算通过为期望最大化(EM)算法自动生成初始值的算法来实现。同时也讨论了信息矩阵的计算。泊松混合模型被应用于通过超声获得的子宫内胎羊运动计数序列。结果表明,所得估计值为生理过程提供了合理的机制。

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