Extension of model-based classification for binary data when training and test populations differ

被引:4
作者
Jacques, J. [1 ]
Biernacki, C. [1 ]
机构
[1] Univ Lille 1, CNRS, UMR 8524, Lab Paul Painleve, F-59655 Villeneuve Dascq, France
关键词
Biological application; discriminant analysis; EM algorithm; latent class model; Stochastic link; GROUPED CONTINUOUS MODEL; GENERALIZED DISCRIMINANT; LIKELIHOOD;
D O I
10.1080/02664760902889957
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
Standard discriminant analysis supposes that both the training sample and the test sample are derived from the same population. When these samples arise from populations differing in their descriptive parameters, a generalization of discriminant analysis consists of adapting the classification rule related to the training population to another rule related to the test population, by estimating a link map between both populations. This paper extends an existing work in the multinormal context to the case of binary data. In order to solve the problem of defining a link map between the two binary populations, it is assumed that the binary data result from the discretization of latent Gaussian data. An estimation method and a robustness study are presented, and two applications in a biological context illustrate this work.
引用
收藏
页码:749 / 766
页数:18
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