Isotone additive latent variable models

被引:0
作者
Sylvain Sardy
Maria-Pia Victoria-Feser
机构
[1] University of Geneva,
来源
Statistics and Computing | 2012年 / 22卷
关键词
Factor analysis; Principal component analysis; Nonparametric regression; Bartlett’s factor scores; Dimension reduction;
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学科分类号
摘要
For manifest variables with additive noise and for a given number of latent variables with an assumed distribution, we propose to nonparametrically estimate the association between latent and manifest variables. Our estimation is a two step procedure: first it employs standard factor analysis to estimate the latent variables as theoretical quantiles of the assumed distribution; second, it employs the additive models’ backfitting procedure to estimate the monotone nonlinear associations between latent and manifest variables. The estimated fit may suggest a different latent distribution or point to nonlinear associations. We show on simulated data how, based on mean squared errors, the nonparametric estimation improves on factor analysis. We then employ the new estimator on real data to illustrate its use for exploratory data analysis.
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页码:647 / 659
页数:12
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