Random Effect and Latent Variable Model Selection
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Random Effect and Latent Variable Model Selection

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Random effects and latent variable models are broadly used in analyses of multivariate data. These models can accommodate high dimensional data having a variety of measurement scales. Methods for model selection and comparison are needed in conducting hypothesis tests and in building sparse predictive models. However, classical methods for model comparison are not well jus...more
Paperback, 184 pages
Published August 12th 2008 by Springer
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