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Linear models
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ISBN: 0471184993 0471769509 9780471769507 Year: 1971 Publisher: New York, NY : John Wiley,


Book
Matrix algebra for the biological sciences (including applications in statistics).
Author:
ISBN: 0471769304 9780471769309 Year: 1966 Publisher: New York (N.Y.) Wiley


Book
Matrix algebra for the biological sciences: including applications in statistics
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Year: 1966 Publisher: New York (N.Y.) Wiley

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Matrix algebra for the biological sciences : including applications in statistics
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Year: 1966 Publisher: New York : Wiley,

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Matix Algebra for the biological sciences
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Year: 1966 Publisher: London : Wiley,

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Book
Matrix algebra for the biological sciences (including applications in statistics)
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Year: 1967 Publisher: New York (N.Y.): Wiley

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Linear models
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Year: 1971 Publisher: New York, London, Toronto Wiley

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Matrix algebra for the biological sciences (including applications in statistics)
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Year: 1966 Publisher: New York : J. Wiley,

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Generalized, linear, and mixed models
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ISBN: 047119364X 9780471193647 Year: 2001 Publisher: Wiley-Interscience,

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Wiley Series in Probability and StatisticsA modern perspective on mixed modelsThe availability of powerful computing methods in recent decades has thrust linear and nonlinear mixed models into the mainstream of statistical application. This volume offers a modern perspective on generalized, linear, and mixed models, presenting a unified and accessible treatment of the newest statistical methods for analyzing correlated, nonnormally distributed data.As a follow-up to Searle's classic, Linear Models, and Variance Components by Searle, Casella, and McCulloch, this new work progresses from the basic one-way classification to generalized linear mixed models. A variety of statistical methods are explained and illustrated, with an emphasis on maximum likelihood and restricted maximum likelihood. An invaluable resource for applied statisticians and industrial practitioners, as well as students interested in the latest results, Generalized, Linear, and Mixed Models features:* A review of the basics of linear models and linear mixed models* Descriptions of models for nonnormal data, including generalized linear and nonlinear models* Analysis and illustration of techniques for a variety of real data sets* Information on the accommodation of longitudinal data using these models* Coverage of the prediction of realized values of random effects* A discussion of the impact of computing issues on mixed models

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