Topics in Modelling of Clustered Data
Editat de Marc Aerts, Geert Molenberghs, Louise M. Ryan, Helena Geysen Limba Engleză Paperback – 5 sep 2019
The authors motivate and illustrate all aspects of these models in a variety of real applications. They discuss several variations and extensions, including individual-level covariates and combined continuous and discrete outcomes. Flexible modelling with fractional and local polynomials, omnibus lack-of-fit tests, robustification against misspecification, exact, and bootstrap inferential procedures all receive extensive treatment. The applications discussed center primarily, but not exclusively, on developmental toxicity, which leads naturally to discussion of other methodologies, including risk assessment and dose-response modelling.
Clearly written, Topics in Modelling of Clustered Data offers a practical, easily accessible survey of important modelling issues. Overview models give structure to a multitude of approaches, figures help readers visualize model characteristics, and a generous use of examples illustrates all aspects of the modelling process.
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Specificații
ISBN-13: 9780367396107
ISBN-10: 0367396106
Pagini: 336
Dimensiuni: 152 x 229 x 18 mm
Greutate: 0.62 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
ISBN-10: 0367396106
Pagini: 336
Dimensiuni: 152 x 229 x 18 mm
Greutate: 0.62 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Public țintă
Professional Practice & DevelopmentCuprins
Issues in Modelling Clustered Data and Motivating Examples. Model Families and Estimating Methods. Pseudo-Likelihood Estimation. Pseudo-Likelihood Inference. Flexible Polynomial Models. Assessing the Fit of a Model. Quantitative Risk Assessment. Model Misspecification. Exact Dose-Response Inference. Individual Level Covariates. Combined Continuous and Discrete Outcomes. Multilevel Modeling of Complex Survey Data.
Notă biografică
Marc Aerts, Helena Geys, Geert Molenberghs, Louise M. Ryan
Descriere
Compiled from the contributions of leading specialists, this book describes the tools and techniques for modelling the clustered data often encountered in medical, biological, environmental, and social science studies. It provides a comprehensive overview of marginal, condition, and random effects models using the likelihood, pseudo-likelihood, and generalized estimating equations methods. Focusing on binary data, the authors motivate and illustrate all aspects of these models in a variety of real applications, particularly developmental toxicity studies. They also discuss several variations and extensions. Clearly written, this treatment offers a practical, easily accessible survey of important modelling issues.