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Nonparametric Models for Longitudinal Data

Download or Read eBook Nonparametric Models for Longitudinal Data PDF written by Colin O. Wu and published by CRC Press. This book was released on 2018-05-23 with total page 512 pages. Available in PDF, EPUB and Kindle.
Nonparametric Models for Longitudinal Data
Author :
Publisher : CRC Press
Total Pages : 512
Release :
ISBN-10 : 9780429939075
ISBN-13 : 0429939078
Rating : 4/5 (75 Downloads)

Book Synopsis Nonparametric Models for Longitudinal Data by : Colin O. Wu

Book excerpt: Nonparametric Models for Longitudinal Data with Implementations in R presents a comprehensive summary of major advances in nonparametric models and smoothing methods with longitudinal data. It covers methods, theories, and applications that are particularly useful for biomedical studies in the era of big data and precision medicine. It also provides flexible tools to describe the temporal trends, covariate effects and correlation structures of repeated measurements in longitudinal data. This book is intended for graduate students in statistics, data scientists and statisticians in biomedical sciences and public health. As experts in this area, the authors present extensive materials that are balanced between theoretical and practical topics. The statistical applications in real-life examples lead into meaningful interpretations and inferences. Features: • Provides an overview of parametric and semiparametric methods • Shows smoothing methods for unstructured nonparametric models • Covers structured nonparametric models with time-varying coefficients • Discusses nonparametric shared-parameter and mixed-effects models • Presents nonparametric models for conditional distributions and functionals • Illustrates implementations using R software packages • Includes datasets and code in the authors’ website • Contains asymptotic results and theoretical derivations


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