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E-Book

Fitzmaurice / Davidian / Verbeke Longitudinal Data Analysis


Erscheinungsjahr 2008
ISBN: 978-1-4200-1157-9
Verlag: Taylor & Francis
Format: PDF
Kopierschutz: Adobe DRM (»Systemvoraussetzungen)

E-Book, Englisch, 632 Seiten

Reihe: Chapman & Hall/CRC Handbooks of Modern Statistical Methods

ISBN: 978-1-4200-1157-9
Verlag: Taylor & Francis
Format: PDF
Kopierschutz: Adobe DRM (»Systemvoraussetzungen)



Although many books currently available describe statistical models and methods for analyzing longitudinal data, they do not highlight connections between various research threads in the statistical literature. Responding to this void, Longitudinal Data Analysis provides a clear, comprehensive, and unified overview of state-of-the-art theory and applications. It also focuses on the assorted challenges that arise in analyzing longitudinal data. After discussing historical aspects, leading researchers explore four broad themes: parametric modeling, nonparametric and semiparametric methods, joint models, and incomplete data. Each of these sections begins with an introductory chapter that provides useful background material and a broad outline to set the stage for subsequent chapters. Rather than focus on a narrowly defined topic, chapters integrate important research discussions from the statistical literature. They seamlessly blend theory with applications and include examples and case studies from various disciplines. Destined to become a landmark publication in the field, this carefully edited collection emphasizes statistical models and methods likely to endure in the future. Whether involved in the development of statistical methodology or the analysis of longitudinal data, readers will gain new perspectives on the field.

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Zielgruppe


Researchers and graduate students in statistics and biostatistics; applied statisticians; quantitative researchers.

Weitere Infos & Material


Introduction and Historical Overview

Advances in Longitudinal Data Analysis: A Historical Perspective

Garrett Fitzmaurice and Geert Molenberghs

Parametric Modeling of Longitudinal Data

Parametric Modeling of Longitudinal Data: Introduction and Overview

Garrett Fitzmaurice and Geert Verbeke

Generalized Estimating Equations for Longitudinal Data Analysis

Stuart Lipsitz and Garrett Fitzmaurice

Generalized Linear Mixed-Effects Models

Sophia Rabe-Hesketh and Anders Skrondal

Nonlinear Mixed-Effects Models

Marie Davidian

Growth Mixture Modeling: Analysis with Non-Gaussian Random Effects

Bengt Muthén and Tihomir Asparouhov

Targets of Inference in Hierarchical Models for Longitudinal Data

Stephen W. Raudenbush

Nonparametric and Semiparametric Methods for Longitudinal Data

Nonparametric and Semiparametric Regression Methods: Introduction and Overview

Xihong Lin and Raymond J. Carroll

Nonparametric and Semiparametric Regression Methods for Longitudinal Data

Xihong Lin and Raymond J. Carroll

Functional Modeling of Longitudinal Data

Hans-Georg Müller

Smoothing Spline Models for Longitudinal Data

S.J. Welham

Penalized Spline Models for Longitudinal Data

Babette A. Brumback, Lyndia C. Brumback, and Mary J. Lindstrom

Joint Models for Longitudinal Data

Joint Models for Longitudinal Data: Introduction and Overview

Geert Verbeke and Marie Davidian

Joint Models for Continuous and Discrete Longitudinal Data

Christel Faes, Helena Geys, and Paul Catalano

Random-Effects Models for Joint Analysis of Repeated-Measurement and Time-to-Event Outcomes

Peter Diggle, Robin Henderson, and Peter Philipson

Joint Models for High-Dimensional Longitudinal Data

Steffen Fieuws and Geert Verbeke

Incomplete Data

Incomplete Data: Introduction and Overview

Geert Molenberghs and Garrett Fitzmaurice

Selection and Pattern-Mixture Models

Roderick Little

Shared-Parameter Models

Paul S. Albert and Dean A. Follmann

Inverse Probability Weighted Methods

Andrea Rotnitzky

Multiple Imputation

Michael G. Kenward and James R. Carpenter

Sensitivity Analysis for Incomplete Data

Geert Molenberghs, Geert Verbeke, and Michael G. Kenward

Estimation of the Causal Effects of Time-Varying Exposures

James M. Robins and Miguel A. Hernán

Index

About the Editors

Garrett Fitzmaurice is Associate Professor of Psychiatry at the Harvard Medical School, Associate Professor of Biostatistics at the Harvard School of Public Health, and Foreign Adjunct Professor of Biostatistics at the Karolinska Institute in Sweden. He is a fellow of the American Statistical Association, a member of the International Statistical Institute, and a recipient of the American Statistical Association’s Excellence in Continuing Education Award.

Marie Davidian is William Neal Reynolds Distinguished Professor of Statistics at North Carolina State University and Adjunct Professor of Biostatistics and Bioinformatics at Duke University. She is a fellow of the American Statistical Association, the Institute of Mathematical Statistics, and the American Association for the Advancement of Science. Dr. Davidian is also a member of the International Statistical Institute and executive editor of Biometrics.

Geert Verbeke is Professor of Biostatistics in the Biostatistical Centre at the Catholic University of Leuven in Belgium. He is a past president of the Belgian Region of the International Biometric Society, joint editor of the Journal of the Royal Statistical Society, Series A, and an international representative on the board of directors and a fellow of the American Statistical Association. Jointly with Geert Molenberghs, Dr. Verbeke twice received the American Statistical Association’s Excellence in Continuing Education Award.

Geert Molenberghs is Professor of Biostatistics in the Center for Statistics at Hasselt University and in the Biostatistical Centre at the Catholic University of Leuven in Belgium. He is a fellow of the American Statistical Association, a member of the International Statistical Institute, a recipient of the Guy Medal in Bronze from the Royal Statistical Society, and coeditor of Biometrics. Together with Geert Verbeke, Dr. Molenberghs twice received the American Statistical Association’s Excellence in Continuing Education Award.



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