Joint models for longitudinal and time-to-event data

with applications in R

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Joint models for longitudinal and time-to-eve ...
Dimitris Rizopoulos
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Last edited by MARC Bot
December 15, 2022 | History

Joint models for longitudinal and time-to-event data

with applications in R

  • 0 Ratings
  • 1 Want to read
  • 1 Currently reading
  • 0 Have read

"Preface Joint models for longitudinal and time-to-event data have become a valuable tool in the analysis of follow-up data. These models are applicable mainly in two settings: First, when focus is in the survival outcome and we wish to account for the effect of an endogenous time-dependent covariate measured with error, and second, when focus is in the longitudinal outcome and we wish to correct for nonrandom dropout. Due to their capability to provide valid inferences in settings where simpler statistical tools fail to do so, and their wide range of applications, the last 25 years have seen many advances in the joint modeling field. Even though interest and developments in joint models have been widespread, information about them has been equally scattered in articles, presenting recent advances in the field, and in book chapters in a few texts dedicated either to longitudinal or survival data analysis. However, no single monograph or text dedicated to this type of models seems to be available. The purpose in writing this book, therefore, is to provide an overview of the theory and application of joint models for longitudinal and survival data. In the literature two main frameworks have been proposed, namely the random effects joint model that uses latent variables to capture the associations between the two outcomes (Tsiatis and Davidian, 2004), and the marginal structural joint models based on G estimators (Robins et al., 1999, 2000). In this book we focus in the former. Both subfields of joint modeling, i.e., handling of endogenous time-varying covariates and nonrandom dropout, are equally covered and presented in real datasets"--

Publish Date
Publisher
CRC Press
Language
English

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Edition Availability
Cover of: Joint Models for Longitudinal and Time-To-Event Data
Joint Models for Longitudinal and Time-To-Event Data: With Applications in R
2023, Taylor & Francis Group
in English
Cover of: Joint Models for Longitudinal and Time-To-Event Data
Joint Models for Longitudinal and Time-To-Event Data: With Applications in R
2012, Taylor & Francis Group
in English
Cover of: Joint Models for Longitudinal and Time-To-Event Data
Joint Models for Longitudinal and Time-To-Event Data: with Applications in R
2012, Taylor & Francis Group
in English
Cover of: Joint Models for Longitudinal and Time-To-Event Data
Joint Models for Longitudinal and Time-To-Event Data: With Applications in R
2012, Taylor & Francis Group
in English
Cover of: Joint models for longitudinal and time-to-event data

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Book Details


Published in

Boca Raton

Edition Notes

Includes bibliographical references and index.

Series
Chapman & Hall/CRC biostatistics series -- 6

Classifications

Dewey Decimal Class
518
Library of Congress
QA279 .R59 2012, QA279.R59 2012

The Physical Object

Pagination
p. cm.

ID Numbers

Open Library
OL25330790M
ISBN 13
9781439872864
LCCN
2012014570
OCLC/WorldCat
698322708, 796662478

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December 15, 2022 Edited by MARC Bot import existing book
December 13, 2022 Edited by MARC Bot import existing book
September 17, 2021 Edited by ImportBot import existing book
October 17, 2020 Edited by MARC Bot import existing book
May 30, 2012 Created by LC Bot import new book