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Longitudinal studies often incur several problems that challenge standard statistical methods for data analysis. These problems include non-ignorable missing data in longitudinal measurements of one or more response variables, informative observation times of longitudinal data, and survival analysis with intermittently measured time-dependent covariates that are subject to measurement error and/or substantial biological variation. Joint modeling of longitudinal and time-to-event data has emerged as a novel approach to handle these issues. Joint Modeling of Longitudinal and Time-to-Event Data provides a systematic introduction and review of state-of-the-art statistical methodology in this active research field. The methods are illustrated by real data examples from a wide range of clinical research topics. A collection of data sets and software for practical implementation of the joint modeling methodologies are available through the book website. This book serves as a reference book for scientific investigators who need to analyze longitudinal and/or survival data, as well as researchers developing methodology in this field. It may also be used as a textbook for a graduate level course in biostatistics or statistics.
This is a digital product.
Additional ISBNs
9781315374871, 9780367570576, 9781439807835, 9781315338125
Joint Modeling of Longitudinal and Time-to-Event Data 1st Edition is written by Robert Elashoff; Gang li; Ning Li and published by Chapman & Hall. The Digital and eTextbook ISBNs for Joint Modeling of Longitudinal and Time-to-Event Data are 9781315357188, 1315357186 and the print ISBNs are 9781439807828, 1439807825. Additional ISBNs for this eTextbook include 9781315374871, 9780367570576, 9781439807835, 9781315338125.
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