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The first edition of Analysis for Longitudinal Data has become a classic. Describing the statistical models and methods for the analysis of longitudinal data, it covers both the underlying statistical theory of each method, and its application to a range of examples from the agricultural and biomedical sciences. The main topics discussed are design issues, exploratory methods of analysis, linear models for continuous data, general linear models for discrete data, and models and methods for handling data and missing values. Under each heading, worked examples are presented in parallel with the methodological development, and sufficient detail is given to enable the reader to reproduce the author's results using the data-sets as an appendix. This second edition, published for the first time in paperback, provides a thorough and expanded revision of this important text. It includes two new chapters; the first discusses fully parametric models for discrete repeated measures data, and the second explores statistical models for time-dependent predictors.
This text investigates the statistical models and methodologies required to analyze longitudinal data, where observations are collected repeatedly over time from the same subjects. The authors, all distinguished experts in biostatistics and statistical science, provide a rigorous framework that bridges theoretical development with practical application. By integrating mathematical theory with real-world examples from agriculture and biomedicine, the book establishes a comprehensive approach to handling complex data structures, including missing values and time-dependent predictors.
What You Will Find
Experts and academics recognize this work as a foundational text for students and researchers in the field of statistics. Readers frequently note the technical density of the prose, which requires a strong background in statistical theory to fully utilize the provided methodologies.
Page Count:
379
Publication Date:
2013-05-08
Publisher:
Oxford University Press
ISBN-10:
0199676755
ISBN-13:
9780199676750
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