Bayesian Methods for Repeated Measures

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A01=Lyle D. Broemeling
advanced biostatistics
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Age Group_Uncategorized
analysis
analysis of repeated measures
Author_Lyle D. Broemeling
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Bayesian Analysis
Bayesian inferential methods
Bayesian regression techniques
Bayesian repeated measures techniques
biostatistics
bugs
BUGS CODE
Category1=Non-Fiction
Category=PBT
code
Compound Symmetry
COP=United States
Cov Cov Cov
covariance structure estimation
credible
Credible Interval
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DIC ?m
DIC Ρm
distribution
distributions
eq_isMigrated=2
eq_nobargain
error
Gibbs Sequences
hierarchical models
Initial Values List
interval
Language_English
linear models for repeated measures studies
longitudinal data analysis
Lowess Curves
MCMC Simulation
Missing Data
Missing Values
mixed effects models
Multiple Linear Regression
PA=Available
Plasma Concentration
posterior
Posterior Analysis
Posterior Distribution
Posterior Median
Precision Matrix
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prior
PS=Active
Random Effects Bi
Repeated Measures
Repeated Measures Study
Scatter Plot
SD Error
softlaunch
statistical modeling
Unstructured Covariance Matrix
Var Var Var Var Var
WinBUGS

Product details

  • ISBN 9781482248197
  • Weight: 994g
  • Dimensions: 156 x 234mm
  • Publication Date: 04 Aug 2015
  • Publisher: Taylor & Francis Inc
  • Publication City/Country: US
  • Product Form: Hardback
  • Language: English
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Analyze Repeated Measures Studies Using Bayesian Techniques

Going beyond standard non-Bayesian books, Bayesian Methods for Repeated Measures presents the main ideas for the analysis of repeated measures and associated designs from a Bayesian viewpoint. It describes many inferential methods for analyzing repeated measures in various scientific areas, especially biostatistics.

The author takes a practical approach to the analysis of repeated measures. He bases all the computing and analysis on the WinBUGS package, which provides readers with a platform that efficiently uses prior information. The book includes the WinBUGS code needed to implement posterior analysis and offers the code for download online.

Accessible to both graduate students in statistics and consulting statisticians, the book introduces Bayesian regression techniques, preliminary concepts and techniques fundamental to the analysis of repeated measures, and the most important topic for repeated measures studies: linear models. It presents an in-depth explanation of estimating the mean profile for repeated measures studies, discusses choosing and estimating the covariance structure of the response, and expands the representation of a repeated measure to general mixed linear models. The author also explains the Bayesian analysis of categorical response data in a repeated measures study, Bayesian analysis for repeated measures when the mean profile is nonlinear, and a Bayesian approach to missing values in the response variable.

Lyle D. Broemeling has 30 years of experience as a biostatistician. He has been a professor at the University of Texas Medical Branch at Galveston, the University of Texas School of Public Health at Houston, and the University of Texas MD Anderson Cancer Center. He is also the author of several books, including Bayesian Methods in Epidemiology. His research interests include the analysis of repeated measures and Bayesian methods for assessing medical test accuracy and inter-rater agreement.

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