Bayesian Methods for Measures of Agreement

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A01=Lyle D. Broemeling
analysis
Author_Lyle D. Broemeling
Bayesian agreement study methods
bayesian methods
bugs
BUGS CODE
Category=JHBC
Category=JMB
Category=PBT
Category=PS
Cell Frequencies
code
coeffi
Conditional Kappa
Constant Correlation Model
credible
Credible Interval
density
diagnostic reliability studies
distribution
eq_bestseller
eq_isMigrated=1
eq_isMigrated=2
eq_nobargain
eq_non-fiction
eq_science
eq_society-politics
Expected Cell Frequencies
experimental design statistics
Fi Rst Population
Fi Ve
Fi Ve Readers
Geographic Atrophy
interrater variability modeling
interval
Intraclass Correlation
joint
Joint Posterior Distribution
Kappa Coeffi Cient
Kappa coefficient
likelihood function
Linear Interaction Term
modeling patterns of agreement
posterior
Posterior Analysis
Posterior Distribution
Posterior Median
Progressive Disease
quantitative score assessment
Sample Size Choice
Sample Size Estimation
Sample Size Formula
statistical agreement analysis
SUV Value
Variance Components
Von Eye
WinBUGS programming techniques
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Product details

  • ISBN 9780367577384
  • Weight: 640g
  • Dimensions: 156 x 234mm
  • Publication Date: 30 Jun 2020
  • Publisher: Taylor & Francis Ltd
  • Publication City/Country: GB
  • Product Form: Paperback
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Using WinBUGS to implement Bayesian inferences of estimation and testing hypotheses, Bayesian Methods for Measures of Agreement presents useful methods for the design and analysis of agreement studies. It focuses on agreement among the various players in the diagnostic process.

The author employs a Bayesian approach to provide statistical inferences based on various models of intra- and interrater agreement. He presents many examples that illustrate the Bayesian mode of reasoning and explains elements of a Bayesian application, including prior information, experimental information, the likelihood function, posterior distribution, and predictive distribution. The appendices provide the necessary theoretical foundation to understand Bayesian methods as well as introduce the fundamentals of programming and executing the WinBUGS software.

Taking a Bayesian approach to inference, this hands-on book explores numerous measures of agreement, including the Kappa coefficient, the G coefficient, and intraclass correlation. With examples throughout and end-of-chapter exercises, it discusses how to successfully design and analyze an agreement study.

Lyle D. Broemeling

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