The course focuses on Bayesian analyses using the PHREG, GENMOD, and MCMC procedures. The examples include logistic regression, Cox proportional hazards model, general linear mixed model, zero-inflated Poisson model, and data containing [...]
  • STBA42
  • Duration 2 days
  • 0 ITK points
  • 0 terms
  • ČR (on request)

    SR (on request)

The course focuses on Bayesian analyses using the PHREG, GENMOD, and MCMC procedures. The examples include logistic regression, Cox proportional hazards model, general linear mixed model, zero-inflated Poisson model, and data containing missing values. A Bayesian analysis of a crossover design and a meta-analysis are also shown.

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Biostatisticians, epidemiologists, and social scientists who are interested in the Bayesian analysis approach

  • Explain the concepts of Bayesian analysis
  • Illustrate Bayesian analyses in PROC GENMOD, PROC PHREG, and PROC MCMC
  • Incorporate prior distributions in a Bayesian analysis
  • Illustrate a Bayesian analysis approach to a meta-analysis

Before attending this course, you should:

  • Be able to create SAS data sets and manipulate data. You can gain this experience from the SAS Programming 2: Data Manipulation Techniques course
  • Have completed a statistics course such as the Statistics 1: Introduction to ANOVA, Regression, and Logistic Regression or Statistics 2: ANOVA and Regression course
Introduction to Bayesian Analysis
  • Introduce the basic concepts of Bayesian analysis
  • Compute the diagnostic plots and diagnostic statistics for model assessment
  • Discuss the advantages and disadvantages of Bayesian analysis
  • Illustrate a Bayesian analysis in PROC GENMOD and PROC PHREG
Fitting Models with the MCMC Procedure
  • Show the essential statements in PROC MCMC
  • Show the supported distributions in PROC MCMC
  • Fit a logistic regression model in PROC MCMC
  • Fit a general linear mixed model in PROC MCMC
  • Fit a zero-inflated Poisson model in PROC MCMC
  • Incorporate missing values in PROC MCMC
Bayesian Approaches to Clinical Trials
  • Use prior distributions in a Bayesian analysis
  • Illustrate a Bayesian approach to clinical trials using PROC MCMC
  • Illustrate the Bayesian approach to meta-analysis
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Custom Training

Didn’t find a suitable date or need training tailored to your team’s specific needs? We’ll be happy to prepare custom training for you.