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Brian Lau edited this page May 26, 2017
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The following three sections mirror as much as possible the documentation for PyStan:
- Compiling Stan components from Matlab
- Compilation options
- Setting Stan parameters
- Setting initial conditions for parameters
- Printing progress information to screen
- Using listeners to notify when sampling is complete
- Blocking the Matlab command line
- Stopping model fitting early
- Extracting samples from StanFit object
- Printing CmdStan's fit summary
- Linear regression
- Logistic regression
- Multivariate gaussian mixture model
- Watanabe-Akaike information criterion (WAIC)
Aki Vehtari has translated the examples from Bayesian Data Analysis, 3rd ed by Gelman, Carlin, Stern, Dunson, Vehtari, and Rubin (BDA3) into MatlabStan here.