BMS toolbox for Matlab: Bayesian Model Averaging (BMA)

Do Bayesian Model Averaging (BMA) via a hidden instance of R (Windows only).
2,8K Downloads
Aktualisiert 11. Feb 2011

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Bayesian Model Averaging for linear models under Zellner's g prior. Options include: fixed (BRIC, UIP, ...) and flexible g priors (Empirical Bayes, hyper-g), 5 kinds of model prior concepts, and model sampling via model enumeration or MCMC samplers (Metropolis-Hastings plain or reversible jump). Post-processing allows for inference according to different concepts (likelihood vs MCMC-based) and for plotting (posterior model size and coefficient densities, best models, model convergence, BMA comparison).

Needs the R D-COM interface or RAndFriends installed.

Works for Matlab 6.5 and later

For more details see:
http://bms.zeugner.eu/matlab/

Zitieren als

stz Zeugner (2026). BMS toolbox for Matlab: Bayesian Model Averaging (BMA) (https://de.mathworks.com/matlabcentral/fileexchange/29326-bms-toolbox-for-matlab-bayesian-model-averaging-bma), MATLAB Central File Exchange. Abgerufen.

Kompatibilität der MATLAB-Version
Erstellt mit R2009b
Kompatibel mit allen Versionen
Plattform-Kompatibilität
Windows macOS Linux
Kategorien
Mehr zu Statistics and Machine Learning Toolbox finden Sie in Help Center und MATLAB Answers
Version Veröffentlicht Versionshinweise
1.3.0.0

Documentation update

1.1.0.0

Linear Bayesian Model Averaging (BMA) via a hidden instance of R (Windows only).

1.0.0.0