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 DIRECTORY/Computers/Artificial Intelligence/Artificial Intelligence/Belief Networks (53)
i0A Brief Introduction to Graphical Models and Bayesian Networks - http://www.cs.berkeley.edu/~murphyk/Bayes/bayes.html - Kevin Murphy's tutorial, including a recommended reading list.
 
i0An Introduction to Bayesian Networks and Their Contemporary Applications - http://www.niedermayer.ca/papers/bayesian/ - A survey and tutorial by Daryle Niedermayer - covers material on Bayesian inference in general and selected industrial applications of graphical models
 
i0Association for Uncertainty in Artificial Intelligence - http://www.auai.org/ - Main association for belief network researchers. Runs the annual Uncertainty in Artificial Intelligence (UAI) conferences, and the UAI mailing list.
 
i0B-Course - Dependence and classification modeling - http://b-course.cs.helsinki.fi - A free, interactive tutorial on Bayesian modeling, in particular dependence and classification modeling.
 
i0Bayesian Network Repository - http://www.cs.huji.ac.il/labs/compbio/Repository/ - Maintained by Gal Elidan - over a dozen publicly available networks with documentation, in several popular interchange formats
 
i0Belief Networks and Variational Methods : Amos Storkey - http://www.anc.ed.ac.uk/~amos/belief.html - Dynamic Trees are mixtures of tree structured belief networks, and are used as models for image segmentation and tracking.
 
i0Belief Revision - http://beliefrevision.org - Software, publications, teaching material, and news on belief revision - from the Business and Technology Research Laboratory at the University of Newcastle, Australia
 
i0Cause, chance and Bayesian statistics - http://www.abelard.org/briefings/bayes.htm - Briefing document with a short survey of Bayesian statistics
 
i0Daphne's Approximate Group of Students (DAGS) - http://dags.stanford.edu - Daphne Koller's research group on probabilistic representation, reasoning, and learning at Stanford University
 
i0Decision Systems Lab (DSL) - http://www.sis.pitt.edu/~dsl/ - Research group at the University of Pittsburgh with links to books and software on probabilistic, decision-theoretic, and econometric graphical models
 
i0Learning Bayesian Networks from Data - http://www.cs.huji.ac.il/~nirf/Nips01-Tutorial/ - Slides and additional notes from a tutorial by Nir Friedman and Daphne Koller on automated learning of belief networks, given at the Neural Information Processing Systems (NIPS-2001) conference
 
i0Qualitative Verbal Explanations in Bayesian Belief Networks - http://www.pitt.edu/~druzdzel/abstracts/aisb.html - Paper about combining probabilistic models and human-intuitive approaches to modeling uncertainty by generating qualitative verbal explanations of reasoning.
 
i0Query DAGs: A Practical Paradigm for Implementing Belief-Network Inference - http://www.cs.cmu.edu/afs/cs/project/jair/pub/volume6/darwiche97a-html/jair-f.html - Article published in JAIR (Journal of AI Research) about a way to implement belief networks by compiling networks into arithmetic expressions and then answering queries using an evaluation algorithm.
 
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