Variational Bayesian Methods
978-613-0-33502-1
6130335024
76
2010-06-06
34,00 €
eng
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Please note that the content of this book primarily consists of articles available from Wikipedia or other free sources online. Variational Bayesian methods, also called ensemble learning, are a family of techniques for approximating intractable integrals arising in Bayesian statistics and machine learning. They can be used to lower bound the marginal likelihood of several models with a view to performing model selection, and often provide an analytical approximation to the parameter posterior probability which is useful for prediction. It is an alternative to Monte Carlo sampling methods for making use of a posterior distribution that is difficult to sample from directly.
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