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Learning functions and approximate Bayesian computation design: ABCD - MaRDI portal

Learning functions and approximate Bayesian computation design: ABCD (Q296301)

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scientific article; zbMATH DE number 6593582
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Learning functions and approximate Bayesian computation design: ABCD
scientific article; zbMATH DE number 6593582

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    Learning functions and approximate Bayesian computation design: ABCD (English)
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    15 June 2016
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    Summary: A general approach to Bayesian learning revisits some classical results, which study which functionals on a prior distribution are expected to increase, in a preposterior sense. The results are applied to information functionals of the Shannon type and to a class of functionals based on expected distance. A close connection is made between the latter and a metric embedding theory due to Schoenberg and others. For the Shannon type, there is a connection to majorization theory for distributions. A computational method is described to solve generalized optimal experimental design problems arising from the learning framework based on a version of the well-known approximate Bayesian computation (ABC) method for carrying out the Bayesian analysis based on Monte Carlo simulation. Some simple examples are given.
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    learning
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    Shannon information
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    majorization
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    optimum experimental design
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    approximate Bayesian computation
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