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Algorithmic Learning in a Random World

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Algorithmic Learning in a Random World - Gammerman, Alex, and Shafer, Glenn, and Vovk, Vladimir
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Algorithmic Learning in a Random World describes recent theoretical and experimental developments in building computable approximations to Kolmogorov's algorithmic notion of randomness. Based on these approximations, a new set of machine learning algorithms have been developed that can be used to make predictions and to estimate their confidence and credibility in high-dimensional spaces under the usual assumption that the data are independent and identically distributed (assumption of randomness). Another aim of this ...

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