Algorithmic Learning in a Random World

Algorithmic Learning in a Random World
Author: Vladimir Vovk
Publisher: Springer Science & Business Media
Total Pages: 332
Release: 2005-12-05
Genre: Computers
ISBN: 0387250611


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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 unique monograph is to outline some limits of predictions: The approach based on algorithmic theory of randomness allows for the proof of impossibility of prediction in certain situations. The book describes how several important machine learning problems, such as density estimation in high-dimensional spaces, cannot be solved if the only assumption is randomness.


Algorithmic Learning in a Random World
Language: en
Pages: 332
Authors: Vladimir Vovk
Categories: Computers
Type: BOOK - Published: 2005-12-05 - Publisher: Springer Science & Business Media

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Algorithmic Learning in a Random World describes recent theoretical and experimental developments in building computable approximations to Kolmogorov's algorith
Algorithmic Learning in a Random World
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Pages: 490
Authors: Vladimir Vovk
Categories: Computers
Type: BOOK - Published: 2022-12-13 - Publisher: Springer Nature

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This book is about conformal prediction, an approach to prediction that originated in machine learning in the late 1990s. The main feature of conformal predicti
Algorithmic Learning in a Random World
Language: en
Pages: 344
Authors: Vladimir Vovk
Categories: Computers
Type: BOOK - Published: 2005-03-22 - Publisher: Springer Science & Business Media

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Algorithmic Learning in a Random World describes recent theoretical and experimental developments in building computable approximations to Kolmogorov's algorith
Algorithmic Learning in a Random World
Language: en
Pages: 324
Authors: Vladimir Vovk
Categories:
Type: BOOK - Published: 2005 - Publisher:

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Conformal Prediction for Reliable Machine Learning
Language: en
Pages: 323
Authors: Vineeth Balasubramanian
Categories: Computers
Type: BOOK - Published: 2014-04-23 - Publisher: Newnes

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The conformal predictions framework is a recent development in machine learning that can associate a reliable measure of confidence with a prediction in any rea