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Cover image for Metalearning : applications to data mining
Title:
Metalearning : applications to data mining
Publication Information:
Berlin : Springer, 2009
Physical Description:
x, 176 p. : ill. ; 25 cm.
ISBN:
9783540732624

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Material Type
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30000010195371 Q325.5 M47 2009 Open Access Book Book
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Summary

Summary

Metalearning is the study of principled methods that exploit metaknowledge to obtain efficient models and solutions by adapting machine learning and data mining processes. While the variety of machine learning and data mining techniques now available can, in principle, provide good model solutions, a methodology is still needed to guide the search for the most appropriate model in an efficient way. Metalearning provides one such methodology that allows systems to become more effective through experience.

This book discusses several approaches to obtaining knowledge concerning the performance of machine learning and data mining algorithms. It shows how this knowledge can be reused to select, combine, compose and adapt both algorithms and models to yield faster, more effective solutions to data mining problems. It can thus help developers improve their algorithms and also develop learning systems that can improve themselves.

The book will be of interest to researchers and graduate students in the areas of machine learning, data mining and artificial intelligence.


Table of Contents

1 Metalearning: Concepts and Systemsp. 1
2 Metalearning for Algorithm Recommendation: an Introductionp. 11
3 Development of Metalearning Systems for Algorithm Recommendationp. 31
4 Extending Metalearning to Data Mining and KDDp. 61
5 Combining Base-Learnersp. 73
6 Bias Management in Time-Changing Data Streamsp. 91
7 Transfer of Metaknowledge Across Tasksp. 109
8 Composition of Complex Systems: Role of Domain-Specific Metaknowledgep. 129
Referencesp. 153
A Terminologyp. 171
B Mathematical Symbolsp. 173
Indexp. 175
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