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Combinatorial Machine Learning: A Rough Set Approach: 360 (Studies in Computational Intelligence) - Softcover

 
9783642269011: Combinatorial Machine Learning: A Rough Set Approach: 360 (Studies in Computational Intelligence)
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This book explores decision trees and decision rule systems, rules and reducts, examines relationships among these objects and reviews the design of algorithms for construction of trees, rules and reducts. Includes carefully selected illustrative proofs.
Contraportada:

Decision trees and decision rule systems are widely used in different applications

as algorithms for problem solving, as predictors, and as a way for

knowledge representation. Reducts play key role in the problem of attribute

(feature) selection. The aims of this book are (i) the consideration of the sets

of decision trees, rules and reducts; (ii) study of relationships among these

objects; (iii) design of algorithms for construction of trees, rules and reducts;

and (iv) obtaining bounds on their complexity. Applications for supervised

machine learning, discrete optimization, analysis of acyclic programs, fault

diagnosis, and pattern recognition are considered also. This is a mixture of

research monograph and lecture notes. It contains many unpublished results.

However, proofs are carefully selected to be understandable for students.

The results considered in this book can be useful for researchers in machine

learning, data mining and knowledge discovery, especially for those who are

working in rough set theory, test theory and logical analysis of data. The book

can be used in the creation of courses for graduate students.

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  • VerlagSpringer
  • Erscheinungsdatum2013
  • ISBN 10 364226901X
  • ISBN 13 9783642269011
  • EinbandTapa blanda
  • Anzahl der Seiten196

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9783642209949: Combinatorial Machine Learning: A Rough Set Approach: 360 (Studies in Computational Intelligence)

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ISBN 10:  3642209947 ISBN 13:  9783642209949
Verlag: Springer, 2011
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  • 9783642209963: Combinatorial Machine Learning: A Rough Set Approach

    Springer, 2011
    Softcover

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ISBN 10: 364226901X ISBN 13: 9783642269011
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Buchbeschreibung Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - Decision trees and decision rule systems are widely used in different applicationsas algorithms for problem solving, as predictors, and as a way forknowledge representation. Reducts play key role in the problem of attribute(feature) selection. The aims of this book are (i) the consideration of the setsof decision trees, rules and reducts; (ii) study of relationships among theseobjects; (iii) design of algorithms for construction of trees, rules and reducts;and (iv) obtaining bounds on their complexity. Applications for supervisedmachine learning, discrete optimization, analysis of acyclic programs, faultdiagnosis, and pattern recognition are considered also. This is a mixture ofresearch monograph and lecture notes. It contains many unpublished results.However, proofs are carefully selected to be understandable for students.The results considered in this book can be useful for researchers in machinelearning, data mining and knowledge discovery, especially for those who areworking in rough set theory, test theory and logical analysis of data. The bookcan be used in the creation of courses for graduate students. Artikel-Nr. 9783642269011

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