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Principles of data mining (notice n° 32303)

000 -LEADER
fixed length control field 01656nam a2200169 4500
020 ## - ISBN
ISBN 978-0-262-08290-7
040 ## - SOURCE DU CATALOGAGE
Origine cataloguage BC-EPAU
041 ## - CODE DE LANGUE
Langue Anglais
100 ## - VEDETTE PRINCIPALE - AUTEUR PRINCIPAL
Auteur HAND, David
245 ## - MENTION DU TITRE
Titre Principles of data mining
260 ## - PUBLICATION, DIFFUSION, ETC. (ADRESSE BIBLIOGRAPHIQUE)
Lieu d'édition U.S.A
Nom de l'éditeur Massachusetts institute of technology
Année d'édition 2001
300 ## - DESCRIPTION MATÉRIELLE
Nombre de pages 546 p.
Illustration Ill. fig.
Format 24 cm
700 ## - AUTEUR(S) SECONDAIRE(S)
NOM et Prenom MANNILA, Heikki; SMYTH, Padhraic
942 ## - DETAILS SUPPLEMENTAIRES
Type document Ouvrage
Famille/Sous-Famille MATHEMATIQUES --> MATHEMATIQUES APPLIQUEES:INFORMATIQUE
Cote 4.3.3
994 ## - Code Document
Code 04180003
520 ## - RÉSUMÉ, ETC.
Résumé The growing interest in data mining is motivated by a common problem across disciplines: how does one store, access, model, and ultimately describe and understand very large data sets? Historically, different aspects of data mining have been addressed independently by different disciplines. This is the first truly interdisciplinary text on data mining, blending the contributions of information science, computer science, and statistics.<br/><br/>The book consists of three sections. The first, foundations, provides a tutorial overview of the principles underlying data mining algorithms and their application. The presentation emphasizes intuition rather than rigor. The second section, data mining algorithms, shows how algorithms are constructed to solve specific problems in a principled manner. The algorithms covered include trees and rules for classification and regression, association rules, belief networks, classical statistical models, nonlinear models such as neural networks, and local "memory-based" models. The third section shows how all of the preceding analysis fits together when applied to real-world data mining problems. Topics include the role of metadata, how to handle missing data, and data preprocessing.
Exemplaires
Lieu de Stockage Actuel N° Inventaire Cote Code à Barre Type Document Ancienne cote
Bibliothèque Centrale 35117 04180003001 04180003001 Ouvrage 4.3.3

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