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Feature Selection for Data and Pattern Recognition [[electronic resource] /] / edited by Urszula Stańczyk, Lakhmi C. Jain



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Titolo: Feature Selection for Data and Pattern Recognition [[electronic resource] /] / edited by Urszula Stańczyk, Lakhmi C. Jain Visualizza cluster
Pubblicazione: Berlin, Heidelberg : , : Springer Berlin Heidelberg : , : Imprint : Springer, , 2015
Edizione: 1st ed. 2015.
Descrizione fisica: 1 online resource (XVIII, 355 p. 74 illus., 20 illus. in color.)
Disciplina: 006.3
Soggetto topico: Computational intelligence
Artificial intelligence
Computational Intelligence
Artificial Intelligence
Persona (resp. second.): StańczykUrszula
JainLakhmi C
Note generali: Bibliographic Level Mode of Issuance: Monograph
Nota di contenuto: Feature Selection for Data and Pattern Recogniton: an Introduction -- Part I Estimation of Feature Importance -- Part II Rough Set Approach to Attribute Reduction -- Part III Rule Discovery and Evaluation -- Part IV Data- and Domain-oriented Methodologies.
Sommario/riassunto: This research book provides the reader with a selection of high-quality texts dedicated to current progress, new developments and research trends in feature selection for data and pattern recognition. Even though it has been the subject of interest for some time, feature selection remains one of actively pursued avenues of investigations due to its importance and bearing upon other problems and tasks. This volume points to a number of advances topically subdivided into four parts: estimation of importance of characteristic features, their relevance, dependencies, weighting and ranking; rough set approach to attribute reduction with focus on relative reducts; construction of rules and their evaluation; and data- and domain-oriented methodologies.
Titolo autorizzato: Feature Selection for Data and Pattern Recognition  Visualizza cluster
ISBN: 3-662-45620-6
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910299705303321
Lo trovi qui: Univ. Federico II
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Serie: Studies in Computational Intelligence, . 1860-949X ; ; 584