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In den WarenkorbHardcover/ Pappband. Zustand: Wie neu. 398 S. EDV Guter Zustand/ Good Ex-Library. Ecken bestoßen, Einband hat leichte Gebrauchsspuren, vereinzelt Bleistiftanstreichungen ha1082408 Sprache: Englisch Gewicht in Gramm: 750.
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Anbieter: Ammareal, Morangis, Frankreich
Hardcover. Zustand: Très bon. Ancien livre de bibliothèque. Edition 2000. Ammareal reverse jusqu'à 15% du prix net de cet article à des organisations caritatives. ENGLISH DESCRIPTION Book Condition: Used, Very good. Former library book. Edition 2000. Ammareal gives back up to 15% of this item's net price to charity organizations.
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Verlag: Berlin - Heidelberg - New York: Springer-Verlag 2001, 2001
ISBN 10: 3540422897 ISBN 13: 9783540422891
Sprache: Englisch
EUR 25,00
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In den WarenkorbHardback, XIX+398 pp., 8° (16 x 24.5 cm), ex-library, two corners slightly bumped, there is a paper label on the backstrip, the front free endpaper has a blackened stamp, condition: very good Book Language/s: English.
Anbieter: Buchpark, Trebbin, Deutschland
EUR 85,02
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In den WarenkorbZustand: Sehr gut. Zustand: Sehr gut | Seiten: 123 | Sprache: Englisch | Produktart: Bücher.
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Anbieter: Majestic Books, Hounslow, Vereinigtes Königreich
EUR 82,30
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In den WarenkorbZustand: New.
Verlag: Springer Berlin Heidelberg, Springer Berlin Heidelberg Dez 2010, 2010
ISBN 10: 3642076041 ISBN 13: 9783642076046
Sprache: Englisch
Anbieter: buchversandmimpf2000, Emtmannsberg, BAYE, Deutschland
EUR 106,99
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In den WarenkorbTaschenbuch. Zustand: Neu. Neuware -As the first book devoted to relational data mining, this coherently written multi-author monograph provides a thorough introduction and systematic overview of the area. The first part introduces the reader to the basics and principles of classical knowledge discovery in databases and inductive logic programming; subsequent chapters by leading experts assess the techniques in relational data mining in a principled and comprehensive way; finally, three chapters deal with advanced applications in various fields and refer the reader to resources for relational data mining.This book will become a valuable source of reference for R&D professionals active in relational data mining. Students as well as IT professionals and ambitioned practitioners interested in learning about relational data mining will appreciate the book as a useful text and gentle introduction to this exciting new field.Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 420 pp. Englisch.
Verlag: Springer, Berlin, Springer International Publishing, Springer, 2018
ISBN 10: 3319849778 ISBN 13: 9783319849775
Sprache: Englisch
Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland
EUR 109,94
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In den WarenkorbTaschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book provides two general granular computing approaches to mining relational data, the first of which uses abstract descriptions of relational objects to build their granular representation, while the second extends existing granular data mining solutions to a relational case.Both approaches make it possible to perform and improve popular data mining tasks such as classification, clustering, and association discovery. How can different relational data mining tasks best be unified How can the construction process of relational patterns be simplified How can richer knowledge from relational data be discovered All these questions can be answered in the same way: by mining relational data in the paradigm of granular computing!This book will allow readers with previous experience in the field of relational data mining to discover the many benefits of its granular perspective. In turn, those readers familiar with the paradigm of granular computing will find valuable insights on its application to mining relational data. Lastly, the book offers all readers interested in computational intelligence in the broader sense the opportunity to deepen their understanding of the newly emerging field granular-relational data mining.
Verlag: Springer-Verlag New York Inc, 2012
ISBN 10: 3540751963 ISBN 13: 9783540751960
Sprache: Englisch
Anbieter: Revaluation Books, Exeter, Vereinigtes Königreich
EUR 121,67
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In den WarenkorbHardcover. Zustand: Brand New. 2012 edition. 353 pages. 9.00x6.25x0.80 inches. In Stock.
Anbieter: Ria Christie Collections, Uxbridge, Vereinigtes Königreich
EUR 141,08
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In den WarenkorbZustand: New. In.
Verlag: Information Science Reference, 2017
ISBN 10: 1522533850 ISBN 13: 9781522533856
Sprache: Englisch
Anbieter: Ria Christie Collections, Uxbridge, Vereinigtes Königreich
EUR 187,76
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In den WarenkorbZustand: New. In.
Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland
EUR 217,46
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In den WarenkorbTaschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - Data Mining in Finance presents a comprehensive overview of major algorithmic approaches to predictive data mining, including statistical, neural networks, ruled-based, decision-tree, and fuzzy-logic methods, and then examines the suitability of these approaches to financial data mining. The book focuses specifically on relational data mining (RDM), which is a learning method able to learn more expressive rules than other symbolic approaches. RDM is thus better suited for financial mining, because it is able to make greater use of underlying domain knowledge. Relational data mining also has a better ability to explain the discovered rules - an ability critical for avoiding spurious patterns which inevitably arise when the number of variables examined is very large. The earlier algorithms for relational data mining, also known as inductive logic programming (ILP), suffer from a relative computational inefficiency and have rather limited tools for processing numerical data. Data Mining in Finance introduces a new approach, combining relational data mining with the analysis of statistical significance of discovered rules. This reduces the search space and speeds up the algorithms. The book also presents interactive and fuzzy-logic tools for `mining' the knowledge from the experts, further reducing the search space. Data Mining in Finance contains a number of practical examples of forecasting S&P 500, exchange rates, stock directions, and rating stocks for portfolio, allowing interested readers to start building their own models. This book is an excellent reference for researchers and professionals in the fields of artificial intelligence, machine learning, data mining, knowledge discovery, and applied mathematics.