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Data Mining and Knowledge Discovery Handbook / edited by Oded Maimon and Lior Rokach

Contributor(s): Maimon, Oded, editor literario | Rokach, Lior, editor literario
Material type: materialTypeLabelE-bookSeries: (Springer series in solid-state sciences Magnetic bubble technology).Publisher: New York : Springer, 2010Edition: Second edition.Description: 1 recurso en línea (1285 páginas).ISBN: 9780387098234.Subject: Data mining | Gestión del conocimientoOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
pt. 1. Preprocessing methods -- pt. 2. Supervised methods -- pt. 3. Unsupervised methods -- pt. 4. Soft computing methods -- pt. 5. Supporting methods -- pt. 6. Advanced methods -- pt. 7. Applications -- pt. 8. Software
Summary: Knowledge Discovery demonstrates intelligent computing at its best, and is the most desirable and interesting end-product of Information Technology. To be able to discover and to extract knowledge from data is a task that many researchers and practitioners are endeavoring to accomplish. There is a lot of hidden knowledge waiting to be discovered - this is the challenge created by today's abundance of data. Data Mining and Knowledge Discovery Handbook, Second Edition organizes the most current concepts, theories, standards, methodologies, trends, challenges and applications of data mining (DM) and knowledge discovery in databases (KDD) into a coherent and unified repository. This handbook first surveys, then provides comprehensive yet concise algorithmic descriptions of methods, including classic methods plus the extensions and novel methods developed recently. This volume concludes with in-depth descriptions of data mining applications in various interdisciplinary industries including finance, marketing, medicine, biology, engineering, telecommunications, software, and security. Data Mining and Knowledge Discovery Handbook, Second Edition is designed for research scientists, libraries and advanced-level students in computer science and engineering as a reference. This handbook is also suitable for professionals in industry, for computing applications, information systems management, and strategic research management.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias e Ingeniería QA76.9 .D343 2010 EB (Browse shelf(Opens below)) Acceso electrónico eBook373542
Total holds: 0

Includes bibliographical references and index

pt. 1. Preprocessing methods -- pt. 2. Supervised methods -- pt. 3. Unsupervised methods -- pt. 4. Soft computing methods -- pt. 5. Supporting methods -- pt. 6. Advanced methods -- pt. 7. Applications -- pt. 8. Software

Knowledge Discovery demonstrates intelligent computing at its best, and is the most desirable and interesting end-product of Information Technology. To be able to discover and to extract knowledge from data is a task that many researchers and practitioners are endeavoring to accomplish. There is a lot of hidden knowledge waiting to be discovered - this is the challenge created by today's abundance of data. Data Mining and Knowledge Discovery Handbook, Second Edition organizes the most current concepts, theories, standards, methodologies, trends, challenges and applications of data mining (DM) and knowledge discovery in databases (KDD) into a coherent and unified repository. This handbook first surveys, then provides comprehensive yet concise algorithmic descriptions of methods, including classic methods plus the extensions and novel methods developed recently. This volume concludes with in-depth descriptions of data mining applications in various interdisciplinary industries including finance, marketing, medicine, biology, engineering, telecommunications, software, and security. Data Mining and Knowledge Discovery Handbook, Second Edition is designed for research scientists, libraries and advanced-level students in computer science and engineering as a reference. This handbook is also suitable for professionals in industry, for computing applications, information systems management, and strategic research management.

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