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Mining Very Large Databases with Parallel Processing
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Mining Very Large Databases with Parallel Processing

2000 - Erschienen 1997.

Gebrauchs- und Lagerspuren. Innen: Seiten eingerissen. Aus der Auflösung einer renommierten Bibliothek. Kann Stempel beinhalten. 1369699/203
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computer science, database, database systems, genetic algorithms, parallel processing, neural networks, relational database, algorithms, DBMS, artificial intelligence, neural network, data mining,

Produktart:
📚 Bücher
Autor(en):
Freitas, Alex A. und Simon H. Lavington:
Anbieter:
Buchpark GmbH
Bestell-Nr.:
1369699203
Katalog:
Varia
ISBN | EAN:
0792380487 | 9780792380481
Stichworte:
computer, science, database, systems, genetic, algorithms, parallel, processing, neural, networks, relational, DBMS, artificial, intelligence, network, data, mining
Zahlungsarten:
Vorauskasse, PayPal
Gebraucht, gut 10,83 EUR 9,75 EUR Kostenloser Versand
Sonderaktion: 10% Rabatt bis 05.11.2026
Mining Very Large Databases with Parallel Processing
Mining Very Large Databases with Parallel Pr…
Gebraucht, gut
10,83 EUR 9,75 EUR
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Mining Very Large Databases with Parallel Processing addresses the problem of large-scale data mining. It is an interdisciplinary text, describing advances in the integration of three computer science areas, namely `intelligent' (machine learning-based) data mining techniques, relational databases and parallel processing. The basic idea is to use concepts and techniques of the latter two areas - particularly parallel processing - to speed up and scale up data mining algorithms.
The book is divided into three parts. The first part presents a comprehensive review of intelligent data mining techniques such as rule induction, instance-based learning, neural networks and genetic algorithms. Likewise, the second part presents a comprehensive review of parallel processing and parallel databases. Each of these parts includes an overview of commercially-available, state-of-the-art tools. The third part deals with the application of parallel processing to data mining. The emphasis is on finding generic, cost-effective solutions for realistic data volumes. Two parallel computational environments are discussed, the first excluding the use of commercial-strength DBMS, and the second using parallel DBMS servers.
It is assumed that the reader has a knowledge roughly equivalent to a first degree (BSc) in accurate sciences, so that (s)he is reasonably familiar with basic concepts of statistics and computer science.
The primary audience for Mining Very Large Databases with Parallel Processing is industry data miners and practitioners in general, who would like to apply intelligent data mining techniques to large amounts of data. The book will also be of interest to academic researchers and postgraduate students, particularly database researchers, interested in advanced, intelligent database applications, and artificial intelligence researchers interested in industrial, real-world applications of machine learning.
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