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Data mining in finance : advances in relational and hybrid methods /

"Data Mining in Finance presents a comprehensive overview of major algorithmic approaches to predictive data mining, including statistical, neural networks, rule-based, decision-tree, and fuzzy-logic methods, and then examines the suitability of these approaches to financial data mining. The bo...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autor principal: Kovalerchuk, Boris
Otros Autores: Vityaev, Evgenii
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Boston : Norwell, Mass : Kluwer Academic Publishers ; Distributors for North, Central, and South America, Kluwer Academic Publishers, ©2000.
Colección:Kluwer international series in engineering and computer science ; SECS 547.
Temas:
Acceso en línea:Texto completo

MARC

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100 1 |a Kovalerchuk, Boris. 
245 1 0 |a Data mining in finance :  |b advances in relational and hybrid methods /  |c by Boris Kovalerchuk and Evgenii Vityaev. 
260 |a Boston :  |b Kluwer Academic Publishers ;  |a Norwell, Mass :  |b Distributors for North, Central, and South America, Kluwer Academic Publishers,  |c ©2000. 
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490 1 |a The Kluwer international series in engineering and computer science ;  |v SECS 547 
504 |a Includes bibliographical references and index. 
504 |a Includes bibliographical references (pages 285-298) and index. 
505 0 0 |t The scope and methods of the study --  |t Numerical data mining models with financial applications --  |t Rule-based and hybrid financial data mining --  |t Relational data mining (RDM) --  |t Financial applications of relational data mining --  |t Comparison of performance of RDM and other methods in financial applications --  |t Fuzzy logic approach and its financial applications. 
588 0 |a Print version record. 
520 1 |a "Data Mining in Finance presents a comprehensive overview of major algorithmic approaches to predictive data mining, including statistical, neural networks, rule-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." "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."--Jacket 
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650 0 |a Investments  |x Data processing. 
650 0 |a Stock price forecasting  |x Data processing. 
650 0 |a Data mining. 
650 6 |a Investissements  |x Informatique. 
650 6 |a Actions (Titres de société)  |x Prix  |x Prévision  |x Informatique. 
650 6 |a Exploration de données (Informatique) 
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650 7 |a Data mining  |2 fast 
650 7 |a Investments  |x Data processing  |2 fast 
650 7 |a Stock price forecasting  |x Data processing  |2 fast 
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700 1 |a Vityaev, Evgenii. 
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