Kniha Cluster Analysis for Data Mining and System Identification Janos Abonyi

Cluster Analysis for Data Mining and System Identification

Jazyk: Angličtina
Väzba: Pevná
Vydavateľ: Birkhauser Verlag AG
Dostupnosť: Skladom u dodávateľa v malom množstve
Odosielame za 13-18 dní
106.06
The aim of this book is to illustrate that advanced fuzzy clustering algorithms can be used not only...

Informácie o knihe

Jazyk
Angličtina
Väzba
Kniha - Pevná
Vydalo
2007
Stránok
306
EAN
9783764379872
ISBN
3764379871
Enbook ID
01716918
Hmotnosť
1400
Rozmery
210 x 297 x 22

Kompletný popis

The aim of this book is to illustrate that advanced fuzzy clustering algorithms can be used not only for partitioning of the data. It can also be used for visualization, regression, classification and time-series analysis, hence fuzzy cluster analysis is a good approach to solve complex data mining and system identification problems. This book is oriented to undergraduate and postgraduate and is well suited for teaching purposes.This book presents new approaches to data mining and system identification. Algorithms that can be used for the clustering of data have been overviewed. New techniques and tools are presented for the clustering, classification, regression and visualization of complex datasets. Special attention is given to the analysis of historical process data, tailored algorithms are presented for the data driven modeling of dynamical systems, determining the model order of nonlinear input-output black box models, and the segmentation of multivariate time-series. The main methods and techniques are illustrated through several simulated and real-world applications from data mining and process engineering practice.§The book is aimed primarily at practitioners, researches, and professionals in statistics, data mining, business intelligence, and systems engineering, but it is also accessible to graduate and undergraduate students in applied mathematics, computer science, electrical and process engineering. Familiarity with the basics of system identification and fuzzy systems is helpful but not required.§Key features:§- Detailed overview of the most powerful algorithms and approaches for data mining and system identification is presented.§- Extensive references give a good overview of the current state of the application of computational intelligence in data mining and system identification, and suggest further reading for additional research.§- Numerous illustrations to facilitate the understanding of ideas and methods presented. §- Supporting MATLAB files, available at the website www.fmt.uni-pannon.hu/softcomp create a computational platform for exploration and illustration of many concepts and algorithms presented in the book.

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