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Titlebook: Evolutionary Design of Intelligent Systems in Modeling, Simulation and Control; Oscar Castillo,Witold Pedrycz,Janusz Kacprzyk Book 2009 Sp

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书目名称Evolutionary Design of Intelligent Systems in Modeling, Simulation and Control
编辑Oscar Castillo,Witold Pedrycz,Janusz Kacprzyk
视频video
概述Recent results in Evolutionary Design of Intelligent Systems in Modeling, Simulation and Control
丛书名称Studies in Computational Intelligence
图书封面Titlebook: Evolutionary Design of Intelligent Systems in Modeling, Simulation and Control;  Oscar Castillo,Witold Pedrycz,Janusz Kacprzyk Book 2009 Sp
描述We describe in this book, new methods for evolutionary design of intelligent s- tems using soft computing and their applications in modeling, simulation and c- trol. Soft Computing (SC) consists of several intelligent computing paradigms, including fuzzy logic, neural networks, and evolutionary algorithms, which can be used to produce powerful hybrid intelligent systems. The book is organized in four main parts, which contain a group of papers around a similar subject. The first part consists of papers with the main theme of evolutionary design of fuzzy systems in intelligent control, which consists of papers that propose new methods for designing and optimizing intelligent controllers for different applications. The second part c- tains papers with the main theme of evolutionary design of intelligent systems for pattern recognition applications, which are basically papers using evolutionary al- rithms for optimizing modular neural networks with fuzzy systems for response - tegration, for achieving pattern recognition in different applications. The third part contains papers with the themes of models for learning and social simulation, which are papers that apply intelligent system
出版日期Book 2009
关键词agents; algorithms; cognition; control; evolution; fuzzy; fuzzy logic; learning; modeling; neural network; neu
版次1
doihttps://doi.org/10.1007/978-3-642-04514-1
isbn_softcover978-3-642-26083-4
isbn_ebook978-3-642-04514-1Series ISSN 1860-949X Series E-ISSN 1860-9503
issn_series 1860-949X
copyrightSpringer-Verlag Berlin Heidelberg 2009
The information of publication is updating

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Book 2009nary al- rithms for optimizing modular neural networks with fuzzy systems for response - tegration, for achieving pattern recognition in different applications. The third part contains papers with the themes of models for learning and social simulation, which are papers that apply intelligent system
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https://doi.org/10.1007/978-3-642-04514-1agents; algorithms; cognition; control; evolution; fuzzy; fuzzy logic; learning; modeling; neural network; neu
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,BMW M Events – Emotionale Faszination Pur.,ntroller (FLC) in order to find the optimal intelligent controller for an Autonomous Wheeled Mobile Robot. Simulation results show that ACO outperforms a GA in the optimization of FLCs for an autonomous mobile robot.
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Katja Lohmann,Sebastian Pyka,Cornelia Zangerod used is a genetic algorithm to find the optimal FLC for the plant control. The plant receives a linear signal of input controlled by an optimized FLC, obtaining as result the control and the stability of the plant. Simulations results were made in Simulink showing the effectiveness of the proposal.
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Antje Wolf,Ulrike Jackson,Johanna Pelikane considering are: the Mackey-Glass, Dow Jones and Mexican Stock Exchange and we show the results of a set of trainings with the ensemble neural network, and its integration with the methods of average, weighted average and Fuzzy Integration. Simulation results show very good prediction of the ensemble neural network with fuzzy logic integration.
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https://doi.org/10.1007/978-3-658-43180-8ults using the ORL database. We show results from different integrators, such as the Gating Network, fuzzy Sugeno integrals and type-1 fuzzy systems. We also show that the results with type-1 fuzzy systems are good, but we decided to optimize this fuzzy system with genetic algorithms (MFs parameters and fuzzy rules) to improve the results.
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