Discrete-Time High Order Neural Control

Discrete-Time High Order Neural Control

AngličtinaMěkká vazbaTisk na objednávku
Sanchez Edgar N.
Springer, Berlin
EAN: 9783642096952
Tisk na objednávku
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Podrobné informace

Neural networks have become a well-established methodology as exempli?ed by their applications to identi?cation and control of general nonlinear and complex systems; the use of high order neural networks for modeling and learning has recently increased. Usingneuralnetworks,controlalgorithmscanbedevelopedtoberobustto uncertainties and modeling errors. The most used NN structures are Feedf- ward networks and Recurrent networks. The latter type o?ers a better suited tool to model and control of nonlinear systems. There exist di?erent training algorithms for neural networks, which, h- ever, normally encounter some technical problems such as local minima, slow learning, and high sensitivity to initial conditions, among others. As a viable alternative, new training algorithms, for example, those based on Kalman ?ltering, have been proposed. There already exists publications about trajectory tracking using neural networks; however, most of those works were developed for continuous-time systems. On the other hand, while extensive literature is available for linear discrete-timecontrolsystem,nonlineardiscrete-timecontroldesigntechniques have not been discussed to the same degree. Besides, discrete-time neural networks are better ?tted for real-time implementations.
EAN 9783642096952
ISBN 3642096956
Typ produktu Měkká vazba
Vydavatel Springer, Berlin
Datum vydání 22. listopadu 2010
Stránky 110
Jazyk English
Rozměry 235 x 155
Země Germany
Sekce Professional & Scholarly
Autoři Alanis, Alma Y.; Loukianov Alexander G.; Sanchez Edgar N.
Ilustrace X, 110 p.
Edice Softcover reprint of hardcover 1st ed. 2008
Série Studies in Computational Intelligence