Neural Network Engineering in Dynamic Control Systems
Seiten
1996
|
199., Corr. printing
Springer Berlin (Hersteller)
978-3-540-19973-1 (ISBN)
Springer Berlin (Hersteller)
978-3-540-19973-1 (ISBN)
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This text evaluates the state of the art in the area of neural networks from the engineering perspective. It examines ways of improving the engineering involved in neural network modelling and control, so that the theoretical power of learning systems can be harnessed for practical applications.
This study evaluates the state of the art in the area of neural networks from the engineering perspective. The book examines ways of improving the engineering involved in neural network modelling and control, so that the theoretical power of learning systems can be harnessed for practical applications. The book seeks to answer a number of questions, such as which network architecture for which application? Can constructive learning algorithms capture the underlying dynamics while avoiding overfitting? How can we introduce a priori knowledge or models into neural networks? Can experimental design and active learning be used automatically to create 'optimal' training sets? And finally, how can we validate a neural network model?
Reihe/Serie | Advances in Industrial Control |
---|---|
Zusatzinfo | 122 figs. |
Sprache | englisch |
Gewicht | 550 g |
Einbandart | gebunden |
Schlagworte | Advances in Industrial Control • Dynamisches System • Neuronale Netze • Steuerungssystem |
ISBN-10 | 3-540-19973-X / 354019973X |
ISBN-13 | 978-3-540-19973-1 / 9783540199731 |
Zustand | Neuware |
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