Optimization Techniques: Neural Network Systems Techniques and Applications, cartea 2
Autor Cornelius T. Leondesen Limba Engleză Hardback – 8 feb 1998
- Provides in-depth treatment of theoretical contributions to optimal learning for neural network systems
- Offers a comprehensive treatment of orthogonal transformation techniques for the optimization of neural network systems
- Includes illustrative examples and comprehensive treatment of sequential constructive techniques for optimization of neural network systems
- Presents a uniquely comprehensive treatment of the highly effective fast back propagation algorithms for the optimization of neural network systems
- Treats, in detail, optimization techniques for neural network systems with nonstationary or dynamic inputs
- Covers optimization techniques and applications of neural network systems in constraint satisfaction
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Specificații
ISBN-13: 9780124438620
ISBN-10: 0124438628
Pagini: 398
Dimensiuni: 152 x 229 x 24 mm
Greutate: 0.74 kg
Editura: ELSEVIER SCIENCE
Seria Neural Network Systems Techniques and Applications
ISBN-10: 0124438628
Pagini: 398
Dimensiuni: 152 x 229 x 24 mm
Greutate: 0.74 kg
Editura: ELSEVIER SCIENCE
Seria Neural Network Systems Techniques and Applications
Public țintă
Audience: Practitioners, research workers, academicians, and students in mechanical, electrical, industrial, manufacturing, and production engineering, as well as computer science and engineering.Cuprins
Albertini and Pra, Recurrent Neural Networks: Identification and Other System Theoretic Properties. Anderson and Titterington, Boltzmann Machines: Statistical Associations and Algorithms for Training Anderson and Titterington. Campbell, Constructive Learning Techniques for Designing Neural Network Systems. Mehrotra and Mohan, Modular Neural Networks. Xu and Kwong, Associative Memories. Fry and Sova, A Logical Basis for Neural Network Design.Hoekstra, Duin, and Kraaijveld, Neural Networks Applied to Data Analysis. Zhang and Wang, Multi-Mode Single Neuron Arithmetics.