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Radial Basis Function Networks 2: New Advances in Design 2001 Edition
Contributor(s): Howlett, Robert J. (Author), Jain, Lakhmi C. (Author)
ISBN: 3790813680     ISBN-13: 9783790813685
Publisher: Physica-Verlag
OUR PRICE:   $161.49  
Product Type: Hardcover - Other Formats
Published: March 2001
Qty:
Annotation: The Radial Basis Function (RBF) neural network has gained in popularity over recent years because of its rapid training and its desirable properties in classification and functional approximation applications. RBF network research has focused on enhanced training algorithms and variations on the basic architecture to improve the performance of the network. In addition, the RBF network is proving to be a valuable tool in a diverse range of application areas, for example, robotics, biomedical engineering, and the financial sector. The two volumes provide a comprehensive survey of the latest developments in this area. Volume 2 contains a wide range of applications in the laboratory and case studies describing current industrial use. Both volumes will prove extremely useful to practitioners in the field, engineers, reserachers, students and technically accomplished managers.
Additional Information
BISAC Categories:
- Computers | Computer Vision & Pattern Recognition
- Medical
- Computers | Programming - General
Dewey: 006.32
LCCN: 2001021458
Series: Berliner Schriften Zur Kunst
Physical Information: 0.88" H x 6.14" W x 9.21" (1.57 lbs) 360 pages
 
Descriptions, Reviews, Etc.
Publisher Description:
The Radial Basis Function (RBF) network has gained in popularity in recent years. This is due to its desirable properties in classification and functional approximation applications, accompanied by training that is more rapid than that of many other neural-network techniques. RBF network research has focused on enhanced training algorithms and variations on the basic architecture to improve the performance of the network. In addition, the RBF network is proving to be a valuable tool in a diverse range of applications areas, for example, robotics, biomedical engineering, and the financial sector. The two-title series Theory and Applications of Radial Basis Function Networks provides a comprehensive survey of recent RBF network research. This volume, New Advances in Design, contains a wide range of applications in the laboratory and case-studies describing current use. The sister volume to this one, Recent Developments in Theory and Applications, covers advances in training algorithms, variations on the architecture and function of the basis neurons, and hybrid paradigms. The combination of the two volumes will prove extremely useful to practitioners in the field, engineers, researchers, students and technically accomplished managers.