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Beschreibung
The book consists of two parts: Pattern Classification and Function Approximation. In the first part, based on the synthesis principle of the neural-network classifier: A new learning paradigm is discussed and classification performance and training time of the new paradigm for several real-world data sets are compared with those of the widely-used back-propagation algorithm; Fuzzy classifiers of different architectures based on fuzzy rules can be defined with hyperbox, polyhedral, or ellipsoidal regions. The book discusses the unified approach for training these fuzzy classifiers; The performance of the newly-developed fuzzy classifiers and the conventional classifiers such as nearest-neighbor classifiers and support vector machines are evaluated using several real-world data sets and their advantages and disadvantages are clarified.
In the second part: Function approximation is discussed extending the discussions in the first part; Performance of the function approximators is compared.
This book is aimed primarily at researchers and practitioners in the field of artificial intelligence and neural networks.
Neuro-fuzzy Methods and Their Comparison
Neuro-fuzzy Methods and Their Comparison
Details
| Verlag | Springer London |
| Ersterscheinung | 04. Oktober 2012 |
| Maße | 23.5 cm x 15.5 cm |
| Gewicht | 534 Gramm |
| Format | Softcover |
| ISBN-13 | 9781447110774 |
| Auflage | Softcover reprint of the original 1st edition 2001 |
| Seiten | 327 |