<P>For the first time, this book sets forth the concept and model for a process neural network. Youβll discover how a process neural network expands the mapping relationship between the input and output of traditional neural networks and greatly enhances the expression capability of artificial neura
Process Neural Networks: Theory and Applications
β Scribed by Prof. Xingui He, Prof. Shaohua Xu (auth.)
- Publisher
- Springer-Verlag Berlin Heidelberg
- Year
- 2010
- Tongue
- English
- Leaves
- 253
- Series
- Advanced Topics in Science and Technology in China
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
"Process Neural Network: Theory and Applications" proposes the concept and model of a process neural network for the first time, showing how it expands the mapping relationship between the input and output of traditional neural networks and enhances the expression capability for practical problems, with broad applicability to solving problems relating to processes in practice. Some theoretical problems such as continuity, functional approximation capability, and computing capability, are closely examined. The application methods, network construction principles, and optimization algorithms of process neural networks in practical fields, such as nonlinear time-varying system modeling, process signal pattern recognition, dynamic system identification, and process forecast, are discussed in detail. The information processing flow and the mapping relationship between inputs and outputs of process neural networks are richly illustrated.
Xingui He is a member of Chinese Academy of Engineering and also a professor at the School of Electronic Engineering and Computer Science, Peking University, China, where Shaohua Xu also serves as a professor.
β¦ Table of Contents
Front Matter....Pages I-XII
Introduction....Pages 1-19
Artificial Neural Networks....Pages 20-42
Process Neurons....Pages 43-52
Feedforward Process Neural Networks....Pages 53-87
Learning Algorithms for Process Neural Networks....Pages 88-127
Feedback Process Neural Networks....Pages 128-142
Multi-aggregation Process Neural Networks....Pages 143-160
Design and Construction of Process Neural Networks....Pages 161-194
Application of Process Neural Networks....Pages 195-232
Back Matter....Pages 238-240
β¦ Subjects
Artificial Intelligence (incl. Robotics); Pattern Recognition
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