Neural Network Learning and Expert Systems presents a unified and in-depth development of neural network learning algorithms and neural network expert systems. Especially suitable for students and researchers in computer science, engineering, and psychology, it provides a systematic development of neural network learning algorithms from a computational perspective. This is coupled with an extensive exploration of neural network expert systems that shows how the power of neural network learning can be harnessed to generate expert systems automatically. Features include a comprehensive treatment of the standard learning algorithms (with many proofs), along with much original research on algorithms and expert systems. Additional chapters explore constructive algorithms, introduce computational learning theory, and focus on expert system applications to noisy and redundant problems. For students there is a large collection of exercises, as well as a series of programming projects that lead to an extensive neural network software package. All of the neural network models examined can be implemented using standard programming languages on a microcomputer.
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Jul 6, 2018 ... Artificial neural networks and expert systems are the classical two key classes. With the advanced in computing performance, software ...
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