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Neural networks represent a new generation of information
processing paradigms designed to mimic-in a very limited sense-the
human brain. They can learn, recall, and generalize from training
data, and with their potential applications limited only by the
imaginations of scientists and engineers, they are commanding
tremendous popularity and research interest. Over the last four
decades, researchers have reported a number of neural network
paradigms, however, the newest of these have not appeared in book
form-until now. Recent Advances in Artificial Neural Networks
collects the latest neural network paradigms and reports on their
promising new applications. World-renowned experts discuss the use
of neural networks in pattern recognition, color induction,
classification, cluster detection, and more. Application engineers,
scientists, and research students from all disciplines with an
interest in considering neural networks for solving real-world
problems will find this collection useful.
* Provides up-to-date coverage of neural network paradigms and
applications* Presents the work of internationally renowned
experts* Addresses many real-world applications such as pattern
recognition, cluster detection and labeling, and process
supervision* Offers information valuable to anyone interested in
applying neural networks to real-world problems
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