Discrete Mathematics of Neural Networks

Discrete Mathematics of Neural Networks Selected Topics - SIAM Monographs on Discrete Mathematics and Applications

Hardback (30 Apr 2001)

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Publisher's Synopsis

This concise, readable book provides a sampling of the very large, active, and expanding field of artificial neural network theory. It considers select areas of discrete mathematics linking combinatorics and the theory of the simplest types of artificial neural networks. Neural networks have emerged as a key technology in many fields of application, and an understanding of the theories concerning what such systems can and cannot do is essential.

The author discusses interesting connections between special types of Boolean functions and the simplest types of neural networks. Some classical results are presented with accessible proofs, together with some more recent perspectives, such as those obtained by considering decision lists. In addition, probabilistic models of neural network learning are discussed. Graph theory, some partially ordered set theory, computational complexity, and discrete probability are among the mathematical topics involved. Pointers to further reading and an extensive bibliography make this book a good starting point for research in discrete mathematics and neural networks.

Book information

ISBN: 9780898714807
Publisher: SIAM - Society for Industrial and Applied Mathematics
Imprint: Society for Industrial and Applied Mathematics
Pub date:
DEWEY: 006.320151
DEWEY edition: 21
Language: English
Number of pages: 131
Weight: 495g
Height: 229mm
Width: 152mm
Spine width: 12mm