Feed-Forward Neural Networks
Vector Decomposition Analysis, Modelling and Analog Implementation
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Word Count
64,000 words, Guess
Page Count
256 pages
Physical Format
Electronic resource
Identifiers
- Internet Archivefeedforwardneura00anne
- ISBN-101461359902
- ISBN-101461523370
- ISBN-139781461359906
- ISBN-139781461523376
and 4 more
- OCLC Control Number852790562
- Better World Books9781461359906
- Better World Books9781461523376
- Open LibraryOL27038313M
Classifications
- DDC621.3815
- LCCTK7888.4
- LCCTK7888.4TK1-9971QC17
and 1 more
- LCCTK7867-7867.5
Description
Feed-Forward Neural Networks: Vector Decomposition Analysis, Modelling and Analog Implementation presents a novel method for the mathematical analysis of neural networks that learn according to the back-propagation algorithm. The book also discusses some other recent alternative algorithms for hardware implemented perception-like neural networks. The method permits a simple analysis of the learning behaviour of neural networks, allowing specifications for their building blocks to be readily obtained. Starting with the derivation of a specification and ending with its hardware implementation, analog hard-wired, feed-forward neural networks with on-chip back-propagation learning are designed in their entirety. On-chip learning is necessary in circumstances where fixed weight configurations cannot be used. It is also useful for the elimination of most mis-matches and parameter tolerances that occur in hard-wired neural network chips. Fully analog neural networks have several advantages over other implementations: low chip area, low power consumption, and high speed operation. Feed-Forward Neural Networks is an excellent source of reference and may be used as a text for advanced courses.
Subjects
Series Statement
- The Springer International Series in Engineering and Computer Science -- 314
- International series in engineering and computer science -- 314.
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