DocumentCode :
1582486
Title :
Lossless cellular neural networks
Author :
Schlaffer, A. ; Nossek, J.A. ; Tanaka, M.
Author_Institution :
Inst. for Network Theory & Circuit Design, Tech. Univ. of Munich, Germany
fYear :
1996
Firstpage :
169
Lastpage :
174
Abstract :
Since their introduction, cellular neural networks have turned out to be useful architectures for the solution of many problems, e.g. in image processing or in the simulation of partial differential equations. Therefore, there have been several attempts to introduce cell circuits suitable for large-scale integration. Up to now, all of these cells need energy and therefore power supply. Recently attempts have been made to build up circuitry able to work without an external energy supply by using the energy stored in the initial state. This principle can provide two major advantages. First, since no or at least not much energy is dissipated during computation, the circuit does not produce much heat. Therefore, there are no “hot spots” in integrated circuits, which limit integration density and operation speed. Furthermore, since there is no need for a power supply, the absence of voltage supply lines supports a high integration density. In this work an architecture for the realisation of a lossless CNN is proposed. Further, since standard learning algorithms turn out to fail for lossless systems, a way to amend these is introduced
Keywords :
backpropagation; cellular neural nets; large scale integration; neural chips; neural net architecture; nonlinear network synthesis; recurrent neural nets; cell circuits; high integration density; large-scale integration; lossless cellular neural networks; recurrent backpropagation; Cellular neural networks; Circuit simulation; Circuit synthesis; Coupling circuits; Differential equations; Electronic mail; Image processing; Jacobian matrices; Large scale integration; Power supplies;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cellular Neural Networks and their Applications, 1996. CNNA-96. Proceedings., 1996 Fourth IEEE International Workshop on
Conference_Location :
Seville
Print_ISBN :
0-7803-3261-X
Type :
conf
DOI :
10.1109/CNNA.1996.566515
Filename :
566515
Link To Document :
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