DocumentCode :
2350298
Title :
Global model of neural networks, stability and learning
Author :
Baruch, Ieroham ; Stoyanov, Ivelin
Author_Institution :
Inst. for Inf. Technol., Bulgarian Acad. of Sci., Sofia, Bulgaria
fYear :
1995
fDate :
7-8 March 1995
Abstract :
A unified state-space representation of dynamical NN models, leading to a global NN vector-matricial state-space model of multilayer NN, is proposed. That NN model will be stable if system eigenvalues have negative real parts. A discrete version of NN model state-space equations, is also given. The behavior of that discrete-time model depends on the period of discretization. The discrete NN model will be stable if system eigenvalues are inside the unit circle. Method for transformation of the global discrete NN model in matrix-vectorial regression form, is given. Applying the square-root matricial identification method for NN learning, it is easy to obtain global stability of the learned NN. The applied learning method gives us the possibility to obtain simultaneously the parameters of mathematical models of different order. It is possible to choose the most appropriate model order by means of the obtained mean square learning error.
Keywords :
cerebellar model arithmetic computers; eigenvalues and eigenfunctions; learning (artificial intelligence); multilayer perceptrons; stability; state-space methods; discrete-time model; dynamical NN models; global model; learning; learning method; mathematical models; mean square learning error; multilayer NN; negative real parts; neural networks; square-root matricial identification method; stability; state-space representation; system eigenvalues; unit circle; vector-matricial state-space model; Books; Eigenvalues and eigenfunctions; Electronic mail; Equations; Information technology; Learning systems; Network topology; Neural networks; Nonhomogeneous media; Stability analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical and Electronics Engineers in Israel, 1995., Eighteenth Convention of
Conference_Location :
Tel Aviv, Israel
Print_ISBN :
0-7803-2498-6
Type :
conf
DOI :
10.1109/EEIS.1995.514162
Filename :
514162
Link To Document :
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