DocumentCode :
3689629
Title :
Artificial complex neurons with half-plane-like and angle-like activation function
Author :
Vladyslav Kotsovsky;Fedir Geche;Anatoliy Batyuk
Author_Institution :
Inf. Managing Syst. &
fYear :
2015
Firstpage :
57
Lastpage :
59
Abstract :
The paper deals with the problems of Boolean functions realization on neural-like units with complex weight coefficients. The relation between classes of realizable function is considered for half-plane-like activation function. We also introduce the concept of sets separability, corresponding to our notion of neuron. The iterative online learning algorithm is proposed and sufficient conditions of its convergence are given. We also consider complex neurons with angle-type activation functions.
Keywords :
"Neurons","Boolean functions","Biological neural networks","Electronic mail","Computer science","Sufficient conditions","Convergence"
Publisher :
ieee
Conference_Titel :
Scientific and Technical Conference "Computer Sciences and Information Technologies" (CSIT), 2015 Xth International
Type :
conf
DOI :
10.1109/STC-CSIT.2015.7325430
Filename :
7325430
Link To Document :
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