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Discrete-Time Recurrent Neural Networks With Complex-Valued Linear Threshold Neurons

89

Citations

24

References

2009

Year

Abstract

This brief discusses a class of discrete-time recurrent neural networks with complex-valued linear threshold neurons. It addresses the boundedness, global attractivity, and complete stability of such networks. Some conditions for those properties are also derived. Examples and simulation results are used to illustrate the theory.

References

YearCitations

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