Open Access
2013 Convergence and Stability of the Split-Step θ -Milstein Method for Stochastic Delay Hopfield Neural Networks
Qian Guo, Wenwen Xie, Taketomo Mitsui
Abstr. Appl. Anal. 2013: 1-12 (2013). DOI: 10.1155/2013/169214

Abstract

A new splitting method designed for the numerical solutions of stochastic delay Hopfield neural networks is introduced and analysed. Under Lipschitz and linear growth conditions, this split-step θ-Milstein method is proved to have a strong convergence of order 1 in mean-square sense, which is higher than that of existing split-step θ-method. Further, mean-square stability of the proposed method is investigated. Numerical experiments and comparisons with existing methods illustrate the computational efficiency of our method.

Citation

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Qian Guo. Wenwen Xie. Taketomo Mitsui. "Convergence and Stability of the Split-Step θ -Milstein Method for Stochastic Delay Hopfield Neural Networks." Abstr. Appl. Anal. 2013 1 - 12, 2013. https://doi.org/10.1155/2013/169214

Information

Published: 2013
First available in Project Euclid: 27 February 2014

zbMATH: 1271.92003
MathSciNet: MR3039182
Digital Object Identifier: 10.1155/2013/169214

Rights: Copyright © 2013 Hindawi

Vol.2013 • 2013
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