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Status已发表Published
TitleGlobal Well-Posedness and Dynamical Behavior of Delayed Reaction-Diffusion BAM Neural Networks Driven by Wiener Processes
Creator
Date Issued2018
Source PublicationIEEE Access
ISSN2169-3536
Volume6Pages:69265-69278
Abstract

This paper studies the global existence and uniqueness as well as asymptotic behavior of the reaction-diffusion bidirectional associative memory neural networks with S-type distributed delays and infinite dimensional Wiener processes. The conspicuous characteristics of this system are neurons in one layer interacting with neurons in another layer and the noise which disturbed this system has both time and spatial structure. First, several inequalities are proposed and proved for the preparation of future study. Then, the system is coped in the framework of semigroup theory and functional space. Furthermore, the local existence and uniqueness of mild solution for this system is proven by using the contraction mapping principle coupled with many functional inequalities such as Young inequality, Burkholder-Davis-Gundy inequality, Poincaré inequality. The global well-posedness are proven through a prior estimate from constructing appropriate Lyapunov-Krasovskii functional. Moreover, the existence of equilibrium is solved by using the topological degree theory and homotopy invariance. At last, the globally exponential stability of the equilibrium in the mean square sense is studied by constructing appropriate vector Lyapunov-Krasovskii functional and using an improved inequality proposed by us. The criteria of stability are given in the form of matrix form. It is easy to verify them in the computer and they will have a wider application. We give an example to examine the availability of our result, and the code is performed in Matlab. The approach used in this paper can also be extended to other systems.

Keywordexistence and uniqueness Lyapunov-Krasovskii functional Reaction-diffusion BAM neural network S-type delays Wiener processes
DOI10.1109/ACCESS.2018.2880423
URLView source
Indexed BySCIE
Language英语English
WOS Research AreaComputer Science ; Engineering ; Telecommunications
WOS SubjectComputer Science, Information Systems ; Engineering, Electrical & Electronic ; Telecommunications
WOS IDWOS:000452758200001
Scopus ID2-s2.0-85056523353
Citation statistics
Cited Times:9[WOS]   [WOS Record]     [Related Records in WOS]
Document TypeJournal article
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/10729
CollectionResearch outside affiliated institution
Corresponding AuthorLiang, Xiao
Affiliation
1.College of Mathematics and System Science,Shandong University of Science and Technology,Qingdao,266590,China
2.Institute of Applied Physics and Computational Mathematics,Beijing,100094,China
Recommended Citation
GB/T 7714
Liang, Xiao,Wang, Ruili. Global Well-Posedness and Dynamical Behavior of Delayed Reaction-Diffusion BAM Neural Networks Driven by Wiener Processes[J]. IEEE Access, 2018, 6: 69265-69278.
APA Liang, Xiao, & Wang, Ruili. (2018). Global Well-Posedness and Dynamical Behavior of Delayed Reaction-Diffusion BAM Neural Networks Driven by Wiener Processes. IEEE Access, 6, 69265-69278.
MLA Liang, Xiao,et al."Global Well-Posedness and Dynamical Behavior of Delayed Reaction-Diffusion BAM Neural Networks Driven by Wiener Processes". IEEE Access 6(2018): 69265-69278.
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