LMI-based approach for global asymptotic stability analysis of continuous BAM neural networks

被引:5
作者
Zhang Sen-lin
Liu Mei-qin
机构
[1] Zhejiang University,School of Electrical Engineering
来源
Journal of Zhejiang University-SCIENCE A | 2005年 / 6卷 / 1期
关键词
Standard neural network model (SNNM); Bidirectional associative memory (BAM) neural network; Linear matrix inequality (LMI); Linear differential inclusion (LDI); Global asymptotic stability; A; TP183;
D O I
10.1631/BF02842474
中图分类号
学科分类号
摘要
Studies on the stability of the equilibrium points of continuous bidirectional associative memory (BAM) neural network have yielded many useful results. A novel neural network model called standard neural network model (SNNM) is advanced. By using state affine transformation, the BAM neural networks were converted to SNNMs. Some sufficient conditions for the global asymptotic stability of continuous BAM neural networks were derived from studies on the SNNMs' stability. These conditions were formulated as easily verifiable linear matrix inequalities (LMIs), whose conservativeness is relatively low. The approach proposed extends the known stability results, and can also be applied to other forms of recurrent neural networks (RNNs).
引用
收藏
页码:32 / 37
页数:5
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