A noise‐tolerant fuzzy‐type zeroing neural network for robust synchronization of chaotic systems

计算机科学 同步(交流) 噪音(视频) 趋同(经济学) 模糊逻辑 人工神经网络 控制理论(社会学) 混乱的 人工智能 控制(管理) 经济 经济增长 计算机网络 频道(广播) 图像(数学)
作者
Xin Liu,Lv Zhao,Jie Jin
出处
期刊:Concurrency and Computation: Practice and Experience [Wiley]
卷期号:36 (22) 被引量:11
标识
DOI:10.1002/cpe.8218
摘要

Summary As a significant research issue in control and science field, chaos synchronization has attracted wide attention in recent years. However, it is difficult for traditional control methods to realize synchronization in predefined time and resist external interference effectively. Inspired by the excellent performance of zeroing neural network (ZNN) and the wide application of fuzzy logic system (FLS), a noise‐tolerant fuzzy‐type zeroing neural network (NTFTZNN) with fuzzy time‐varying convergent parameter is proposed for the synchronization of chaotic systems in this paper. Notably the fuzzy parameter generated from FLS combined with traditional convergent parameter embedded into this NTFTZNN can adjust the convergence rate according to the synchronization errors. For the sake of emphasizing the advantages of NTFTZNN model, other three sets of contrast models (FTZNN, VPZNN, and PTZNN) are constructed for the purpose of comparison. Besides, the predefined‐time convergence and noise‐tolerant ability of NTFTZNN model are distinctly demonstrated by detailed theoretical analysis. Furthermore, synchronization simulation experiments including two chaotic systems with different dimensions are provided to verify the related mathematical theories. Finally, the schematic of NTFTZNN model for chaos synchronization is accomplished completely through Simulink, further accentuating its effectiveness and potentials in practical applications.

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