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首页> 外文期刊>Neural Networks, IEEE Transactions on >Lag Synchronization of Unknown Chaotic Delayed Yang–Yang-Type Fuzzy Neural Networks With Noise Perturbation Based on Adaptive Control and Parameter Identification
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Lag Synchronization of Unknown Chaotic Delayed Yang–Yang-Type Fuzzy Neural Networks With Noise Perturbation Based on Adaptive Control and Parameter Identification

机译:基于自适应控制和参数辨识的带有噪声摄动的未知混沌时滞Yang-Yang型模糊神经网络的时滞同步。

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This paper considers the lag synchronization (LS) issue of unknown coupled chaotic delayed Yang–Yang-type fuzzy neural networks (YYFCNN) with noise perturbation. Separate research work has been published on the stability of fuzzy neural network and LS issue of unknown coupled chaotic neural networks, as well as its application in secure communication. However, there have not been any studies that integrate the two. Motivated by the achievements from both fields, we explored the benefits of integrating fuzzy logic theories into the study of LS problems and applied the findings to secure communication. Based on adaptive feedback control techniques and suitable parameter identification, several sufficient conditions are developed to guarantee the LS of coupled chaotic delayed YYFCNN with or without noise perturbation. The problem studied in this paper is more general in many aspects. Various problems studied extensively in the literature can be treated as special cases of the findings of this paper, such as complete synchronization (CS), effect of fuzzy logic, and noise perturbation. This paper presents an illustrative example and uses simulated results of this example to show the feasibility and effectiveness of the proposed adaptive scheme. This research also demonstrates the effectiveness of application of the proposed adaptive feedback scheme in secure communication by comparing chaotic masking with fuzziness with some previous studies. Chaotic signal with fuzziness is more complex, which makes unmasking more difficult due to the added fuzzy logic.
机译:本文考虑了带有噪声扰动的未知耦合混沌延迟杨阳型模糊神经网络(YYFCNN)的滞后同步(LS)问题。关于模糊神经网络的稳定性和未知耦合混沌神经网络的LS问题及其在安全通信中的应用的单独研究工作已经发表。但是,还没有任何研究将两者结合在一起。出于这两个领域的成就,我们探索了将模糊逻辑理论整合到LS问题研究中的好处,并将这些发现应用于安全通信。基于自适应反馈控制技术和适当的参数识别,开发了几个充分的条件,以保证具有或没有噪声扰动的耦合混沌延迟YYFCNN的LS。本文研究的问题在许多方面更为普遍。文献中广泛研究的各种问题都可以视为本文研究结果的特例,例如完全同步(CS),模糊逻辑的影响和噪声扰动。本文提供了一个说明性示例,并使用该示例的仿真结果来证明所提出的自适应方案的可行性和有效性。这项研究还通过将混沌掩盖与模糊性与先前的研究进行比较,证明了所提出的自适应反馈方案在安全通信中的有效性。具有模糊性的混沌信号更加复杂,由于增加了模糊逻辑,使得掩盖更加困难。

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