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首页> 外文期刊>Neural Networks: The Official Journal of the International Neural Network Society >A new fixed-time stability theorem and its application to the fixed-time synchronization of neural networks
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A new fixed-time stability theorem and its application to the fixed-time synchronization of neural networks

机译:一种新的固定时间稳定性定理及其在神经网络的固定时间同步中的应用

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摘要

In this paper, we derive a new fixed-time stability theorem based on definite integral, variable substitution and some inequality techniques. The fixed-time stability criterion and the upper bound estimate formula for the settling time are different from those in the existing fixed-time stability theorems. Based on the new fixed-time stability theorem, the fixed-time synchronization of neural networks is investigated by designing feedback controller, and sufficient conditions are derived to guarantee the fixed-time synchronization of neural networks. To show the usability and superiority of the obtained theoretical results, we propose a secure communication scheme based on the fixed-time synchronization of neural networks. Numerical simulations illustrate that the new upper bound estimate formula for the settling time is much tighter than those in the existing fixed-time stability theorems. Moreover, the plaintext signals can be recovered according to the new fixed-time stability theorem, while the plaintext signals cannot be recovered according to the existing fixed-time stability theorems. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在本文中,我们基于明确积分,可变替代和一些不等式技术推导出新的固定时间稳定性定理。固定时间稳定性标准和沉降时间的上​​束估计公式与现有的固定时间稳定定理中的稳定时间不同。基于新的固定时间稳定性定理,通过设计反馈控制器来研究神经网络的固定时间同步,并导出足够的条件以保证神经网络的固定时间同步。为了显示所获得的理论结果的可用性和优越性,我们提出了一种基于神经网络的定时同步的安全通信方案。数值模拟说明了沉降时间的新上限估计公式比现有的固定时间稳定定理中的稳定时间更紧凑。此外,可以根据新的固定时间稳定性定理可以恢复明文信号,而无法根据现有的固定时间稳定定理恢复明文信号。 (c)2020 elestvier有限公司保留所有权利。

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