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Lag Synchronization of Switched Neural Networks via Neural Activation Function and Applications in Image Encryption

机译:通过神经激活函数的开关神经网络滞后同步及其在图像加密中的应用

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This paper investigates the problem of global exponential lag synchronization of a class of switched neural networks with time-varying delays via neural activation function and applications in image encryption. The controller is dependent on the output of the system in the case of packed circuits, since it is hard to measure the inner state of the circuits. Thus, it is critical to design the controller based on the neuron activation function. Comparing the results, in this paper, with the existing ones shows that we improve and generalize the results derived in the previous literature. Several examples are also given to illustrate the effectiveness and potential applications in image encryption.
机译:本文通过神经激活函数研究了一类时变时滞的开关神经网络的全局指数滞后同步问题及其在图像加密中的应用。在电路紧凑的情况下,该控制器取决于系统的输出,因为很难测量电路的内部状态。因此,基于神经元激活功能设计控制器至关重要。将本文的结果与现有的结果进行比较表明,我们对先前文献中得出的结果进行了改进和推广。还提供了几个示例来说明图像加密的有效性和潜在应用。

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