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Track Control of Complex-valued Recurrent Neural Networks Based on the Hanaly’s Inequality

机译:基于汉语不等式的复合价常规神经网络轨道控制

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This paper discusses the track control problem of complex-valued neural networks (CVNNs) with time delay. By defining the suitable norm, we directly investigate globally asymptotically stable of CVNNs. With the Hanaly's inequality and analysis techniques, we derive a sufficient condition which can make the state of CVNNs globally exponentially track the given reference trace. At last, one illustrative example verifies our result.
机译:本文讨论了随着时间延迟的复数神经网络(CVNNS)的轨道控制问题。通过定义合适的标准,我们直接调查全球渐近稳定的CVNN。随着汉语的不平等和分析技术,我们得出了足够的条件,这可以使CVNN的状态全球指数呈现给定的参考迹线。最后,一个说明性示例验证了我们的结果。

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