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Introducing robustness in controllability of neuronal networks

机译:在神经网络的可控制性中引入鲁棒性

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This paper addresses robust multiobjective identification of driver nodes in the neuronal network of a cat's brain, in which uncertainties in determination of driver nodes and control gains are considered. A framework by including interval uncertainties is proposed for robust controllability. It is revealed that the existence of uncertainties in choosing driver nodes and designing control gains heavily affect the controllability of neuronal networks.
机译:本文针对猫脑神经网络中的驱动器节点进行鲁棒的多目标识别,其中考虑了确定驱动器节点和控制增益的不确定性。提出了一种通过包含区间不确定性的框架来实现稳健的可控性。结果表明,在选择驱动节点和设计控制增益方面存在不确定性,这严重影响了神经网络的可控制性。

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