对称性对神经网络结构可控性的影响:透视。

Andrew J Whalen, Sean N Brennan, Timothy D Sauer, Steven J Schiff
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引用次数: 0

摘要

动态系统或网络的可控性描述了一组给定的控制输入是否能完全施加影响,以推动系统达到所需的状态。结构可控性发展了网络中导致不可控性的典型耦合结构,但并不考虑网络中包含的显式对称性的影响。最近的研究利用这一框架确定了完全控制复杂网络所需的最佳执行器的最小数量和位置。在具有结构对称性的系统或网络中,群表示理论提供了网络中包含的对称性如何影响其可控性的机制,从而影响这些关键致动器的位置,这是科学界从生态、生物和人造网络到工程系统和设计广泛关注的话题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Effects Of Symmetry On The Structural Controllability Of Neural Networks: A Perspective.

The controllability of a dynamical system or network describes whether a given set of control inputs can completely exert influence in order to drive the system towards a desired state. Structural controllability develops the canonical coupling structures in a network that lead to un-controllability, but does not account for the effects of explicit symmetries contained in a network. Recent work has made use of this framework to determine the minimum number and location of the optimal actuators necessary to completely control complex networks. In systems or networks with structural symmetries, group representation theory provides the mechanisms for how the symmetry contained in a network will influence its controllability, and thus affects the placement of these critical actuators, which is a topic of broad interest in science from ecological, biological and man-made networks to engineering systems and design.

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