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Customized algorithms for growing connected resistive networks

机译:定制的算法,用于增长连接的电阻网络

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Abstract: We consider the problem of adding edges to connected resistive networks in order to optimally enhance their performance. The performance is captured by the H 2 norm of the closed-loop network and the ? 1 regularization is introduced as a means to promote sparsity of the controller graph Laplacian. The resulting optimal control problem can be cast as a semidefinite program and standard interior point method solvers can be used to efficiently compute the optimal solution for small and medium size networks. In this paper, we develop two efficient customized algorithms for large-scale problems. Our customized algorithms are based on the proximal gradient method and the sequential quadratic approximation method. In the latter, the Newton direction is obtained using coordinate descent algorithm over the set of active variables. We provide comparison of these methods and show that both of them can be effectively employed to solve topology identification and optimal design problems for large-scale networks.
机译:摘要:我们考虑了在连接的电阻网络中增加边缘以优化其性能的问题。性能由闭环网络的H 2范数和?引入1正则化作为提高控制器图Laplacian稀疏性的一种方法。可以将生成的最优控制问题转换为半定程序,并且可以使用标准内点法求解器来有效地计算中小型网络的最优解。在本文中,我们针对大型问题开发了两种有效的定制算法。我们的定制算法基于近端梯度法和顺序二次逼近法。在后者中,使用坐标下降算法在活动变量集上获得牛顿方向。我们提供了这些方法的比较,并表明它们都可以有效地用于解决大规模网络的拓扑识别和最佳设计问题。

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