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Sparse feedback synthesis via the alternating direction method of multipliers

机译:通过乘法器交替方向法进行稀疏反馈合成

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We study the design of feedback gains that strike a balance between the H2 performance of distributed systems and the sparsity of controller. Our approach consists of two steps. First, we identify sparsity patterns of feedback gains by incorporating sparsity-promoting penalty functions into the H2 problem, where the added terms penalize the number of communication links in the distributed controller. Second, we optimize feedback gains subject to structural constraints determined by the identified sparsity patterns. In the first step, we identify sparsity structure of feedback gains using the alternating direction method of multipliers, which is a powerful algorithm well-suited to large optimization problems. This method alternates between optimizing the sparsity and optimizing the closed-loop H2 norm, which allows us to exploit the structure of the corresponding objective functions. In particular, we take advantage of the separability of sparsity-promoting penalty functions to decompose the minimization problem into sub-problems that can be solved analytically. An example is provided to illustrate the effectiveness of the developed approach.
机译:我们研究反馈增益的设计,该设计在分布式系统的H2性能和控制器的稀疏性之间取得平衡。我们的方法包括两个步骤。首先,我们通过将稀疏性促进惩罚函数纳入H2问题中来确定反馈增益的稀疏性模式,其中添加的术语会惩罚分布式控制器中的通信链路数量。其次,我们根据确定的稀疏模式确定的结构约束来优化反馈增益。第一步,我们使用乘法器的交替方向方法确定反馈增益的稀疏结构,这是一种非常适合大型优化问题的强大算法。这种方法在优化稀疏性和优化闭环H2范式之间交替进行,这使我们能够利用相应目标函数的结构。特别是,我们利用稀疏促进罚函数的可分离性,将极小化问题分解为可以解析解决的子问题。提供了一个示例来说明所开发方法的有效性。

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