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Computing the allowable uncertainty of sparse control configurations

机译:计算稀疏控制配置的允许不确定性

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Given a generic Control Configuration Selection (CCS) protocol and a plant uncertainty description isomorph to a unit ball in a finite-dimensional L-P space, we search for the largest perturbation radius for which the nominal configuration remains the preferred one. To this aim, we develop a randomized search algorithm based on sampling the uncertain plants and characterize its statistical performance. By adopting an intuitive accuracy measure that relates to the volume of points in which the preferred configuration differs from the nominal one, we devise a generally applicable strategy that allows for arbitrarily accurate estimates, in a specific probabilistic sense, depending on the number of uncertain plants that are sampled. We benchmark the proposed algorithm using examples from the literature and in a data center flow provisioning problem. In the latter setting, we identify the uncertainty description with the space of controls and sample the "uncertain" plants from an underlying nonlinear model. (C) 2020 Elsevier Ltd. All rights reserved.
机译:给定通用控制配置选择(CCS)协议和工厂不确定描述在有限维L-P空间中的单位球中的异构,我们搜索标称配置仍然是优选的扰动半径。为此目的,我们基于采样不确定植物的随机搜索算法,并表征其统计性能。通过采用涉及优选配置与标称第一配置不同的点的直观的精度度量,我们设计了一般适用的策略,允许在特定概率意义上任意准确的估计,具体取决于不确定的植物的数量这是抽样的。我们使用来自文献和数据中心流量配置问题的示例来基准提出的算法。在后一种环境中,我们确定了与控制的空间的不确定性描述,并从底层非线性模型上采样“不确定”植物。 (c)2020 elestvier有限公司保留所有权利。

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