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Distributed sampling rate adaptation for networked control systems

机译:网络控制系统的分布式采样率适配

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Building networked control systems is a promising direction that promotes the evolution of the traditional control systems. The ability of using different sampling rates in control systems provides the flexibility for adapting their resource needs based on the dynamic networking environment. This paper studies the dynamic rate adaptation problem for networked control systems. In particular, we define a utility function which quantifies the relationship between the performance of a control system and its sampling rate. Then we formulate the rate adaptation problem as an optimal resource allocation problem, where the aggregated utility is maximized. We further present a price-based algorithm, where prices are generated to reflect the network utilization penalties and are used as the basis for rate adaptation. We formally prove the stability of our algorithm. The rate adaptation algorithm is further evaluated in an integrated simulation environment that consists of Matlab and ns-2, which allows highly accurate evaluation of network effects on the NCS performance. The experiment results show that our algorithm is able to provide agile and stable sampling rate adaptation.
机译:建立网络控制系统是一种有希望的方向,促进传统控制系统的演变。在控制系统中使用不同采样率的能力提供了基于动态网络环境来调整其资源需求的灵活性。本文研究了网络控制系统的动态率适应问题。特别是,我们定义了一个实用程序功能,该函数量化了控制系统的性能与其采样率之间的关系。然后,我们将速率适应问题作为最佳资源分配问题,其中聚合实用程序最大化。我们进一步提出了一种基于价格的算法,其中产生了价格以反映网络利用率处罚,并被用作速率适应的基础。我们正式证明了算法的稳定性。进一步评估了由MATLAB和NS-2组成的集成模拟环境中进一步评估了速率适应算法,这允许高度准确地评估NCS性能的网络效应。实验结果表明,我们的算法能够提供敏捷和稳定的采样率适应。

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