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Towards Data-Driven Real-Time Hybrid Simulation: Adaptive Modeling of Control Plants

机译:走向数据驱动的实时混合模拟:控制植物的自适应建模

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摘要

We present a method for control in real-time hybrid simulation (RTHS) that relies exclusively on data processing. Our approach bypasses conventional control techniques, which presume availability of a mathematical model for the description of the control plant (e.g., the transfer system and the experimental substructure) and applies a simple plug 'n play framework for tuning of an adaptive inverse controller for use in a feedforward manner, avoiding thus any feedback loops. Our methodology involves (i) a forward adaptation part, in which a noise-free estimate of the control plant's dynamics is derived; (ii) an inverse adaptation part that performs estimation of the inverse controller; and (iii) the integration of a standard polynomial extrapolation algorithm for the compensation of the delay. One particular advantage of the method is that it requires tuning of a limited set of hyper-parameters (essentially three) for proper adaptation. The efficacy of our framework is assessed via implementation on a virtual RTHS (vRTHS) benchmark problem that was recently made available to the community. The attained results indicate that data-driven RTHS may form a competitive alternative to conventional control.
机译:我们提出了一种在实时混合仿真(第RTH)中的控制方法,它专门依赖于数据处理。我们的方法绕过传统的控制技术,该技术假设用于对照工厂的描述(例如,转移系统和实验子结构)的数学模型的可用性,并应用一个简单的插头N播放框架,以便调整自适应逆控制器进行使用以前馈方式,避免任何反馈循环。我们的方法涉及(i)前进的适应部分,其中导出了对照工厂的动态的无噪声估计; (ii)执行逆控制器估计的反向适配部分; (iii)标准多项式外推算法的集成延迟补偿。该方法的一个特定优点是它需要调整有限的超参数(基本上三个)以进行适当的适应。我们的框架的功效通过在最近向社区提供的虚拟第(VRTH)基准问题上进行评估。达到的结果表明,数据驱动的第三可以形成常规控制的竞争替代品。

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