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Empirical estimators for stochastically forced nonlinear systems: Observability, controllability and the invariant measure

机译:随机强迫非线性系统的经验估计:可观测性,可控制性和不变测度

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We introduce a data-based approach to estimating key quantities which arise in the study of nonlinear control systems and random nonlinear dynamical systems. Our approach hinges on the observation that much of the existing linear theory may be readily extended to nonlinear systems — with a reasonable expectation of success — once the nonlinear system has been mapped into a high or infinite dimensional feature space. In particular, we develop computable, non-parametric estimators approximating controllability and observability energy functions for nonlinear systems, and study the ellipsoids they induce. In all cases the relevant quantities are estimated from simulated or observed data. It is then shown that the controllability energy estimator provides a key means for approximating the invariant measure of an ergodic, stochastically forced nonlinear system.
机译:我们介绍了一种基于数据的方法来估计在非线性控制系统和随机非线性动力系统的研究中出现的关键量。我们的方法基于以下观察结果:一旦将非线性系统映射到高维或无穷维特征空间中,就可以很容易地将许多现有的线性理论扩展到非线性系统,并具有合理的成功预期。特别是,我们开发了可计算的,非参数的估计器,用于近似非线性系统的可控性和可观察性能量函数,并研究了它们所诱导的椭球。在所有情况下,相关数量都是根据模拟或观察到的数据估算得出的。然后表明,可控能量估计器提供了一种关键手段,可以近似于遍历性,随机强迫非线性系统的不变度量。

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  • 来源
    《American Control Conference;ACC 》|2012年|p.4142- 4148|共7页
  • 会议地点 Montreal(CA)
  • 作者

    Bouvrie, Jake;

  • 作者单位

    Department of Mathematics Duke University Durham NC 27708 USA;

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