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Probabilistic Robust Control Design of Polynomial Vector Fields

机译:多项式矢量字段的概率鲁棒控制设计

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This paper presents a probabilistic approach to the design of robust controllers for nonlinear systems, in particular, polynomial vector fields in the presence of parametric uncertainty. The objective of the design is to minimize the system's probability of instability subject to the uncertainty described by statistical distributions. Based on the convexity property of a recently proposed stability criterion, which could be viewed as a dual to Lyapunov's second theorem, the probabilistic robust control problem for polynomial vector fields is formulated into a stochastic convex optimization problem. Stochastic gradient algorithms are used to search a generally parameterized nonlinear control law that minimizes the probability of instability.
机译:本文介绍了用于非线性系统的鲁棒控制器的概率方法,特别是在存在参数不确定的情况下的多项式矢量场。设计的目的是最小化系统对统计分布描述的不确定性的不稳定概率。基于最近提出的稳定性标准的凸性属性,可以将其视为双向定理的双向定理,将多项式矢量场的概率鲁棒控制问题分为随机凸起优化问题。随机梯度算法用于搜索大致参数化的非线性控制规律,其最小化不稳定性的概率。

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