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Constrained state estimation for nonlinear discrete-time systems: stability and moving horizon approximations

机译:非线性离散时间系统的约束状态估计:稳定性和运动层近似

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摘要

State estimator design for a nonlinear discrete-time system is a challenging problem, further complicated when additional physical insight is available in the form of inequality constraints on the state variables and disturbances. One strategy for constrained state estimation is to employ online optimization using a moving horizon approximation. We propose a general theory for constrained moving horizon estimation. Sufficient conditions for asymptotic and bounded stability are established. We apply these results to develop a practical algorithm for constrained linear and nonlinear state estimation. Examples are used to illustrate the benefits of constrained state estimation. Our framework is deterministic.
机译:非线性离散时间系统的状态估计器设计是一个具有挑战性的问题,当以状态变量和扰动的不等式约束的形式获得其他物理洞察力时,该问题将变得更加复杂。约束状态估计的一种策略是使用移动视界近似进行在线优化。我们提出了一个受约束的运动层估计的通用理论。建立了渐近和有界稳定性的充分条件。我们应用这些结果来开发一种用于约束线性和非线性状态估计的实用算法。实例用于说明约束状态估计的好处。我们的框架是确定性的。

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