Robust filtering for continuous-time stochastic uncertain systems with relative entropy constraints

V. Ugrinovskii, I. Petersen
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Abstract

In this paper, we consider a filtering problem for stochastic uncertain systems. The uncertainty in the system is characterized in terms of an uncertain probability distribution on the noise input. This uncertainty is assumed to satisfy a certain relative entropy constraint. The solution to a specially parametrized risk-sensitive stochastic filtering problem is used to construct a filter for the uncertain system which guarantees a certain upper bound on the filtering error. This solution is obtained by solving a pair of algebraic Riccati equations. The corresponding filtering error bound holds for all admissible uncertainties.
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具有相对熵约束的连续时间随机不确定系统的鲁棒滤波
本文研究随机不确定系统的滤波问题。系统的不确定性表现为噪声输入的不确定概率分布。假定这种不确定性满足一定的相对熵约束。利用一个特殊参数化风险敏感随机滤波问题的解,构造了一个保证滤波误差有上界的不确定系统的滤波器。这个解是通过求解一对代数里卡第方程得到的。相应的滤波误差界适用于所有允许的不确定性。
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