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Equalized Recovery State Estimators for Linear Systems with Delayed and Missing Observations

机译:用于线性系统的均等恢复状态估计,具有延迟和缺失的观测

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This paper presents a dynamic state observer design for discrete-time linear time-varying systems that robustly achieves equalized recovery despite delayed or missing observations, where the set of all temporal patterns for the missing or delayed data is modeled by a finite-length language. By introducing a mapping of the language onto a reduced event-based language, we design a state estimator that adapts based on the history of available data at each step, and satisfies equalized recovery for all patterns in the reduced language. In contrast to existing equalized recovery estimators, the proposed design considers the equalized recovery level as a decision variable, which enables us to directly obtain the global minimum for the intermediate recovery level, resulting in improved estimation performance. Finally, we demonstrate the effectiveness of the proposed observer when compared to existing approaches using several illustrative examples.
机译:本文提供了一种动态状态观察设计,用于离散时间线性时变系统,尽管延迟或丢失的观察,但缺失或延迟数据的所有时间模式集的集合是由有限长度的语言建模的。 通过将语言的映射映射到减少的基于事件的语言中,我们设计了一种基于每个步骤的可用数据历史的状态估计器,并且满足缩小语言中所有模式的均衡恢复。 与现有的均等恢复估计器相比,所提出的设计将均衡恢复级别视为决策变量,这使我们能够直接获得中间恢复级别的全局最小值,从而提高了估计性能。 最后,我们展示了与使用若干说明性实例相比的拟议观察者的有效性。

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