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Robust H_∞ filtering for uncertain differential linear repetitive processes

机译:不确定微分线性重复过程的鲁棒H_∞滤波

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摘要

The unique characteristic of a repetitive process is a series of sweeps or passes through a set of dynamics defined over a finite duration known as the pass length. At the end of each pass, the process is reset and the next time through the output, or pass profile, produced on the previous pass acts as a forcing function on, and hence contributes to, the dynamics of the new pass profile. They are hence a class of systems where a variable must be expressed in terms of two directions of information propagation (from pass-to-pass and along a pass, respectively) where the dynamics over the finite pass length are described by a matrix linear differential equation and from pass to pass by a discrete updating structure. This means that filtering/estimation theory/algorithms for, in particular, 2D discrete linear systems is not applicable. In this paper, we solve a general robust filtering problem with a view towards use in many applications where such an action will be required.
机译:重复过程的独特特征是在有限的持续时间内定义为通过长度的一系列扫描或通过一组动力学。在每次通过结束时,将重置该过程,并在下一次通过上一次通过生成的输出或通过配置文件时,将其作为强制函数,从而有助于新通过配置文件的动态。因此,它们是一类系统,其中变量必须按照信息传播的两个方向(分别通过传递和沿着传递)来表示,其中有限传递长度上的动力学由矩阵线性微分来描述。方程,并通过离散更新结构来回传递。这意味着特别是2D离散线性系统的滤波/估计理论/算法不适用。在本文中,我们解决了一个普遍的鲁棒性过滤问题,以期将其用于需要执行此操作的许多应用中。

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