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Deadbeat unknown-input state estimation and input reconstruction for linear discrete-time systems

机译:线性离散时间系统的Deadbeat未知输入状态估计和输入重建

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摘要

This paper considers discrete-time input reconstruction and state estimation assuming that the system has no invariant zeros, without assuming that the initial condition is known, and without assuming that at least one Markov parameter has full column rank. Algorithms based on the generalized inverse of a block-Toeplitz matrix are given for unknown-input state estimation and simultaneous input reconstruction and state estimation. In both cases, the unknown input is an arbitrary signal. Both algorithms are deadbeat, which means that exact input reconstruction and state estimation are achieved in a finite number of steps. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文认为,假设系统没有不变零,而不假设初始条件是已知的,并且不假设至少一个Markov参数具有全列等级,则假设系统没有不变零。 给出了基于块 - 脚踏矩阵的广义逆的算法,给出了未知输入状态估计和同时输入重建和状态估计。 在这两种情况下,未知输入是任意信号。 这两种算法都是Deadbeat,这意味着在有限数量的步骤中实现了精确的输入重建和状态估计。 (c)2019年elestvier有限公司保留所有权利。

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