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Kernel-Based Simultaneous Parameter-State Estimation for Continuous-Time Systems

机译:基于内核的连续时间系统的同时参数估计

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摘要

In this article, the problem of jointly estimating the state and the parameters of continuous-time systems is addressed. Making use of suitably designed Volterra integral operators, the proposed estimator does not need the availability of time derivatives of the measurable signals, and the dependence on the unknown initial conditions is removed. As a result, the estimates converge to the true values in arbitrarily short time in a noise-free scenario. In the presence of bounded measurement and process disturbances, the estimation error is shown to be bounded. The numerical implementation aspects are dealt with, and extensive simulation results are provided showing the effectiveness of the estimator.
机译:在本文中,解决了共同估计状态和连续时间系统参数的问题。利用适当设计的Volterra积分运算符,所提出的估计器不需要可测量信号的时间衍生物的可用性,并且去除对未知初始条件的依赖性。结果,估计在无噪声场景中会聚到任意短的时间中的真实值。在存在有界测量和过程干扰的情况下,估计误差被示出为界定。数值实现方面是处理的,提供了广泛的模拟结果,显示了估计器的有效性。

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