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B-Splines in Joint Parameter and State Estimation in Linear Time-Varying Systems

机译:线性时变系统中联合参数和状态估计中的B样条

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A kernel functional representation of linear time-varying systems is employed in conjunction with B-spline functional approximation techniques to construct non-asymptotic state and parameter estimators for LTV systems. Total observability of the estimated system must be assumed. Practical identifiability conditions for parametric estimation are also stated. In the absence of output measurement noise the observer provides almost exact reconstruction of the system state and delivers high fidelity functional estimates of the time varying system parameters. It also shares the usual superior features of algebraic observers such as independence of the initial conditions of the system and good noise attenuation properties. Other advantages of the kernel and B-spline based identification of linear time-varying systems are elucidated.
机译:线性时变系统的核函数表示与B样条函数逼近技术结合使用,构造了LTV系统的非渐近状态和参数估计器。必须假定估计系统的总可观测性。还说明了用于参数估计的实际可识别性条件。在没有输出测量噪声的情况下,观察者可以提供几乎精确的系统状态重构,并可以对时变的系统参数进行高保真度的功能估计。它还具有代数观察者通常的优越特征,例如系统初始条件的独立性和良好的噪声衰减特性。阐明了基于核和B样条的线性时变系统识别的其他优点。

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