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On the design of optimal input signals in system identification

机译:系统辨识中最佳输入信号的设计

摘要

The problem of designing optimal inputs in the identification of linear systems with unknown random parameters is considered using a Bayesian approach. The information matrix, which is positive definite for the class of systems analyzed, gives a measure of performance for the system inputs. The computation of the optimal closed-loop input mappings is shown to be a nontrivial exercise in adaptive control. Deterministic optimal inputs are shown to be easily computable. Numerical examples are given. A Kalman filter is used to estimate the parameters. A necessary condition for the Kalman filter not to diverge when applying linear feedback is also given.
机译:使用贝叶斯方法考虑了在识别未知随机参数的线性系统中设计最佳输入的问题。信息矩阵对于所分析的系统类别是肯定的,它给出了系统输入的性能度量。最佳闭环输入映射的计算显示为自适应控制中的一项重要任务。确定性最佳输入显示为易于计算的。给出了数值示例。卡尔曼滤波器用于估计参数。还给出了在应用线性反馈时卡尔曼滤波器不发散的必要条件。

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