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Generation of excitation signals with prescribed autocorrelation for input and output constrained systems

机译:为输入和输出受限系统生成具有规定自相关的激励信号

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摘要

This paper considers the problem of realizing an input signal with a desired autocorrelation sequence satisfying both input and output constraints for the system it is to be applied to. This is a important problem in system identification. Firstly, the properties of the identified model are highly dependent on the used excitation signal during the experiment and secondly, on real processes, due to actuator saturation and safety considerations, it is important to constrain the inputs and outputs of the process. The proposed method is formulated as a nonlinear model predictive control problem. In general this corresponds to solving a non-convex optimization problem. Here we show how this can be solved in one particular case. For this special case convergence is established for generation of pseudo-white noise. The performance of the algorithm is successfully verified by simulations for a few different autocorrelation sequences, with and without input and output constraints.
机译:本文考虑了一个问题,即要实现一个具有所需自相关序列的输入信号,该序列既要满足要应用的系统的输入约束又要满足输出约束。这是系统识别中的重要问题。首先,所识别模型的属性高度依赖于实验期间使用的激励信号,其次,由于致动器饱和和安全考虑,在实际过程中,重要的是限制过程的输入和输出。将该方法表述为非线性模型预测控制问题。通常,这对应于解决非凸优化问题。在这里,我们展示了如何在一种特定情况下解决此问题。对于这种特殊情况,建立了收敛以产生伪白噪声。该算法的性能已通过仿真,在有和没有输入和输出约束的情况下,通过几个不同的自相关序列进行了验证。

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