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首页> 外文期刊>Automatica >A design algorithm using external perturbation to improve Iterative Feedback Tuning convergence
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A design algorithm using external perturbation to improve Iterative Feedback Tuning convergence

机译:利用外部扰动改善迭代反馈调整收敛的设计算法

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摘要

Iterative Feedback Tuning constitutes an attractive control loop tuning method for processes in the absence of process insight. It is a purely data driven approach for optimization of the loop performance. The standard formulation ensures an unbiased estimate of the loop performance cost function gradient, which is used in a search algorithm for minimizing the performance cost. A slow rate of convergence of the tuning method is often experienced when tuning for disturbance rejection. This is due to a poor signal to noise ratio in the process data. A method is proposed for increasing the data information content by introducing an optimal perturbation signal in the tuning algorithm. The theoretical analysis is supported by a simulation example where the proposed method is compared to an existing method for acceleration of the convergence by use of optimal prefilters.
机译:在缺乏过程洞察力的情况下,迭代反馈调整构成了一种有吸引力的过程控制环调整方法。它是用于优化循环性能的纯数据驱动方法。标准公式可确保对环路性能成本函数梯度的无偏估计,该估计用于搜索算法中以最小化性能成本。在进行干扰抑制调整时,常常会遇到调整方法收敛速度慢的问题。这是因为过程数据中的信噪比很差。提出了一种通过在调谐算法中引入最佳扰动信号来增加数据信息内容的方法。理论分析得到了一个仿真示例的支持,在该示例中,将所建议的方法与使用最佳预滤波器来加速收敛的现有方法进行了比较。

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