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Statistical MIMO controller performance monitoring. Part I: Data-driven covariance benchmark

机译:统计MIMO控制器性能监控。第一部分:数据驱动的协方差基准

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摘要

In this paper, a data-based covariance benchmark is proposed for control performance monitoring. Within the covariance monitoring scheme, generalized eigenvalue analysis is used to extract the directions with the degraded or improved control performance against the benchmark. It is shown that the generalized eigenvalues and the covariance-based performance index are invariant to scaling of the data. A statistical inference method is further developed for the generalized eigenvalues and the corresponding confidence intervals are derived from asymptotic statistics. This procedure can be used to determine the directions or subspaces with significantly worse or better performance versus the benchmark. The covariance-based performance indices within the isolated worse and better performance subspaces are then derived to assess the performance degradation and improvement. Two simulated examples, a multiloop control and a multivariable MPC system, are provided to illustrate the utility of the proposed approach. Then an industrial wood waste burning power boiler unit is used to demonstrate the effectiveness of the method. (c) 2007 Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于数据的协方差基准,用于控制性能监测。在协方差监视方案中,使用广义特征值分析来提取控制性能相对于基准降低或改善的方向。结果表明,广义特征值和基于协方差的性能指标对于数据的缩放是不变的。针对广义特征值,进一步开发了一种统计推断方法,并且从渐近统计中得出了相应的置信区间。与基准相比,该过程可用于确定方向或子空间的性能明显较差或更好。然后导出孤立的性能较差和较好的子空间内基于协方差的性能指标,以评估性能下降和提高。提供了两个仿真示例,即多回路控制和多变量MPC系统,以说明所提出方法的实用性。然后使用工业废木料燃烧发电锅炉单元来证明该方法的有效性。 (c)2007 Elsevier Ltd.保留所有权利。

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