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Minimum-Information-Entropy-Based Control Performance Assessment

机译:基于最小信息熵的控制性能评估

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摘要

Generally, the controller design should be performed to narrow the shape of the probability density function of the tracking error. A small information entropy value corresponds to a narrow distribution function, which means that the uncertainty of the related random variable is small. In this paper, information entropy is introduced in the field of control performance assessment (CPA). For the unknown time delay case, the minimum information entropy (MIE) benchmark is presented, and a MIE-based performance index is defined. For the known time delay case, a tight upper bound of MIE is derived and adopted as a performance benchmark to assess the stochastic control performance. Based on these, the control performance assessment procedures are developed for both the steady and the transient processes. Simulation tests and an industrial case study of a main steam pressure system of a 1,000MW power unit are utilized to verify the effectiveness of the proposed procedures.
机译:通常,应执行控制器设计以缩小跟踪误差的概率密度函数的形状。较小的信息熵值对应于较窄的分布函数,这意味着相关随机变量的不确定性较小。本文将信息熵引入到控制性能评估(CPA)领域。对于未知的时延情况,提出了最小信息熵(MIE)基准,并定义了基于MIE的性能指标。对于已知的时延情况,推导了MIE的上限,并将其用作评估随机控制性能的性能基准。基于这些,针对稳态和瞬态过程都制定了控制性能评估程序。通过对1,000MW机组主蒸汽压力系统的仿真测试和工业案例研究,来验证所提出程序的有效性。

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