Output Constraint Softening for SISO Model Predictive Control

E. Zafiriou, Hung-Wen Chiou
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引用次数: 46

Abstract

The presence of constraints in the on-line optimization problem solved by Model Predictive Control algorithms results in a nonlinear control system, even if the plant and model dynamics are linear. This is the case both for physical constraints, like saturation constraints, as well for performance or safety constraints on outputs or other variables of the process. Performance constraints can usually be softened by allowing violation if necessary. This is advisable, as hard constraints can lead to stability problems. The determination of the necessary degree of softening is usually a trial-and-error matter. This paper utilizes a theoretical framework that allows to relate hard as well as soft constraints to closed-loop stability. We focus on the special case of output constraints for single-input single-output systems and develop a non-conservative condition. This condition allows the determination of the appropriate amount of softening either numerically or via a suitable Nyquist plot.
SISO模型预测控制的输出约束软化
在模型预测控制算法求解在线优化问题时,即使对象和模型动力学是线性的,由于约束的存在,控制系统也是非线性的。这既适用于物理约束,如饱和度约束,也适用于输出的性能或安全约束或过程的其他变量。如果有必要,通常可以通过允许违反来软化性能约束。这是可取的,因为硬约束可能导致稳定性问题。确定必要的软化程度通常是一个反复试验的问题。本文采用了一个理论框架,允许将硬约束和软约束与闭环稳定性联系起来。研究了单输入单输出系统输出约束的特殊情况,给出了一个非保守条件。这个条件允许通过数值或适当的奈奎斯特图来确定适当的软化量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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