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Offset-Free Nonlinear Model Predictive Control

机译:无偏移非线性模型预测控制

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Offset-free model predictive control (MPC) for nonlinear state-space process models, with modeling errors and under asymptotically constant external disturbances, is the subject of the paper. A brief introduction of the MPC formulation used is first given, followed by a brief remainder of the case with measured state vector. The case with process outputs measured only and thus the necessity of state estimation is further considered.The main result of the paper is the presentation of a novel technique with process state estimation only, despite the presence of deterministic disturbances. The core of the technique is the state disturbance model used for the state prediction. It was introduced originally for linear state-space models and is generalized to the nonlinear case in the paper. This leads to a simpler design without the need for decisions of disturbance structure and placement in the model and to simpler (lower dimensional) control structure with process state observer only. Results of theoretical analysis of the proposed algorithm are provided, under applicability conditions which are weaker than in the conventional approach of extended process-and-disturbance state estitimation. The presented theory is illustrated by simulation results of a nonlinear process.
机译:非线性状态空间过程模型的无偏移模型预测控制(MPC),具有建模误差和渐近恒定的外部干扰,是纸张的主题。简要介绍了MPC制剂的使用的第一给定,随后用测量的状态矢量的情况的简要其余部分。仅测量处理输出的情况,因此进一步考虑了状态估计的必要性。纸张的主要结果是仅具有过程状态估计的新技术的呈现,尽管存在确定性扰动。该技术的核心是用于状态预测的状态干扰模型。它最初推出的线性状态空间模型,并推广到报纸上的非线性的情况。这导致更简单的设计,无需对模型的干扰结构和放置的决策以及仅具有处理状态观测器的更简单(下维)控制结构更简单。被提供了该算法的理论分析的结果,适用条件这比在扩展过程和扰动状态estitimation的传统方法更弱下。通过非线性过程的仿真结果来说明所提出的理论。

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