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Analysis and Correction of Ill-Conditioned Model in Multivariable Model Predictive Control

机译:多变量模型预测控制中的分析与校正不可变形模型

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The ill-conditioned model is a common problem in model predictive control. The model ill-conditioned can lead to control performance declining obviously from steady-state model of process in this paper. The direction of output movement is relevant to whether the model is ill-conditioned by simulation and analysis. Model mismatch also leads to model ill-conditioned becoming more serious. The geometry tools and SVD in linear algebra are used to analyze the essential reason of ill-conditioned model, and an offline strategy is proposed which can solve the ill-conditioned model problem together with existing online strategies. Finally, the simulations are used to prove the conclusions which presented in this paper are correct.
机译:病情模型是模型预测控制中的常见问题。本文从稳态工艺模型可能导致型号不良的型号可导致控制性能下降。输出运动的方向与模型是否因模拟和分析而受到态度。模型不匹配也导致模型不良状态变得更加严重。线性代数的几何工具和SVD用于分析不良模型的基本原因,提出了一个离线策略,可以与现有的在线策略一起解决不明调的模型问题。最后,使用模拟来证明本文提出的结论是正确的。

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