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Nonlinear predictive controller based on S-PARAFAC Volterra models applied to a communicating two-tank system

机译:基于S-PARAFAC Volterra模型的非线性预测控制器在通信两罐系统中的应用

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摘要

This paper proposes a new predictive controller approach for nonlinear process based on a reduced complexity homogeneous, quadratic discrete-time Volterra model called quadratic S-PARAFAC Volterra model. The proposed model is yielded by using the symmetry property of the Volterra kernels and their tensor decomposition using the PARAFAC technique that provides a parametric reduction compared to the conventional Volterra model. This property allows synthesising a new nonlinear-model-based predictive control (NMBPC). We develop the general form of a new predictor, and therefore, we propose an optimisation algorithm formulated as a quadratic programming under linear and nonlinear constraints. The performances of the proposed quadratic S-PARAFAC Volterra model and the developed NMBPC algorithm are illustrated on a numerical simulation and validated on a benchmark as a continuous stirred-tank reactor system. Moreover, the efficiency of the proposed quadratic S-PARAFAC Volterra model and the NMBPC approach are validated on an experimental communicating two-tank system.
机译:本文提出了一种新的非线性过程预测控制器方法,该方法基于降低复杂度的均质,二次离散时间Volterra模型(称为二次S-PARAFAC Volterra模型)。通过使用Volterra内核的对称特性以及使用PARAFAC技术的张量分解来产生所提出的模型,与传统的Volterra模型相比,该技术提供了参数化约简。此属性允许合成新的基于非线性模型的预测控制(NMBPC)。我们开发了新预测变量的一般形式,因此,我们提出了一种在线性和非线性约束下被构造为二次规划的优化算法。在数值模拟中说明了所提出的二次S-PARAFAC Volterra模型的性能和所开发的NMBPC算法的性能,并在作为连续搅拌釜反应器系统的基准上进行了验证。此外,所提出的二次S-PARAFAC Volterra模型和NMBPC方法的效率在实验性的通信两罐系统上得到了验证。

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