首页> 外文会议>International Conference on Artificial Intelligence and Soft Computing(ICAISC 2006); 20060625-29; Zakopane(PL) >An Efficient Nonlinear Predictive Control Algorithm with Neural Models and Its Application to a High-Purity Distillation Process
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An Efficient Nonlinear Predictive Control Algorithm with Neural Models and Its Application to a High-Purity Distillation Process

机译:神经模型的高效非线性预测控制算法及其在高纯精馏过程中的应用

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摘要

This paper is concerned with a computationally efficient (sub-optimal) nonlinear model-based predictive control (MPC) algorithm and its application to a high-purity high-pressure ethylene-ethane distillation column. A neural model of the process is used on-line to determine the local linearisation and the nonlinear free response. In comparison with general nonlinear MPC technique, which hinges on non-convex optimisation, the presented structure is far more reliable and less computationally demanding because it results in a quadratic programming problem, whereas its closed-loop control performance is similar.
机译:本文涉及一种基于计算效率的(次优)基于非线性模型的预测控制(MPC)算法及其在高纯度高压乙烯-乙烷蒸馏塔中的应用。在线使用该过程的神经模型来确定局部线性化和非线性自由响应。与依赖于非凸优化的一般非线性MPC技术相比,所提出的结构更加可靠且对计算的要求更低,因为它会导致二次编程问题,而其闭环控制性能却相似。

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