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首页> 外文期刊>International Journal of Applied Mathematics and Computer Science >A NUMERICALLY EFFICIENT FUZZY MPC ALGORITHM WITH FAST GENERATION OF THE CONTROL SIGNAL
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A NUMERICALLY EFFICIENT FUZZY MPC ALGORITHM WITH FAST GENERATION OF THE CONTROL SIGNAL

机译:具有快速生成控制信号的数值有效的模糊MPC算法

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摘要

Model predictive control (MPC) algorithms are widely used in practical applications. They are usually formulated as optimization problems. If a model used for prediction is linear (or linearized on-line), then the optimization problem is a standard, i.e., quadratic, one. Otherwise, it is a nonlinear, in general, nonconvex optimization problem. In the latter case, numerical problems may occur during solving this problem, and the time needed to calculate control signals cannot be determined. Therefore, approaches based on linear or linearized models are preferred in practical applications. A novel, fuzzy, numerically efficient MPC algorithm is proposed in the paper. It can offer better performance than the algorithms based on linear models, and very close to that of the algorithms based on nonlinear optimization. Its main advantage is the short time needed to calculate the control value at each sampling instant compared with optimization-based numerical algorithms; it is a combination of analytical and numerical versions of MPC algorithms. The efficiency of the proposed approach is demonstrated using control systems of two nonlinear control plants: the first one is a chemical CSTR reactor with a van de Vusse reaction, and the second one is a pH reactor.
机译:模型预测控制(MPC)算法广泛用于实际应用。它们通常被制定为优化问题。如果用于预测的模型是线性(或线性化在线),则优化问题是标准,即二次,一个。否则,它是一个非线性,通常,非透露优化问题。在后一种情况下,在解决该问题期间可能发生数值问题,并且无法确定计算控制信号所需的时间。因此,基于线性或线性化模型的方法在实际应用中是优选的。本文提出了一种新颖的模糊的数值有效的MPC算法。它可以提供比基于线性模型的算法更好的性能,并且非常接近基于非线性优化的算法。其主要优点是与基于优化的数值算法相比计算每个采样瞬间的控制值所需的短时间;它是MPC算法的分析和数值版本的组合。使用两个非线性对照植物的控制系统证明了所提出的方法的效率:第一个是具有VAN de Vusse反应的化学CSTR反应器,第二个是pH反应器。

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