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Tuning strategy for dynamic matrix control with reduced horizons

机译:降低地平线动态矩阵控制调整策略

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In Dynamic Matrix Control (DMC) algorithm, the control signal is computed optimally based on the process model. In effect, the DMC algorithm allows for obtaining a better quality of control than conventional controllers, especially for plants with large time delays. However, in spite of these advantages, there are still some difficulties that can appear in the implementation of DMC in local control loops. This is due to limitations of the computational resources in industrial devices (e.g., Programmable Logic Controllers). To overcome these difficulties, we propose a tuning strategy for the DMC algorithm with reduced horizons. It is shown that a reduction in the length of prediction and dynamic horizons can reduce the required memory in industrial controllers without degrading the quality of control. (C) 2018 ISA. Published by Elsevier Ltd. All rights reserved.
机译:在动态矩阵控制(DMC)算法中,控制信号基于过程模型来最佳地计算。 实际上,DMC算法允许比传统控制器获得更好的控制质量,特别是对于具有大时间延迟的植物。 然而,尽管存在这些优势,但仍有一些困难可以在局部控制循环中实现DMC的实现。 这是由于工业设备中计算资源的限制(例如,可编程逻辑控制器)。 为了克服这些困难,我们提出了一种具有降低视野的DMC算法的调整策略。 结果表明,预测长度和动态视野的减小可以减少工业控制器中所需的存储器,而不会降低控制质量。 (c)2018 ISA。 elsevier有限公司出版。保留所有权利。

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