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首页> 外文期刊>Optimal Control Applications and Methods >Batch to batch optimal control based on multiinput multioutput adaptive hinging hyperplanes prediction and Kalman filter correction
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Batch to batch optimal control based on multiinput multioutput adaptive hinging hyperplanes prediction and Kalman filter correction

机译:基于多量多开展自适应铰链超平面预测和卡尔曼滤波校正的批量批量控制

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摘要

A batch to batch optimal control strategy based on multiinput multioutput adaptive hinging hyperplanes (MIMO AHH) prediction and Kalman filter correction is proposed for the products quality control of the batch process. The model of AHH is one kind of piecewise linear models and is extended to the MIMO case in this article. The MIMO AHH is then used to develop the predictive model of the batch process. Due to the model-plant mismatch and unknown disturbances, the optimal control policy calculated based on the MIMO AHH predictive model may not be optimal when applied to the true process. The Kalman filter is then utilized to correct the predictions of the current batch by considering the information of former batches. The effectiveness of the proposed strategy is verified through the simulation of a styrene batch polymerization reactor.
机译:提出了一批基于多量值多输出自适应铰链超平面(MIMO AHH)预测和Kalman滤波器校正的批量最佳控制策略,用于批处理过程的产品质量控制。 AHH的型号是一种分段线性模型,并扩展到本文中的MIMO案例。 然后使用MIMO AHH来开发批处理的预测模型。 由于模型 - 植物失配和未知干扰,基于MIMO AHH预测模型计算的最佳控制策略可能在应用于真实过程时不可能是最佳的。 然后利用卡尔曼滤波器通过考虑前批次的信息来校正当前批次的预测。 通过模拟苯乙烯批量聚合反应器来验证所提出的策略的有效性。

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