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Robust PLS model based product quality control strategy for solvent extraction process

机译:基于鲁棒PLS模型的溶剂萃取过程产品质量控制策略

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A novel product quality control strategy is presented in this paper. The quality control is achieved by predicting the product quality using a data-driven model and adjusting the manipulated variables when disturbances occur in the measured variables. The data-driven model employs robust partial least squares algorithm to predict offline measured product quality, which can minimize the adverse effect of outliers in the training data set. Base on the robust regression model, the optimal control action are computed by solving a quadratic optimization problem under the constraint that the optimal projected solution must fall within the region of historical scores. The prediction and control performances are examined through a simulated solvent extraction process.
机译:本文提出了一种新颖的产品质量控制策略。通过使用数据驱动的模型预测产品质量并在测量变量中发生干扰时调整操作变量来实现质量控制。数据驱动模型采用鲁棒的偏最小二乘算法来预测离线测量的产品质量,从而可以最大程度地减少训练数据集中异常值的不利影响。在鲁棒回归模型的基础上,在最优投影解必须落在历史得分范围内的约束下,通过求解二次优化问题来计算最优控制作用。通过模拟溶剂萃取过程检查了预测和控制性能。

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