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Offline Modeling for Product Quality Prediction of Mineral Processing Using Modeling Error PDF Shaping and Entropy Minimization

机译:使用建模误差PDF成形和熵最小化对矿物加工产品质量进行预测的离线建模

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This paper presents a novel offline modeling for product quality prediction of mineral processing which consists of a number of unit processes in series. The prediction of the product quality of the whole mineral process (i.e., the mixed concentrate grade) plays an important role and the establishment of its predictive model is a key issue for the plantwide optimization. For this purpose, a hybrid modeling approach of the mixed concentrate grade prediction is proposed, which consists of a linear model and a nonlinear model. The least-squares support vector machine is adopted to establish the nonlinear model. The inputs of the predictive model are the performance indices of each unit process, while the output is the mixed concentrate grade. In this paper, the model parameter selection is transformed into the shape control of the probability density function (PDF) of the modeling error. In this context, both the PDF-control-based and minimum-entropy-based model parameter selection approaches are proposed. Indeed, this is the first time that the PDF shape control idea is used to deal with system modeling, where the key idea is to turn model parameters so that either the modeling error PDF is controlled to follow a target PDF or the modeling error entropy is minimized. The experimental results using the real plant data and the comparison of the two approaches are discussed. The results show the effectiveness of the proposed approaches.
机译:本文提出了一种新颖的离线模型,用于矿物加工的产品质量预测,该模型由一系列串联的单元过程组成。整个矿物加工过程的产品质量(即混合精矿品位)的预测起着重要作用,其预测模型的建立是全厂优化的关键问题。为此,提出了一种混合精矿品位预测的混合建模方法,该方法由线性模型和非线性模型组成。采用最小二乘支持向量机建立非线性模型。预测模型的输入是每个单元过程的性能指标,而输出是混合精矿等级。在本文中,将模型参数选择转换为建模误差的概率密度函数(PDF)的形状控制。在这种情况下,提出了基于PDF控制和基于最小熵的模型参数选择方法。的确,这是PDF形状控制思想首次用于系统建模,其关键思想是转换模型参数,以便控制建模误差PDF以遵循目标PDF或建模误差熵为零。最小化。讨论了使用真实植物数据的实验结果以及两种方法的比较。结果表明了所提出方法的有效性。

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