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Optimization of Temporal Processes: A Model Predictive Control Approach

机译:时间流程优化:模型预测控制方法

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摘要

A dynamic predictive-control model of a nonlinear and temporal process is considered. Evolutionary computation and data mining algorithms are integrated for solving the model. Data-mining algorithms learn dynamic equations from process data. Evolutionary algorithms are then applied to solve the optimization problem guided by the knowledge extracted by data-mining algorithms. Several properties of the optimization model are shown in detail, in particular, a selection of regressors, time delays, prediction and control horizons, and weights. The concepts proposed in this paper are illustrated with an industrial case study in combustion process.
机译:考虑了非线性和时间过程的动态预测控制模型。进化计算和数据挖掘算法集成用于解决模型。数据挖掘算法从过程数据中学习动态方程。然后应用进化算法以解决数据挖掘算法提取的知识指导的优化问题。优化模型的若干特性特别详细示出,特别是选择回归,时间延迟,预测和控制视野和权重。本文提出的概念被燃烧过程中的工业案例研究说明。

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