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Dynamic soft sensor modeling based on state detection and impulses response template

机译:基于状态检测和脉冲响应模板的动态软传感器建模

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Accurate and reliable prediction of melt mass flow rate is crucial in polypropylene production. In order to establish an accurate prediction model, a process state detection method and a novel dynamic modeling method is proposed, and the model parameters are indentified by improved swarm optimization algorithm. A polypropylene product melt mass flow rate soft sensor model is established based on process state detection and impulses response template. According to the research on the data from real plant, the experiments demonstrate that even under dynamic state, the proposed approach can improve the prediction accuracy, and the soft sensor model has good tracking ability and meets the requirement of on-line optimal control.
机译:准确可靠地预测熔体质量流速对聚丙烯生产至关重要。为了建立准确的预测模型,提出了一种过程状态检测方法和一种新颖的动态建模方法,并通过改进的群体优化算法对模型参数进行辨识。基于工艺状态检测和脉冲响应模板,建立了聚丙烯产品熔体质量流量软传感器模型。根据对真实工厂数据的研究,实验表明,即使在动态状态下,该方法也可以提高预测精度,软传感器模型具有良好的跟踪能力,可以满足在线最优控制的要求。

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