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Partial least square regression techniques in obtaining measurements of one or more polymer properties with an on-line nmr system

机译:使用在线nmr系统获得一种或多种聚合物性能的测量的偏最小二乘回归技术

摘要

An on-line nuclear magnetic resonance (NMR) system, and related methods, are useful for predicting one or more properties of interest of a polymer. In one embodiment, a neural network is used to develop a model which correlates process variables in addition to manipulated NMR output to predict a polymer property of interest. In another embodiment, a partial least square regression technique is used to develop a model of enhanced accuracy. Either the neural network technique or the partial least square regression technique may be used in conjunction with a described multi-model or best-model-selection scheme according to the invention. The polymer can be a plastic such as polyethylene, polypropylene, or polystyrene, or a rubber such as ethylene propylene rubber.
机译:在线核磁共振(NMR)系统和相关方法可用于预测聚合物的一种或多种感兴趣的性质。在一个实施方案中,使用神经网络来开发一种模型,该模型除了可操纵的NMR输出外,还与工艺变量相关,以预测目标聚合物的性能。在另一个实施例中,使用偏最小二乘回归技术来开发精度提高的模型。神经网络技术或偏最小二乘回归技术可以与根据本发明描述的多模型或最佳模型选择方案结合使用。该聚合物可以是塑料,例如聚乙烯,聚丙烯或聚苯乙烯,或橡胶,例如乙丙橡胶。

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