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METHOD AND SYSTEM FOR PREDICTING CONSTITUENT YIELDS IN TOBACCO SMOKE USING A MULTIVARIATE REGRESSION MODEL

机译:多元回归模型预测烟草烟气成分产量的方法和系统

摘要

The concentrations or yields of a first set of components in a particular tobacco smoke, such as the Hoffmann analytes, are predicted on the basis of a statistical model. This model is derived from a multivariate regression analysis that relates the concentrations of the first set of components across a range of tobacco smokes to the yields of a second set of components. Typically the second set of components includes gases and other substances such as carbon monoxide, whose concentration can be determined relatively easily. Thus the (unknown) concentrations of Hoffmann analytes in a particular tobacco smoke can be predicted by first measuring the yields of the second set of components in the particular tobacco smoke to be investigated, and then using the multivariate regression model to predict the concentrations of the first set of components from the measured concentrations of the second set of components.
机译:根据统计模型预测特定烟草烟雾(例如霍夫曼分析物)中第一组成分的浓度或产量。该模型源自多变量回归分析,该分析将一系列烟草烟雾中的第一组成分的浓度与第二组成分的产量相关联。通常,第二组组分包括气体和其他物质,例如一氧化碳,其浓度可以相对容易地确定。因此,可以通过首先测量要研究的特定烟草烟雾中第二组成分的产量,然后使用多元回归模型来预测特定烟草烟雾中霍夫曼分析物的(未知)浓度来进行预测。从第二组成分的测量浓度中得出第一组成分。

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