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Investigating the Impact of Operating Parameters on Molecular Weight Distributions Using Functional Regression

机译:使用功能回归研究操作参数对分子量分布的影响

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Molecular weight distributions (MWDs) are inherently functional observations in which differential weight fraction is expressed as a function of chain length. Conventional approaches for analyzing and predicting MWDs include discretization and treatment as multi-response estimation problems, characterization using moments, and detailed mechanistic modeling to predict fractions for each chain length. However, these approaches can be sensitive to loss of information, complexity and problem conditioning. An alternative is to treat the MWDs as functional observations, and to use techniques from Functional Data Analysis (FDA), notably functional regression. The objective of this paper is to develop and apply empirical modeling techniques based on functional regression for investigating the impact of operating parameters on MWDs.
机译:分子量分布(MWDS)是固有的功能观察,其中差分重量级分作为链长的函数表示。用于分析和预测MWD的常规方法包括:使用矩的多响应估计问题,使用矩以及详细的机械模型来预测每个链长的分数。但是,这些方法可以对信息丢失,复杂性和问题调节敏感。替代方案是将MWD视为功能观察,并使用功能数据分析(FDA)的技术,特别是功能性回归。本文的目的是基于功能回归来开发和应用实证建模技术,用于调查MWDS对MWDS的运行参数的影响。

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