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Data analytics using canonical correlation analysis and Monte Carlo simulation

机译:使用规范相关分析和蒙特卡洛模拟进行数据分析

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A canonical correlation analysis is a generic parametric model used in the statistical analysis of data involving interrelated or interdependent input and output variables. It is especially useful in data analytics as a dimensional reduction strategy that simplifies a complex, multidimensional parameter space by identifying a relatively few combinations of variables that are maximally correlated. One shortcoming of the canonical correlation analysis, however, is that it provides only a linear combination of variables that maximizes these correlations. With this in mind, we describe here a versatile, Monte-Carlo based methodology that is useful in identifying non-linear functions of the variables that lead to strong input/output correlations. We demonstrate that our approach leads to a substantial enhancement of correlations, as illustrated by two experimental applications of substantial interest to the materials science community, namely: (1) determining the interdependence of processing and microstructural variables associated with doped polycrystalline aluminas, and (2) relating microstructural decriptors to the electrical and optoelectronic properties of thin-film solar cells based on CuInSe2 absorbers. Finally, we describe how this approach facilitates experimental planning and process control.
机译:规范相关分析是一种通用的参数模型,用于对涉及相互关联或相互依存的输入和输出变量的数据进行统计分析。它在数据分析中特别有用,它是一种降维策略,它通过识别相对相关的变量组合相对较少,从而简化了复杂的多维参数空间。但是,规范相关分析的一个缺点是,它仅提供使这些相关最大化的变量的线性组合。考虑到这一点,我们在这里描述一种通用的基于蒙特卡洛的方法,该方法可用于识别导致强烈输入/输出相关性的变量的非线性函数。我们证明了我们的方法大大提高了相关性,如材料科学界的两项重大实验应用所示:(1)确定与掺杂多晶氧化铝相关的工艺和微观结构变量之间的相互依赖关系,以及(2) ),将基于微晶结构的减振器与基于CuInSe2吸收剂的薄膜太阳能电池的电和光电特性相关联。最后,我们描述了这种方法如何促进实验计划和过程控制。

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