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A beta partial least squares regression model: Diagnostics and application to mining industry data

机译:Beta偏最小二乘回归模型:挖掘和应用于采矿业数据

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摘要

>We propose a methodology based on partial least squares (PLS) regression models using the beta distribution, which is useful for describing data measured between zero and one. The beta PLS model parameters are estimated with the maximum likelihood method, whereas a randomized quantile residual and the generalized Cook and Mahalanobis distances are considered as diagnostic methods. A simulation study is provided for evaluating the performance of these diagnostic methods. We illustrate the methodology with real‐world mining data. The results obtained in this study based on the beta PLS model and its diagnostics may be of interest for the mining industry.
机译: 我们使用Beta分布提出基于局部最小二乘(PLS)回归模型的方法,这对于描述在零和一个之间测量的数据是有用的。 βPLS模型参数估计具有最大似然法,而随机分量剩余物和广义厨师和Mahalanobis距离被认为是诊断方法。 提供了一种用于评估这些诊断方法的性能的仿真研究。 我们说明了现实世界挖掘数据的方法。 本研究中获得的结果基于Beta PLS模型及其诊断可能对采矿业感兴趣。

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