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A diagnostic method for simultaneous feature selection and outlier identification in linear regression

机译:线性回归中同时特征选择和离群值识别的诊断方法

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A diagnostic method along the lines of forward search is proposed to simultaneously study the effect of individual observations and features on the inferences made in linear regression. The method operates by appending dummy variables to the data matrix and performing backward selection on the augmented matrix. It outputs sequences of feature-outlier combinations which can be evaluated by plots similar to those of forward search and includes the capacity to incorporate prior knowledge, in order to mitigate issues such as collinearity. It also allows for alternative ways to understand the selection of the final model. The method is evaluated on five data sets and yields promising results.
机译:提出了一种基于前向搜索的诊断方法,以同时研究单个观测值和特征对线性回归推论的影响。该方法通过将伪变量附加到数据矩阵并对扩展矩阵执行向后选择来进行操作。它输出特征-离群组合的序列,可以通过类似于正向搜索的图来评估这些特征-离群组合的序列,并包括合并先验知识的能力,以减轻诸如共线性的问题。它还允许使用其他方式来理解最终模型的选择。该方法在五个数据集上进行了评估,并产生了可喜的结果。

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