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Letter to the Editor: On the stability and ranking of predictors from random forest variable importance measures

机译:致编辑的信:关于随机森林变量重要性度量的预测变量的稳定性和排名

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摘要

A recent study examined the stability of rankings from random forests using two variable importance measures (mean decrease accuracy (MDA) and mean decrease Gini (MDG)) and concluded that rankings based on the MDG were more robust than MDA. However, studies examining data-specific characteristics on ranking stability have been few. Rankings based on the MDG measure showed sensitivity to within-predictor correlation and differences in category frequencies, even when the number of categories was held constant, and thus may produce spurious results. The MDA measure was robust to these data characteristics. Further, under strong within-predictor correlation, MDG rankings were less stable than those using MDA.
机译:最近的一项研究使用两个变量重要性度量(均值降低准确性(MDA)和均值降低基尼系数(MDG))检查了随机森林等级的稳定性,并得出结论,基于MDG的等级比MDA更可靠。但是,研究关于排名稳定性的特定于数据的特征的研究很少。基于MDG测度的排名显示出对预测器内部相关性和类别频率差异的敏感性,即使类别的数量保持不变,也可能产生虚假结果。 MDA度量对这些数据特征具有鲁棒性。此外,在强大的内部预测因子相关性下,MDG排名比使用MDA的排名不稳定。

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