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Supplementary Material for \"A simple approach for local and global variable importance in nonlinear regression models\"

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DataONE2023-08-08 更新2024-06-08 收录
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This repo contain supplementary tables from the manuscript entitled: \"A simple approach for local and global variable importance in nonlinear regression models\". Here, we provide genome-wide results for all single nucleotide polymorphisms (SNPs) in a heterogenous stock of mice data set from the Wellcome Trust Centre of Human Genetics while analyzing, body weight, high-density lipoprotein (HDL), and percentage of CD8+ cells. Listed are variable importance values using the “RelATive cEntrality” (RATE) and the “GlObal And Local Score\" (GOALS) approaches for each SNP as computed via Gaussian process regression. As a direct comparison, we also include variable importance scores for each SNP after running a random forest (RF), a gradient boosting machine (GBM), and a Bayesian additive regression tree (BART).
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2023-11-08
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