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Estimation of Sobol’s Sensitivity Indices under Generalized Linear Models

机译:广义线性模型下Sobol灵敏度指标的估计

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摘要

We derive explicit formulas for Sobol’s sensitivity indices (SSIs) under the generalized linear models (GLMs) with independent or multivariate normal inputs. We argue that the main-effect SSIs provide a powerful tool for variable selection under GLMs with identity links under polynomial regressions. We also show via examples that the SSI-based variable selection results are similar to the ones obtained by the random forest algorithm but without the computational burden of data permutation. Finally, applying our results to the problem of gene network discovery, we identify though the SSI analysis of a public microarray dataset several novel higher-order gene-gene interactions missed out by the more standard inference methods. The relevant functions for SSI analysis derived here under GLMs with identity, log, and logit links are implemented and made available in the R package SobolSensitivity.
机译:我们在具有独立或多元正常输入的广义线性模型(GLM)下,为Sobol的灵敏度指数(SSI)导出了明确的公式。我们认为,主效应SSI为GLM下具有多项式回归下的身份链接的变量选择提供了强大的工具。我们还通过示例显示,基于SSI的变量选择结果与通过随机森林算法获得的结果相似,但没有数据置换的计算负担。最后,将我们的结果应用于基因网络发现问题,尽管通过公共微阵列数据集的SSI分析,我们仍然可以识别出一些更标准的推理方法遗漏的几种新颖的高阶基因-基因相互作用。在带有标识,日志和logit链接的GLM下,此处导出的SSI分析的相关功能已在R软件包SobolSensitivity中实现并可用。

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