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A Linear Regression Framework for the Receiver Operating Characteristic (ROC) Curve Analysis

机译:接收器操作特征(ROC)曲线分析的线性回归框架

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摘要

The receiver operating characteristic (ROC) curve has been a popular statistical tool for characterizing the discriminating power of a classifier, such as a biomarker or an imaging modality for disease screening or diagnosis. It has been recognized that the accuracy of a given procedure may depend on some underlying factors, such as subject’s demographic characteristics or disease risk factors, among others. Non-parametric- or parametric-based methods tend to be either inefficient or cumbersome when evaluating effect of multiple covariates is the main focus. Here we propose a semi-parametric linear regression framework to model covariate effect. It allows the estimation of sensitivity at given specificity to vary according to the covariates and provides a way to model the area under the ROC curve indirectly. Estimation procedure and asymptotic theory are presented. Extensive simulation studies have been conducted to investigate the validity of the proposed method. We illustrate the new method on a diagnostic test dataset.
机译:接收器操作特征(ROC)曲线是一种流行的统计工具,用于表征分类器的判别功率,例如生物标志物或用于疾病筛查或诊断的成像模态。已经认识到给定程序的准确性可能取决于一些潜在的因素,例如受试者的人口统计特征或疾病风险因素等。当评估多个协变量的效果是主要焦点时,非参数或基于参数的方法往往是效率或繁琐的。在这里,我们提出了一个半参数线性回归框架来模拟协变量效果。它允许在给定的特异性估计灵敏度,根据协调机构而变化,并提供一种方式间接地模拟ROC曲线下的区域。提出了估计程序和渐近理论。已经进行了广泛的模拟研究以研究所提出的方法的有效性。我们在诊断测试数据集中说明了新方法。

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