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On linear combinations of biomarkers to improve diagnostic accuracy.

机译:对生物标志物进行线性组合以提高诊断准确性。

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We consider combining multiple biomarkers to improve diagnostic accuracy. Su and Liu derived the linear combinations that maximize the area under the receiver operating characteristic (ROC) curves. These linear combinations, however, may have unsatisfactory low sensitivity over a certain range of desired specificity. In this paper, we consider maximizing sensitivity over a range of specificity. We first present a simpler proof for Su and Liu's main theorem and further investigate some other optimal properties of their linear combinations. We then derive alternative linear combinations that have higher sensitivity over a range of high (or low) specificity. The methods are illustrated using data from a study evaluating biomarkers for coronary heart disease.
机译:我们考虑结合多种生物标志物以提高诊断准确性。 Su和Liu得出了使接收器工作特性(ROC)曲线下的面积最大化的线性组合。然而,这些线性组合在所需特异性的一定范围内可能具有不令人满意的低灵敏度。在本文中,我们考虑在特定范围内使灵敏度最大化。我们首先为Su和Liu的主定理提供一个更简单的证明,然后进一步研究它们的线性组合的其他一些最优性质。然后,我们得出在高(或低)特异性范围内具有较高灵敏度的替代线性组合。使用来自评估冠心病生物标志物的研究数据说明了这些方法。

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