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首页> 外文期刊>The International Journal of Biostatistics >Two-Sample Tests of Area-Under-the-Curve in the Presence of Missing Data
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Two-Sample Tests of Area-Under-the-Curve in the Presence of Missing Data

机译:存在缺失数据时曲线下区域的两次抽样检验

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摘要

The commonly used two-sample tests of equal area-under-the-curve (AUC), where AUC is based on the linear trapezoidal rule, may have poor properties when observations are missing, even if they are missing completely at random (MCAR). We propose two tests: one that has good properties when data are MCAR and another that has good properties when the data are missing at random (MAR), provided that the pattern of missingness is monotonic. In addition, we discuss other non-parametric tests of hypotheses that are similar, but not identical, to the hypothesis of equal AUCs, but that often have better statistical properties than do AUC tests and may be more scientifically appropriate for many settings.
机译:等距曲线下面积(AUC)的常用两个样本检验(AUC基于线性梯形法则)在缺少观测值时可能具有较差的性能,即使它们是随机完全缺失(MCAR) 。我们提出了两个测试:一个条件是当数据为MCAR时具有良好的性能,另一个条件是当数据随机丢失(MAR)时具有良好的性能,前提是缺失的模式是单调的。此外,我们讨论了与假设AUC相同但与假设不相同的其他非参数检验,但这些统计通常比AUC检验具有更好的统计特性,并且在科学上可能适用于许多设置。

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