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Nonparametric and Parametric Estimators of Prevalence From Group Testing Data With Aggregated Covariates

机译:带有聚集协变量的群体测试数据的流行度的非参数和参数估计量

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摘要

Group testing is a technique employed in large screening studies involving infectious disease, where individuals in the study are grouped before being observed. Parametric and nonparametric estimators of conditional prevalence have been developed in the group testing literature, in the case where the binary variable indicating the disease status is available only for the group, but the explanatory variable is observed for each individual. However, for reasons such as the high cost of assays, the confidentiality of the patients, or the impossibility of measuring a concentration under a detection limit, the explanatory variable is observable only in an aggregated form and the existing techniques are no longer valid. We develop consistent parametric and nonparametric estimators of the conditional prevalence in this complex problem. We establish theoretical properties of our estimators and illustrate their practical performance on simulated and real data. We extend our techniques to the case where the group status is measured imperfectly, and to the setting where the covariate is aggregated and the individual status is available. Supplementary materials for this article are available online.
机译:小组测试是一项涉及传染病的大型筛查研究中使用的技术,其中将研究中的个体分组后再进行观察。在小组测试文献中已经开发出条件患病率的参数和非参数估计量,在这种情况下,表示疾病状况的二进制变量仅适用于该小组,而对于每个人都可以观察到解释变量。但是,由于诸如测定成本高,患者的机密性或无法在检测极限下测量浓度等原因,解释性变量只能以汇总形式观察到,并且现有技术不再有效。我们开发了这个复杂问题中条件患病率的一致参数和非参数估计量。我们建立估计器的理论属性,并说明它们在模拟和真实数据上的实际性能。我们将技术扩展到对群体状态进行不完美测量的情况,以及对协变量进行聚合并且可以使用单个状态的设置。可在线获得本文的补充材料。

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