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两阶段抽样设计中逻辑回归模型的基于阈值的亚组检验

Threshold-based subgroup testing in logistic regression models in two-phase sampling designs.

作者信息

Huang Ying, Cho Juhee, Fong Youyi

机构信息

Biostatistics, Bioinformatics, & Epidemiology Program, Fred Hutchinson Cancer Research Center, Seattle, WA, 98109.

出版信息

J R Stat Soc Ser C Appl Stat. 2021 Mar;70(2):291-311. doi: 10.1111/rssc.12459. Epub 2020 Nov 28.

Abstract

The effect of treatment on binary disease outcome can differ across subgroups characterized by other covariates. Testing for the existence of subgroups that are associated with heterogeneous treatment effects can provide valuable insight regarding the optimal treatment recommendation in practice. Our research in this paper is motivated by the question of whether host genetics could modify a vaccine's effect on HIV acquisition risk. To answer this question, we used data from an HIV vaccine trial with a two-phase sampling design and developed a general threshold-based model framework to test for the existence of subgroups associated with the heterogeneity in disease risks, allowing for subgroups based on multivariate covariates. We developed a testing procedure based on maximum of likelihood-ratio statistics over change planes and demonstrated its advantage over alternative methods. We further developed the testing procedure to account for bias sampling of expensive (i.e. resource-intensive to measure) covariates through the incorporation of inverse probability weighting techniques. We used the proposed method to analyze the motivating HIV vaccine trial data. Our proposed testing procedure also has broad applications in epidemiological studies for assessing heterogeneity in disease risk with respect to univariate or multivariate predictors.

摘要

治疗对二元疾病结局的影响在以其他协变量为特征的亚组中可能有所不同。检验与异质性治疗效果相关的亚组的存在,可以为实践中的最佳治疗建议提供有价值的见解。我们在本文中的研究动机是宿主基因是否会改变疫苗对HIV感染风险的影响这一问题。为了回答这个问题,我们使用了来自一项具有两阶段抽样设计的HIV疫苗试验的数据,并开发了一个基于一般阈值的模型框架,以检验与疾病风险异质性相关的亚组的存在,同时考虑基于多变量协变量的亚组。我们基于变化平面上的最大似然比统计量开发了一种检验程序,并证明了它相对于其他方法的优势。我们进一步改进了检验程序,通过纳入逆概率加权技术来考虑昂贵(即测量资源密集型)协变量的偏差抽样。我们使用所提出的方法来分析激发性HIV疫苗试验数据。我们提出的检验程序在流行病学研究中也有广泛应用,用于评估疾病风险在单变量或多变量预测因素方面的异质性。

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本文引用的文献

1
Change-Plane Analysis for Subgroup Detection and Sample Size Calculation.用于亚组检测和样本量计算的变平面分析
J Am Stat Assoc. 2017;112(518):769-778. doi: 10.1080/01621459.2016.1166115. Epub 2017 Apr 13.
2
Model-robust inference for continuous threshold regression models.连续阈值回归模型的模型稳健推断
Biometrics. 2017 Jun;73(2):452-462. doi: 10.1111/biom.12623. Epub 2016 Nov 17.
4
Tree-based methods for individualized treatment regimes.用于个性化治疗方案的基于树的方法。
Biometrika. 2015;102(3):501-514. doi: 10.1093/biomet/asv028. Epub 2015 Jul 15.

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