ON TESTING CONDITIONAL QUALITATIVE TREATMENT EFFECTS.

IF 3.2 1区 数学 Q1 STATISTICS & PROBABILITY Annals of Statistics Pub Date : 2019-08-01 Epub Date: 2019-05-21 DOI:10.1214/18-AOS1750
Chengchun Shi, Rui Song, Wenbin Lu
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引用次数: 3

Abstract

Precision medicine is an emerging medical paradigm that focuses on finding the most effective treatment strategy tailored for individual patients. In the literature, most of the existing works focused on estimating the optimal treatment regime. However, there has been less attention devoted to hypothesis testing regarding the optimal treatment regime. In this paper, we first introduce the notion of conditional qualitative treatment effects (CQTE) of a set of variables given another set of variables and provide a class of equivalent representations for the null hypothesis of no CQTE. The proposed definition of CQTE does not assume any parametric form for the optimal treatment rule and plays an important role for assessing the incremental value of a set of new variables in optimal treatment decision making conditional on an existing set of prescriptive variables. We then propose novel testing procedures for no CQTE based on kernel estimation of the conditional contrast functions. We show that our test statistics have asymptotically correct size and non-negligible power against some nonstandard local alternatives. The empirical performance of the proposed tests are evaluated by simulations and an application to an AIDS data set.

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关于测试有条件的定性治疗效果。
精准医学是一种新兴的医学范式,专注于为个体患者找到最有效的治疗策略。在文献中,大多数现有的工作都集中在估计最佳治疗方案上。然而,对最佳治疗方案的假设检验关注较少。在本文中,我们首先引入了一组变量给定另一组变量的条件定性处理效应(CQTE)的概念,并为无CQTE的零假设提供了一类等价表示。所提出的CQTE定义不采用最优治疗规则的任何参数形式,并且在以现有的一组规定变量为条件的最优治疗决策中,在评估一组新变量的增量方面发挥着重要作用。然后,我们基于条件对比度函数的核估计,提出了新的无CQTE测试程序。我们证明了我们的检验统计量具有渐近正确的大小,并且相对于一些非标准局部替代方案具有不可忽略的幂。通过模拟和对艾滋病数据集的应用来评估所提出的测试的经验性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annals of Statistics
Annals of Statistics 数学-统计学与概率论
CiteScore
9.30
自引率
8.90%
发文量
119
审稿时长
6-12 weeks
期刊介绍: The Annals of Statistics aim to publish research papers of highest quality reflecting the many facets of contemporary statistics. Primary emphasis is placed on importance and originality, not on formalism. The journal aims to cover all areas of statistics, especially mathematical statistics and applied & interdisciplinary statistics. Of course many of the best papers will touch on more than one of these general areas, because the discipline of statistics has deep roots in mathematics, and in substantive scientific fields.
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