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首页> 外文期刊>Journal of Urban Health >Variance Estimation, Design Effects, and Sample Size Calculations for Respondent-Driven Sampling
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Variance Estimation, Design Effects, and Sample Size Calculations for Respondent-Driven Sampling

机译:方差估计,设计效果和样本量计算,用于受访者驱动的抽样

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摘要

Hidden populations, such as injection drug users and sex workers, are central to a number of public health problems. However, because of the nature of these groups, it is difficult to collect accurate information about them, and this difficulty complicates disease prevention efforts. A recently developed statistical approach called respondent-driven sampling improves our ability to study hidden populations by allowing researchers to make unbiased estimates of the prevalence of certain traits in these populations. Yet, not enough is known about the sample-to-sample variability of these prevalence estimates. In this paper, we present a bootstrap method for constructing confidence intervals around respondent-driven sampling estimates and demonstrate in simulations that it outperforms the naive method currently in use. We also use simulations and real data to estimate the design effects for respondent-driven sampling in a number of situations. We conclude with practical advice about the power calculations that are needed to determine the appropriate sample size for a study using respondent-driven sampling. In general, we recommend a sample size twice as large as would be needed under simple random sampling.
机译:注射毒品使用者和性工作者等隐性人群是许多公共卫生问题的核心。但是,由于这些人群的性质,很难收集有关它们的准确信息,并且这种困难使疾病预防工作变得复杂。最近开发的一种称为响应者驱动抽样的统计方法通过允许研究人员对这些种群中某些特征的普遍性进行无偏估计,从而提高了我们研究隐性种群的能力。然而,对这些流行率估计值的样本间差异还知之甚少。在本文中,我们提出了一种自举方法,用于围绕响应者驱动的采样估计值构造置信区间,并在仿真中证明它优于当前使用的简单方法。我们还使用模拟和真实数据来估计在许多情况下响应者驱动的采样的设计效果。我们以关于功率计算的实用建议作为结束,这些功率计算对于使用响应者驱动的抽样确定研究的合适样本量而言是必需的。一般而言,我们建议样本量是简单随机抽样下所需样本量的两倍。

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