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An ad hoc method for dual adjusting for measurement errors and nonresponse bias for estimating prevalence in survey data: Application to Iranian mental health survey on any illicit drug use

机译:用于估算调查数据患病率的测量误差和非响应偏差的临时方法:对任何非法药物使用的伊朗心理健康调查

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PurposeThe prevalence estimates of binary variables in sample surveys are often subject to two systematic errors: measurement error and nonresponse bias. A multiple-bias analysis is essential to adjust for both biases. MethodsIn this paper, we linked the latent class log-linear and proxy pattern-mixture models to adjust jointly for measurement errors and nonresponse bias with missing not at random mechanism. These methods were employed to estimate the prevalence of any illicit drug use based on Iranian Mental Health Survey data. ResultsAfter jointly adjusting for measurement errors and nonresponse bias in this data, the prevalence (95% confidence interval) estimate of any illicit drug use changed from 3.41 (3.00, 3.81)% to 27.03 (9.02, 38.76)%, 27.42 (9.04, 38.91)%, and 27.18 (9.03, 38.82)% under missing at random, missing not at random, and an intermediate mode, respectively. ConclusionsUnder certain assumptions, a combination of the latent class log-linear and binary-outcome proxy pattern-mixture models can be used to jointly adjust for both measurement errors and nonresponse bias in the prevalence estimation of binary variables in surveys.
机译:样品调查中二元变量的Purposethe流行估计通常受到两个系统错误的影响:测量误差和非响应偏差。多偏见分析对于调整两个偏差至关重要。方法本文将潜在类对数线性和代理模式 - 混合模型链接,以共同调整,用于测量误差和非响应偏差,而不是在随机机制上缺失。采用这些方法来估算基于伊朗心理健康调查数据的任何非法药物使用的患病率。 CapesentAtapter在该数据中共同调整测量误差和非响应偏见,任何非法药物使用的患病率(95%置信区间)估计从3.41(3.00,3.81)%变为27.03(9.02,38.76)%,27.42(9.04,38.91 “缺失,随机缺失,不随机缺失,27.18(9.03,38.82)%分别为0.18(9.03,38.82)%,以及中间模式。结论在某些假设下,潜在级对数线性和二进制结果代理模式 - 混合模型的组合可用于共同调整,以便在调查中的二进制变量的流行估计中进行测量误差和非响应偏差。

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