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Detecting and understanding interviewer effects on survey data by using a cross-classified mixed effects location-scale model

机译:通过使用交叉分类的混合效应位置量表模型来检测和了解访调员对调查数据的效应

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摘要

We propose a cross-classified mixed effects location-scale model for the analysis of interviewer effects in survey data. The model extends the standard two-way cross-classified random-intercept model (respondents nested in interviewers crossed with areas) by specifying the residual variance to be a function of covariates and an additional interviewer random effect. This extension provides a way to study interviewers' effects on not just the 'location'(mean) of respondents' responses, but additionally on their 'scale' (variability). It therefore allows researchers to address new questions such as 'Do interviewers influence the variability of their respondents' responses in addition to their average, and if so why?'. In doing so, the model facilitates a more complete and flexible assessment of the factors that are associated with interviewer error. We illustrate this model by using data from wave 3 of the UK Household Longitudinal Survey, which we link to a range of interviewer characteristics measured in an independent survey of interviewers. By identifying both interviewer characteristics in general, but also specific interviewers who are associated with unusually high or low or homogeneous or heterogeneous responses, the model provides a way to inform improvements to survey quality.
机译:我们提出了一个交叉分类的混合效应位置量表模型,用于分析调查数据中的访问者效应。该模型通过将残差指定为协变量的函数和附加的访问者随机效应,扩展了标准的双向交叉分类随机拦截模型(被访者嵌套在与区域交叉的访问者中)。该扩展提供了一种方法来研究访调员不仅对受访者回答的“位置”(平均值)的影响,而且还对他们的“规模”(变异性)的影响。因此,它使研究人员可以解决新问题,例如“访调员除了影响他们的平均水平之外,还会影响受访者回答的变异性吗?如果是,为什么?”。这样,该模型有助于对与访调员错误相关的因素进行更完整,更灵活的评估。我们通过使用英国家庭纵向调查第3波的数据来说明此模型,该数据与在独立的访调员调查中测得的一系列访调员特征相关。通过识别一般的访调员特征以及与异常高或低或同质或异类响应相关的特定访调员,该模型提供了一种方法来告知调查质量的提高。

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