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Latent variable modelling with non-ignorable item non-response: multigroup response propensity models for cross-national analysis

机译:具有不可忽略项目无响应的潜在变量建模:用于跨国分析的多组响应倾向模型

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摘要

When missing data are produced by a non-ignorable non-response mechanism, analysis of the observed data should include a model for the probabilities of responding. We propose such models for non-response in survey questions which are treated as measures of latent constructs and analysed by using latent variable models. The non-response models that we describe include additional latent variables (latent response propensities) which determine the response probabilities. We argue that this model should be specified as flexibly as possible, and we propose models where the response propensity is a categorical variable (a latent response class). This can be combined with any latent variable model for the survey items, and an association between the latent variables measured by the items and the latent response propensities then implies a model with non-ignorable non-response. We consider in particular such models for the analysis of data from cross-national surveys, where the non-response model may also vary across the countries. The models are applied to data on welfare attitudes in 29 countries in the European Social Survey.
机译:当通过不可忽略的非响应机制生成丢失的数据时,对观察到的数据的分析应包括响应概率的模型。我们提出了用于调查问题中的非答复的模型,这些模型被视为潜在构造的度量,并通过使用潜在变量模型进行了分析。我们描述的非响应模型包括确定响应概率的其他潜在变量(潜在响应倾向)。我们认为应尽可能灵活地指定此模型,并提出响应倾向为类别变量(潜在响应类别)的模型。可以将其与调查项目的任何潜在变量模型组合,然后由项目测量的潜在变量与潜在响应倾向之间的关联就意味着具有不可忽略不响应的模型。我们特别考虑使用此类模型来分析跨国调查的数据,其中无响应模型在各个国家之间也可能有所不同。该模型被用于《欧洲社会概览》中29个国家的福利态度数据。

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