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Survey-based cross-country comparisons where countries vary in sample design: Issues and solutions

机译:不同国家样本设计不同的基于调查的跨国比较:问题和解决方案

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摘要

© Statistics Sweden. In multi-national surveys, different countries usually implement different sample designs. The sample designs affect the variance of estimates of differences between countries. When making such estimates, analysts often fail to take sufficient account of sample design. This failure occurs sometimes because variables indicating stratification, clustering, or weighting are unavailable, partially available, or in a form that is unsuitable for cross-national analysis. In this article, we demonstrate how complex sample design should be taken into account when estimating differences between countries, and we provide practical guidance to analysts and to data producers on how to deal with partial or inappropriately-coded sample design indicator variables. Using EU-SILC as a case study, we evaluate the inverse misspecification effect (imeff) that results from ignoring clustering or stratification, or both in a between-country comparison where countries’ sample designs differ. We present imeff for estimates of between-country differences in a number of demographic and economic variables for 19 European Union Member States. We assess the magnitude of imeff and the associated impact on standard error estimates. Our empirical findings illustrate that it is important for data producers to supply appropriate sample design indicators and for analysts to use them.
机译:©瑞典统计局。在多国调查中,不同国家通常实施不同的样本设计。样本设计影响了国家间差异估计的方差。在进行这样的估计时,分析人员经常没有充分考虑样本设计。有时会发生此失败,因为指示分层,聚类或权重的变量不可用,部分可用或以不适合跨国分析的形式出现。在本文中,我们演示了在估算国家/地区之间的差异时应如何考虑复杂的样本设计,并且就如何处理部分或不正确编码的样本设计指标变量,为分析人员和数据提供者提供了实用指南。以EU-SILC为例,我们评估了因国家/地区样本设计不同而进行的国家间比较而忽略的聚类或分层或两者都产生的​​逆误指定效应(imeff)。我们对欧洲联盟19个成员国在许多人口和经济变量之间国家间差异的估计没有效率。我们评估了effeff的大小以及对标准误差估计的相关影响。我们的经验发现表明,对于数据生产者而言,提供适当的样本设计指标并让分析师使用它们非常重要。

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  • 作者

    Kaminska O; Lynn P;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 en
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