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A simple variance estimator of change for rotating repeated surveys: an application to the European Union Statistics on Income and Living Conditions household surveys

机译:轮换重复调查的简单变化估计值:对欧盟收入和生活条件统计的家庭调查中的应用

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摘要

A common problem is to compare two cross-sectional estimates for the same study variable taken on two different waves or occasions, and to judge whether the change observed is statistically significant. This involves the estimation of the sampling variance of the estimator of change. The estimation of this variance would be relatively straightforward if cross-sectional estimates were based on the same sample. Unfortunately, samples are not completely overlapping, because of rotations used in repeated surveys. We propose a simple approach based on a multivariate (general) linear regression model. The variance estimator proposed is not a model-based estimator. We show that the estimator proposed is design consistent when the sampling fractions are negligible. It can accommodate stratified and two-stage sampling designs. The main advantage of the approach proposed is its simplicity and flexibility. It can be applied to a wide class of sampling designs and can be implemented with standard statistical regression techniques. Because of its flexibility, the approach proposed is well suited for the estimation of variance for the European Union Statistics on Income and Living Conditions surveys. It allows us to use a common approach for variance estimation for the different types of design. The approach proposed is a useful tool, because it involves only modelling skills and requires limited knowledge of survey sampling theory.
机译:一个常见的问题是比较在两个不同的波浪或场合下对同一研究变量的两个横截面估计值,并判断观察到的变化是否具有统计学意义。这涉及对变化估计量的采样方差的估计。如果横截面估计基于同一样本,则该方差的估计将相对简单。不幸的是,由于重复调查中使用了轮换,样本并未完全重叠。我们提出了一种基于多元(一般)线性回归模型的简单方法。提出的方差估计器不是基于模型的估计器。我们表明,当采样分数可忽略不计时,提出的估计量在设计上是一致的。它可以适应分层抽样和两阶段抽样设计。所提出的方法的主要优点是它的简单性和灵活性。它可以应用于各种采样设计,并且可以使用标准统计回归技术来实现。由于其灵活性,建议的方法非常适合用于估算欧盟收入和生活条件统计调查的方差。它允许我们对不同类型的设计使用通用方法进行方差估计。所提出的方法是一种有用的工具,因为它只涉及建模技能,并且要求对调查抽样理论的知识有限。

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