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Statistical learning in official statistics: The case of statistical matching

机译:官方统计中的统计学习:统计匹配的情况

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摘要

Data integration is becoming a crucial task in National Statistical Institutes in order to exploit the information provided by already existing data sources. Here the focus is on statistical matching methods; they are designed to integrate data stemming out from traditional sample surveys referred to the same target population. In particular, this work shows how popular statistical learning techniques can be beneficial for matching purposes. Two proposals are presented, having a different final scope: the creation of a "fused" data set or the assessment of the uncertainty due to the typical statistical matching scenario. The characteristics of these procedures are investigated through a series of simulations and in an application to real survey data. The achieved results are encouraging and show that some statistical learning techniques can be very effective in exploiting the information provided by already existing survey data, permitting a reduction of the uncertainty determined by the typical statistical matching setting.
机译:数据集成在国家统计研究所成为一个重要的任务,以利用现有数据来源提供的信息。这里重点是统计匹配方法;它们旨在将源于传统样本调查的数据集成,引用相同的目标群体。特别是,这项工作表明了流行的统计学习技术如何有利于匹配目的。提出了两个提案,具有不同的最终范围:创建“融合”数据集或由于典型的统计匹配场景而评估不确定性。通过一系列模拟和应用于实际调查数据的应用来研究这些程序的特征。实现的结果是令人鼓舞的,并表明一些统计学习技术可以非常有效地利用已经存在的调查数据提供的信息,允许减少由典型的统计匹配设置确定的不确定性。

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