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A Generalized Fellegi-Sunter Framework for Multiple Record Linkage With Application to Homicide Record-Systems

机译:多记录链接的广义Fellegi-Sunter框架及其在凶杀记录系统中的应用

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摘要

We present a probabilistic method for linking multiple datafiles. This task is not trivial in the absence of unique identifiers for the individuals recorded. This is a common scenario when linking census data to coverage measurement surveys for census coverage evaluation, and in general when multiple record-systems need to be integrated for posterior analysis. Our method generalizes the Fellegi-Sunter theory for linking records from two datafiles and its modern implementations. The multiple record linkage goal is to classify the record K-tuples coming from K datafiles according to the different matching patterns. Our method incorporates the transitivity of agreement in the computation of the data used to model matching probabilities. We use a mixture model to fit matching probabilities via maximum likelihood using the EM algorithm. We present a method to decide the record K-tuples membership to the subsets of matching patterns and we prove its optimality. We apply our method to the integration of three Colombian homicide record systems and we perform a simulation study in order to explore the performance of the method under measurement error and different scenarios. The proposed method works well and opens some directions for future research.
机译:我们提出了一种用于链接多个数据文件的概率方法。在缺少所记录个人的唯一标识符的情况下,这项任务并不容易。当将普查数据链接到覆盖范围测量调查以进行普查范围评估时,以及通常需要集成多个记录系统进行后验分析时,这是一种常见的情况。我们的方法概括了Fellegi-Sunter理论,用于链接来自两个数据文件的记录及其现代实现。多记录链接目标是根据不同的匹配模式对来自K个数据文件的记录K元组进行分类。我们的方法在用于对匹配概率建模的数据的计算中纳入了协议的可传递性。我们使用混合模型使用EM算法通过最大似然来拟合匹配概率。我们提出了一种方法来确定记录K元组隶属匹配模式的子集,并证明了其最优性。我们将我们的方法应用于三个哥伦比亚凶杀案记录系统的集成,并进行了仿真研究,以探讨该方法在测量误差和不同情况下的性能。所提出的方法行之有效,并为将来的研究开辟了一些方向。

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