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A Hybrid Approach to Private Record Matching

机译:私人记录匹配的混合方法

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摘要

Real-world entities are not always represented by the same set of features in different data sets. Therefore, matching records of the same real-world entity distributed across these data sets is a challenging task. If the data sets contain private information, the problem becomes even more difficult. Existing solutions to this problem generally follow two approaches: sanitization techniques and cryptographic techniques. We propose a hybrid technique that combines these two approaches and enables users to trade off between privacy, accuracy, and cost. Our main contribution is the use of a blocking phase that operates over sanitized data to filter out in a privacy-preserving manner pairs of records that do not satisfy the matching condition. We also provide a formal definition of privacy and prove that the participants of our protocols learn nothing other than their share of the result and what can be inferred from their share of the result, their input and sanitized views of the input data sets (which are considered public information). Our method incurs considerably lower costs than cryptographic techniques and yields significantly more accurate matching results compared to sanitization techniques, even when privacy requirements are high.
机译:现实世界中的实体并不总是由不同数据集中的同一组要素表示。因此,匹配分布在这些数据集上的同一真实世界实体的记录是一项艰巨的任务。如果数据集包含私人信息,问题将变得更加困难。针对该问题的现有解决方案通常遵循两种方法:清理技术和密码技术。我们提出了一种混合技术,将两种方法结合在一起,使用户可以在隐私,准确性和成本之间进行权衡。我们的主要贡献是使用阻塞阶段,该阶段对经过清理的数据进行操作,以保护隐私的方式过滤不满足匹配条件的记录对。我们还提供了隐私的正式定义,并证明我们协议的参与者从他们的结果共享中以及从他们的结果共享,他们的输入和输入数据集的经过清理的视图中可以推断出什么,他们什么都学不到。被视为公共信息)。与隐私技术相比,我们的方法比加密技术所产生的成本要低得多,并且即使在隐私要求很高的情况下,其匹配结果也可以明显更精确。

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