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Privacy Preserving Schema and Data Matching

机译:隐私保留架构和数据匹配

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In many business scenarios, record matching is performed across different data sources with the aim of identifying common information shared among these sources. However such need is often in contrast with privacy requirements concerning the data stored by the sources. In this paper, we propose a protocol for record matching that preserves privacy both at the data level and at the schema level. Speci?cally, if two sources need to identify their common data, by running the protocol they can compute the matching of their datasets without sharing their data in clear and only sharing the result of the matching.The protocol uses a third party, and maps records into a vector space in order to preserve their privacy.Experimental results show the e?ciency of the matching protocol in terms of precision and recall as well as the good computational performance.
机译:在许多业务场景中,跨不同的数据源执行录制匹配,目的是识别这些来源之间共享的公共信息。然而,这种需求通常与源存储的数据的隐私要求相比。在本文中,我们提出了一种用于记录匹配的协议,该匹配在数据级别和模式级别保留隐私。具体色列:如果两个源需要识别它们的常见数据,则通过运行协议,它们可以计算他们的数据集的匹配而不清楚地共享数据,并且仅共享匹配结果。该协议使用第三方,并使用第三方和地图记录到矢量空间中,以保持其隐私。实验结果表明匹配协议的效率在精度和召回以及良好的计算性能方面。

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