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k-Anonymity-Based Horizontal Fragmentation to Preserve Privacy in Data Outsourcing

机译:基于K-Anonymonity的水平碎片,以保护数据外包中的隐私

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This paper proposes a horizontal fragmentation method to preserve privacy in data outsourcing. The basic idea is to identify sensitive tuples, anonymize them based on a privacy model and store them at the external server. The remaining non-sensitive tuples are also stored at the server side. While our method departs from using encryption, it outsources all the data to the server; the two important goals that existing methods are unable to achieve simultaneously. The main application of the method is for scenarios where encrypting or not outsourcing sensitive data may not guarantee the privacy.
机译:本文提出了一种水平的碎片方法,以保护数据外包中的隐私。基本思想是识别敏感元组,基于隐私模型匿名,并将它们存储在外部服务器上。剩余的非敏感元组也存储在服务器端。当我们的方法离开使用加密时,它将所有数据拓扑到服务器;现有方法无法同时实现的两个重要目标。该方法的主要应用是用于加密或不外包敏感数据的情况可能无法保证隐私。

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