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Preserving Privacy and Fairness in Peer-to-Peer Data Integration

机译:在点对点数据集成中保留隐私和公平性

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Peer-to-peer data integration - a.k.a. Peer Data Management Systems (PDMSs) - promises to extend the classical data integration approach to the Internet scale. Unfortunately, some challenges remain before realizing this promise. One of the biggest challenges is preserving the privacy of the exchanged data while passing through several intermediate peers. Another challenge is protecting the mappings used for data translation. Protecting the privacy without being unfair to any of the peers is yet a third challenge. This paper presents a novel query answering protocol in PDMSs to address these challenges. The protocol employs a technique based on noise selection and insertion to protect the query results, and a commutative encryption-based technique to protect the mappings and ensure fairness among peers. An extensive security analysis of the protocol shows that it is resilient to several possible types of attacks. We implemented the protocol within an established PDMS: the Hyperion system. We conducted an experimental study using real data from the healthcare domain. The results show that our protocol manages to achieve its privacy and fairness goals, while maintaining query processing time at the interactive level.
机译:点对点数据集成 - A.K.A.对等数据管理系统(PDMS) - 承诺扩展到互联网级的经典数据集成方法。不幸的是,在实现这一承诺之前,一些挑战仍然存在。最大的挑战之一是在通过几个中级同行时保留交换数据的隐私。另一个挑战是保护用于数据转换的映射。保护隐私而不是对任何同行的不公平尚未成为第三个挑战。本文介绍了PDMS中的新型查询应答协议,以解决这些挑战。该协议采用基于噪声选择和插入的技术来保护查询结果,以及基于换向的加密技术,以保护映射并确保对等方之间的公平性。对协议的广泛安全性分析表明它是有若干类型可能的攻击。我们在已建立的PDMS中实现了协议:Hyperion系统。我们使用医疗领域的实际数据进行了实验研究。结果表明,我们的协议管理以实现其隐私和公平目标,同时在交互式级别维持查询处理时间。

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