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A Differentially Private Matching Scheme for Pairing Similar Users of Proximity Based Social Networking applications

机译:基于邻近社交网络应用的类似用户配对的差分私有匹配方案

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摘要

The pervasiveness of smartphones has made connecting with users through proximity based mobile social networks commonplace in today’s culture. Many such networks connect users by matching them based on shared interests. With ever-increasing concern for privacy, users are wary of openly sharing personal information with strangers. Several methods have addressed this privacy concern such as encryption and k-anonymity, but none address issues of eliminating third party matches, achieving relevant matches, and prohibiting malicious users from inferring information based on their input into the system. In this paper, we propose a matching scheme that accurately pairs similar users while simultaneously providing protection from malicious users inferring information. Specifically, we match users in a proximity-based social network setting adapted from a framework of differential privacy. This eliminates the need for third-party matching schemes, allows for accurate matching, and ensures malicious users will be unable to infer information from matching results.
机译:智能手机的普及已使通过基于邻近的移动社交网络与用户建立联系成为当今文化中的普遍现象。许多这样的网络通过基于共享兴趣匹配用户来连接用户。随着人们对隐私的日益关注,用户对与陌生人公开共享个人信息保持谨慎。几种方法已经解决了这种隐私问题,例如加密和k-匿名性,但是没有一种方法解决消除第三方匹配,实现相关匹配以及禁止恶意用户基于他们对系统的输入来推断信息的问题。在本文中,我们提出了一种匹配方案,该方案可以准确地配对相似的用户,同时提供针对恶意用户推断信息的保护。具体来说,我们在基于差异性隐私框架的基于邻近度的社交网络设置中匹配用户。这消除了对第三方匹配方案的需求,允许进行精确匹配,并确保恶意用户将无法从匹配结果中推断信息。

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