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SSPA-LBS: Scalable and Social-Friendly Privacy-Aware Location-Based Services

机译:SSPA-LBS:可扩展且对社交友好的基于隐私的基于位置的服务

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摘要

Privacy-aware location-based service (PA-LBS) preserves LBS users' privacy but undesirably sacrifices service quality. In order to balance the two factors with satisfactory user experience, existing frameworks are faced with two barriers, that is, scalability and social-friendliness. First, existing schemes do not enable LBS users to flexibly scale their privacy level on service provision. Such a lack of scalability easily results in either unacceptable service-quality degradation or insufficient privacy protection and fails to meet dynamic user requirements. Second, existing schemes handle privacy protection by merely considering the trust relationship between users and servers but ignore the complex trust relationships among users. As a result, users cannot preserve privacy in location-based social services that involve user-to-user interactions. In this paper, we present the first scalable and social-friendly PA-LBS system. In particular, we propose a novel camouflage algorithm with a formal privacy guarantee that enables LBS users to expose their location information by scaling two privacy related factors, that is, camouflage range and place type. Furthermore, we apply the scalable ciphertext policy attribute-based encryption algorithm to enable LBS users to effectively control the access from other users to their location information. Moreover, we also demonstrated the operational efficiency of the proposed system through successful implementations on Android devices.
机译:基于隐私的基于位置的服务(PA-LBS)可以保护LBS用户的隐私,但是会不利地牺牲服务质量。为了在令人满意的用户体验与两个因素之间取得平衡,现有框架面临着两个障碍,即可扩展性和社交友好性。首先,现有方案无法使LBS用户灵活地根据服务提供扩展其隐私级别。这种可伸缩性的缺乏很容易导致不可接受的服务质量下降或隐私保护不足,并且不能满足动态用户需求。其次,现有方案仅通过考虑用户和服务器之间的信任关系来处理隐私保护,而忽略用户之间的复杂信任关系。结果,用户无法在涉及用户到用户交互的基于位置的社交服务中保留隐私。在本文中,我们介绍了第一个可扩展且对社会友好的PA-LBS系统。尤其是,我们提出了一种具有正式隐私保证的新颖迷彩算法,该算法使LBS用户可以通过缩放两个与隐私相关的因素(即迷彩范围和地点类型)来公开其位置信息。此外,我们应用了基于可伸缩密文策略属性的加密算法,以使LBS用户能够有效地控制其他用户对其位置信息的访问。此外,我们还通过在Android设备上的成功实施展示了所建议系统的运行效率。

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