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L2P2: A location-label based approach for privacy preserving in LBS

机译:L2p2:基于位置标签的LBs隐私保护方法

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摘要

The developments in positioning and mobile communication technology have made the location-based service (LBS) applications more and more popular. For privacy reasons and due to lack of trust in the LBS providers, k-anonymity and l-diversity techniques have been widely used to preserve privacy of users in distributed LBS architectures in Internet of Things (IoT). However, in reality, there are scenarios where the locations of users are identical or similar/near each other in IoT. In such scenarios the k locations selected by k-anonymity technique are the same and location privacy can be easily compromised or leaked. To address the issue of privacy preservation, in this paper, we introduce the location labels to distinguish locations of mobile users to sensitive and ordinary locations. We design a location-label based (LLB) algorithm for protecting location privacy of users while minimizing the response time for LBS requests. We also evaluate the performance and validate the correctness of the proposed algorithm through extensive simulations.
机译:定位和移动通信技术的发展使得基于位置的服务(LBS)应用程序越来越受欢迎。由于隐私的原因以及由于对LBS提供者的信任不足,k匿名和l分集技术已广泛用于在物联网(IoT)中的分布式LBS体系结构中保护用户的隐私。但是,实际上,在某些情况下,物联网中用户的位置相同或相似/彼此接近。在这种情况下,通过k-匿名技术选择的k个位置相同,并且位置隐私很容易受到损害或泄露。为了解决隐私保护问题,在本文中,我们引入了位置标签以将移动用户的位置区分为敏感位置和普通位置。我们设计了一种基于位置标签(LLB)的算法,以保护用户的位置隐私,同时最大程度地缩短LBS请求的响应时间。我们还评估了性能,并通过广泛的仿真验证了所提出算法的正确性。

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