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Spatiotemporal Mobility Based Trajectory Privacy-Preserving Algorithm in Location-Based Services

机译:基于时空移动性的基于轨迹隐私保留算法在基于位置的服务中

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摘要

Recent years have seen the wide application of Location-Based Services (LBSs) in our daily life. Although users can enjoy many conveniences from the LBSs, they may lose their trajectory privacy when their location data are collected. Therefore, it is urgent to protect the user’s trajectory privacy while providing high quality services. Trajectory k-anonymity is one of the most important technologies to protect the user’s trajectory privacy. However, the user’s attributes are rarely considered when constructing the k-anonymity set. It results in that the user’s trajectories are especially vulnerable. To solve the problem, in this paper, a Spatiotemporal Mobility (SM) measurement is defined for calculating the relationship between the user’s attributes and the anonymity set. Furthermore, a trajectory graph is designed to model the relationship between trajectories. Based on the user’s attributes and the trajectory graph, the SM based trajectory privacy-preserving algorithm (MTPPA) is proposed. The optimal k-anonymity set is obtained by the simulated annealing algorithm. The experimental results show that the privacy disclosure probability of the anonymity set obtained by MTPPA is about 40% lower than those obtained by the existing algorithms while the same quality of services can be provided.
机译:近年来,我们在日常生活中广泛应用了基于位置的服务(LBSS)。虽然用户可以享受LBSS的许多便利,但在收集其位置数据时,它们可能会失去轨迹隐私。因此,在提供高质量服务的同时保护用户的轨迹隐私是迫切的。轨迹k-匿名是保护用户轨迹隐私最重要的技术之一。但是,在构建k-匿名集时很少考虑用户的属性。它导致用户的轨迹尤其脆弱。为了解决问题,在本文中,定义了一种时空移动(SM)测量来计算用户属性与匿名集之间的关系。此外,轨迹图旨在模拟轨迹之间的关系。基于用户的属性和轨迹图,提出了基于SM基的轨迹隐私保留算法(MTPA)。通过模拟退火算法获得最佳k-匿名集。实验结果表明,MTPPA获得的匿名集的隐私披露概率比现有算法所获得的透露性比约40%,而可以提供相同的服务质量。

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