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Protecting Moving Trajectories with Dummies

机译:用假人保护运动轨迹

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摘要

Dummy-based anonymization techniques for protecting location privacy of mobile users have been proposed in the literature. By generating dummies that move in humanlike trajectories, shows that location privacy of mobile users can be preserved. However, by monitoring long-term movement patterns of users, the trajectories of mobile users can still be exposed. We argue that, once the trajectory of a user is identified, locations of the user is exposed. Thus, it''s critical to protect the moving trajectories of mobile users in order to preserve user location privacy. We propose two schemes that generate consistent movement patterns in a long run. Guided by three parameters in user specified privacy profile, namely, short- term disclosure, long-term disclosure and distance deviation, the proposed schemes derive movement trajectories for dummies. A preliminary performance study shows that our approach is more effective than existing work in protecting moving trajectories of mobile users and their location privacy.
机译:在文献中已经提出了用于保护移动用户的位置隐私的基于虚拟的匿名化技术。通过生成沿人的轨迹移动的假人,表明可以保留移动用户的位置隐私。但是,通过监视用户的长期移动模式,仍然可以显示移动用户的轨迹。我们认为,一旦确定了用户的轨迹,就暴露了用户的位置。因此,保护​​移动用户的移动轨迹以保持用户位置隐私至关重要。我们提出了两种方案,它们可以长期产生一致的运动模式。在用户指定的隐私配置文件中的三个参数(即短期披露,长期披露和距离偏差)的指导下,提出的方案可得出虚拟对象的运动轨迹。初步的性能研究表明,在保护移动用户的移动轨迹及其位置隐私方面,我们的方法比现有工作更有效。

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