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A Novel Trajectory Privacy-Preserving Future Time Index Structure in Moving Object Databases

机译:移动对象数据库中一种新型的轨迹保密的未来时间索引结构

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The next generation of location-based services has been being predicted to achieve its superior development over the coming years. Keeping pace with this growth are new trends of predictive applications emerging to meet the demands of end-users and satisfy their matters of life. The violation of users' private information from their position disclosure, however, cuts off their beliefs when they enjoy such services. In this paper, therefore, we propose a novel index structure known as PP~(ST)-tree, which is able to deal with predictive and aggregate queries and is aware of trajectory privacy protection towards future positions of moving objects. Moreover, the prediction model and related strategies are also introduced in order to support location-based applications whereas user privacy is still preserved. Last but not least, privacy analyses and performance experiments show how well the proposed method can help.
机译:预计在未来几年中,下一代基于位置的服务将实现其卓越的发展。与这种增长保持同步的是预测应用程序的新趋势,这些应用程序可以满足最终用户的需求并满足他们的生活需求。但是,由于用户的位置信息泄露而侵犯了他们的私人信息,这切断了他们在享受此类服务时的信念。因此,在本文中,我们提出了一种称为PP〜(ST)-tree的新颖索引结构,该结构能够处理预测性查询和聚合查询,并且了解针对移动对象未来位置的轨迹隐私保护。此外,还引入了预测模型和相关策略,以支持基于位置的应用程序,而用户隐私仍然得以保留。最后但并非最不重要的一点是,隐私分析和性能实验显示了所提出方法的效果。

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