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STDP: Secure Privacy-Preserving Trajectory Data Publishing

机译:STDP:安全隐私保护轨迹数据发布

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摘要

As the smart devices and cloud services are rapidly expanding, a large amount of location information can easily be gathered. However, there is a conflict between collecting location information and protecting personal information since obtaining and utilizing the information may be restricted due to privacy concerns. In fact, various methods which use K-anonymity for original location data have been studied, but these methods have excessively reduced data utility while stressing highly on privacy preservation. In this research, we suggest a novel model to overcome this fundamental dilemma. Compared to the existing approaches, our study shows a new theoretical advancement in privacy protection and outstanding performance in terms of time complexity and data utility.
机译:随着智能设备和云服务的迅速发展,可以轻松地收集大量的位置信息。但是,由于隐私问题可能会限制获取和使用信息,因此收集位置信息和保护个人信息之间存在冲突。实际上,已经研究了将K-匿名性用于原始位置数据的各种方法,但是这些方法在极大地强调隐私保护的同时,极大地降低了数据的实用性。在这项研究中,我们建议一种新颖的模型来克服这一基本难题。与现有方法相比,我们的研究在时间复杂度和数据实用性方面显示了隐私保护和出色性能方面的新理论进展。

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