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Novel Privacy-preserving algorithm based on frequent path for trajectory data publishing

机译:基于频繁路径的轨迹数据发布隐私保护新算法

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摘要

Existing location-based services have collected a large amount of location data, which contain users' personal information and has serious personal privacy leakage threats. Therefore, the preservation of individual privacy when publishing data is receiving increasing attention. Most existing methods of preserving user privacy suffer a serious loss in data usability, resulting in low usability of data. In this paper, we address this problem and present TOPF, a novel approach for preserving privacy in trajectory data publishing based on frequent path. TOPF aims to achieve better quality of trajectory data for publishing and strike a balance between the conflicting goals of data usability and data privacy. To the best of our knowledge, this is the first paper that uses frequent path to preserve data privacy. First, infrequent roads in each trajectory are removed, and a new way is adopted to divide trajectories into candidate groups. A new method for finding the most frequent path is then proposed, and then, the representative trajectory is selected to represent all trajectories within a group. Experimental results show that our algorithm not only effectively guarantees the privacy of the user but also ensures the high usability of the data. (C) 2018 Elsevier B.V. All rights reserved.
机译:现有的基于位置的服务已经收集了大量的位置数据,其中包含用户的个人信息,并且存在严重的个人隐私泄露威胁。因此,发布数据时保护个人隐私越来越受到关注。现有的大多数保护用户隐私的方法都会严重损害数据的可用性,从而导致数据的可用性较低。在本文中,我们解决了这个问题并提出了TOPF,这是一种基于频繁路径在轨迹数据发布中保护隐私的新颖方法。 TOPF旨在提高用于发布的轨迹数据的质量,并在相互矛盾的数据可用性和数据隐私目标之间取得平衡。据我们所知,这是第一篇使用频繁路径保存数据隐私的文章。首先,去除每个轨迹中的不频繁道路,并采用一种新的方式将轨迹划分为候选组。然后提出了一种寻找最频繁路径的新方法,然后,选择代表性轨迹来代表一个组内的所有轨迹。实验结果表明,该算法不仅有效地保证了用户的隐私性,而且还保证了数据的高可用性。 (C)2018 Elsevier B.V.保留所有权利。

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