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A personalized trajectory privacy protection method

机译:个性化轨迹隐私保护方法

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摘要

Trajectory data of sports or activities are usually collected and shared into social apps like Wechat moments, Sina weibo in public to provide health services and recommendation, while a large number of friends with weak ties in social circle will cause privacy leakage of users' locations and life habits. To solve the problem, a personalized trajectory privacy protection scheme based on relationship strength called PTPP is proposed, the location obfusca-tion algorithm based on noise radius limiting geo-indistinguishability and location clustering is explored. Not only is privacy protected, but privacy budgets are controlled in fine grain according to relationship strength between users. Meanwhile, a hybrid calculation model of social relationship strength called HCM is proposed, which combines clustering and BP neural network and improve the reasonableness of social relationship strength. Finally, the availability and security of the PTPP algorithm are analyzed in the application scenarios of social networks. Analysis and the experimental results show that the method proposed could evaluate the strength of the relationship between users effectively and achieve personalized trajectory privacy protection.
机译:通常收集体育或活动的轨迹数据,并分享到公众的微克时刻,如丝网时刻,提供健康服务和建议,而社会圈中疲软的弱联系的大量朋友将导致用户的位置泄露生命习惯。为了解决这个问题,提出了一种基于称为PTPP的关系强度的个性化轨迹隐私保护方案,探讨了基于噪声半径限制Geo-Convistyability和位置聚类的位置Obfusca-Tion算法。不仅是隐私权保护,但隐私预算根据用户之间的关系实力在细粒中控制。同时,提出了一种称为HCM的社会关系强度的混合计算模型,其结合了聚类和BP神经网络,提高了社会关系实力的合理性。最后,在社交网络的应用方案中分析了PTPP算法的可用性和安全性。分析和实验结果表明,所提出的方法可以有效地评估用户之间关系的强度,实现个性化轨迹隐私保护。

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