位置隐私的高可变性地理混淆

P. Wightman, M. Zurbarán, A. Santander
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引用次数: 13

摘要

在过去几年中,利用用户位置来提供更个性化服务的应用程序数量一直在增加,这主要是由于低成本智能手机、地理定位系统和其他因素,如社交网络。由于最终攻击者在获得位置信息后可能拥有的能力,因此保护这些信息的关注也在增加。文献中提出了一些保护技术;例如,位置混淆,它稍微改变位置以隐藏真实的位置。然而,这种技术可能会被基于时间序列的机制过滤掉。在这项工作中,为了减少基于诱发噪声的高可变性和不对称性的基于ema的滤波的可能性,提出了Pinwheel混淆技术。结果表明,在不对称场景下,滤波噪声水平从N-RAND的35%和θ-Rand混淆技术的30%降低到Pinwheel的15%,同时在滤波攻击后保持与原始路径的较长最终平均距离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High variability geographical obfuscation for location privacy
In the last few years, the number of applications that use the location of the users in order to provide a more personalized service have been increasing, mainly due to easy access to low cost smartphones, geographical positioning systems and other factors, like social networking. The concern of protecting this information is also increasing due to the capabilities than an eventual attacker could have if the location information is obtained. Some protection techniques have been proposed in the literature; for example, location obfuscation which slightly alters the location to hide the real one. However, this technique could be filtered out with time series-based mechanisms. In this work, the Pinwheel obfuscation technique is proposed in order to reduce the possibility of EMA-based filtering based on high variability and asymmetry of the induced noise. The results show that the level of filtered noise is reduced from 35% in N-RAND and 30% in θ-Rand obfuscation techniques, to 15% in Pinwheel, with asymmetric scenarios, while preserving a long final average distance from the original path after a filtering attack.
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