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首页> 外文期刊>IEEE transactions on wireless communications >Incentivizing Crowdsensing With Location-Privacy Preserving
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Incentivizing Crowdsensing With Location-Privacy Preserving

机译:通过保护位置隐私来激励人群感知

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摘要

Crowd sensing systems enable a wide range of data collection, where the data are usually tagged with private locations. How to incentivize users to participate in such systems while preserving location-privacy is coming up as a critical issue. To this end, we consider location-privacy protection when motivating users to sense data instead of viewing them separately. Without loss of generality, -anonymity is utilized to reduce the risk of location-privacy disclosure. Specifically, we propose a location aggregation method to cluster users into groups for -anonymity preserving, and meanwhile mitigating the incurred information loss. After that, an incentive mechanism is carefully designed to select efficient users and calculate rational compensations based on clustered groups obtained in location aggregation, where the influences of both the information loss and -anonymity in location-privacy preserving are captured into group values and sensing costs. Through theoretical analysis and extensive performances evaluated on real and synthetic data, we find out that the incentive payment increases sharply with more stringent privacy protection and the information loss can be further mitigated compared with conventional methods.
机译:人群感应系统可以实现广泛的数据收集,其中通常使用私有位置标记数据。如何在保持位置隐私的同时激励用户参与此类系统已成为一个关键问题。为此,我们在鼓励用户感知数据而不是单独查看数据时会考虑位置隐私保护。在不失一般性的前提下,使用匿名性来降低位置隐私公开的风险。具体来说,我们提出了一种位置聚集方法,将用户分为几类进行匿名保存,同时减轻了信息丢失的风险。此后,精心设计了一种激励机制,以选择有效的用户并基于在位置聚合中获得的聚类组来计算合理的补偿,其中信息丢失和-匿名性在位置-隐私保护中的影响都被捕获为组值和感知成本。 。通过理论分析和对真实数据和综合数据进行评估后得出的广泛性能,我们发现,在采用更严格的隐私保护的情况下,奖励金急剧增加,并且与传统方法相比,可以进一步减轻信息损失。

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