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Empowering mobile crowdsourcing apps with user privacy control

机译:具有用户隐私控制的移动众包应用程序

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Mobile crowdsourcing is being increasingly used by industrial and research communities to build realistic datasets. By leveraging the capabilities of mobile devices, mobile crowdsourcing apps can be used to track participants' activity and to collect insightful reports from the environment [e.g., air quality, network quality). However, most of existing crowdsourced datasets systematically tag data samples with metadata (e.g., time and location stamps), which may inevitably lead to user privacy leaks by discarding sensitive information in the wild. This article addresses this critical limitation of the state of the art by proposing a software library that empowers legacy mobile crowdsourcing apps to increase user privacy without compromising the overall quality of the crowdsourced datasets. We propose a decentralized approach, named Fougere, to convey data samples from user devices to third-party servers. By introducing an a priori data anonymization process, we show that Fougere defeats state-of-the-art location-based privacy attacks with little impact on the quality of crowdsourced datasets.
机译:工业和研究社区正在越来越多地用于构建现实数据集的流动众群。通过利用移动设备的能力,移动众群应用程序可用于跟踪参与者的活动并从环境中收集有洞察力的报告[例如,空气质量,网络质量)。然而,大多数现有的众多数据集系统地使用元数据(例如,时间和位置盖章)系统地标记数据样本,这可能通过丢弃野外的敏感信息来不可避免地导致用户隐私泄漏。本文通过提出授权传统移动众包的软件库来提高用户隐私的软件库,解决了本领域技术的这种关键限制,而不会影响众包数据集的整体质量。我们提出了一种分散的方法,命名为Fougere,将数据样本从用户设备传送到第三方服务器。通过介绍一个先验的数据匿名过程,我们表明Fougere击败了最先进的基于位置的隐私攻击,几乎没有影响众包数据集的质量。

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