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Preserving Location Privacy in Ride-Hailing Service

机译:在乘车服务中维护位置隐私

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Ride-hailing service has become part of our daily life due to its convenience and low cost. However, it also raises location privacy concerns for riders, because the service provider can observe the full mobility traces of riders while they hail rides. To address this problem, we first present a baseline privacy preserving solution. Although the baseline solution can provide personalized rider location privacy, we identify potential location inference attacks against it. To overcome these attacks, we propose an enhanced privacy preserving solution that exploits novel obfuscation techniques to enable matching ride requests to drivers without breaching riders' location privacy and with limited loss of matching accuracy. We use real dataset of taxicabs to show that our solution, compared to previous work, provides much better ride matching, i.e., ride matching closer to the optimal solution, while preserving personalized riders' location privacy.
机译:乘车服务由于其便捷和低成本而已成为我们日常生活的一部分。但是,这也引起了骑手的位置隐私问题,因为服务提供商可以在骑手冰雹时观察骑手的全部移动痕迹。为了解决这个问题,我们首先提出一个基线隐私保护解决方案。尽管基准解决方案可以提供个性化的骑行者位置隐私,但是我们可以识别针对它的潜在位置推断攻击。为了克服这些攻击,我们提出了一种增强的隐私保护解决方案,该解决方案利用新颖的混淆技术来实现与驾驶员匹配的乘车请求,而不会违反驾驶员的位置隐私,并且损失的匹配精度有限。我们使用出租车的真实数据集来表明,与以前的工作相比,我们的解决方案提供了更好的乘车匹配,即,乘车匹配更接近最佳解决方案,同时保留了个性化乘员的位置隐私。

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