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Personalized Privacy-Preserving Task Allocation for Mobile Crowdsensing

机译:用于移动人群感知的个性化隐私保护任务分配

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Location information of workers are usually required for optimal task allocation in mobile crowdsensing, which however raises severe concerns of location privacy leakage. Although many approaches have been proposed to protect the locations of users, the location protection for task allocation in mobile crowdsensing has not been well explored. In addition, to the best of our knowledge, none of existing privacy-preserving task allocation mechanisms can provide personalized location protection considering different protection demands of workers. In this paper, we propose a personalized privacy-preserving task allocation framework for mobile crowdsensing that can allocate tasks effectively while providing personalized location privacy protection. The basic idea is that each worker uploads the obfuscated distances and personal privacy level to the server instead of its true locations or distances to tasks. In particular, we propose a Probabilistic Winner Selection Mechanism (PWSM) to minimize the total travel distance with the obfuscated information from workers, by allocating each task to the worker who has the largest probability of being closest to it. Moreover, we propose a Vickrey Payment Determination Mechanism (VPDM) to determine the appropriate payment to each winner by considering its movement cost and privacy level, which satisfies the truthfulness, profitability, and probabilistic individual rationality. Extensive experiments on the real-world datasets demonstrate the effectiveness of the proposed mechanisms.
机译:为了在移动人群感知中实现最佳任务分配,通常需要工人的位置信息,但这引起了对位置隐私泄漏的严重关注。尽管已经提出了许多方法来保护用户的位置,但是尚未很好地探索用于移动人群感知中的任务分配的位置保护。另外,据我们所知,考虑到工人的不同保护需求,现有的隐私保护任务分配机制都无法提供个性化的位置保护。在本文中,我们提出了一种用于移动人群感知的个性化隐私保护任务分配框架,该框架可以有效地分配任务,同时提供个性化的位置隐私保护。基本思想是,每个工作人员将混淆的距离和个人隐私级别上载到服务器,而不是其实际位置或到任务的距离。特别是,我们提出了一种概率优胜者选择机制(PWSM),通过将每个任务分配给最有可能与之最接近的工人,以最大程度地缩短总行程,并减少来自工人的混淆信息。此外,我们提出了一种维克雷付款确定机制(VPDM),通过考虑其真实性,获利能力和概率个人合理性,通过考虑其获胜者的移动成本和隐私级别来确定向每位获胜者支付的适当款项。在真实数据集上的大量实验证明了所提出机制的有效性。

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