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Location-Privacy-Aware Service Migration in Mobile Edge Computing

机译:移动边缘计算中的位置隐私感知服务迁移

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To cope with user mobility and resource constraints of the edge servers, various service migration policies have been proposed in mobile edge computing (MEC) to achieve a trade-off between user-perceived delay and the service migration cost by moving the service to the user as close as possible. However, there is a risk of user location privacy leakage if a malicious eavesdropper tracks the service migration trajectory. In this paper, we investigate service migration in MEC by taking the risk of location privacy leakage into account. More specifically, we define the total cost of the system as the combination of the migration cost, user-perceived delay and the risk of location privacy leakage. We formulate the service migration problem as a Markov decision process, and propose an efficient algorithm to find the optimal solution that minimize the long-term total cost. Finally, the simulations based on real-world taxi traces in San Francisco show that the proposed method can make service migration decisions effectively protect the location privacy of users, as well as achieves a lower total cost than other baseline methods.
机译:为了应对边缘服务器的用户移动性和资源限制,已经在移动边缘计算(MEC)中提出了各种服务迁移策略,以通过将服务移至用户来实现用户感知的延迟与服务迁移成本之间的权衡。越近越好。但是,如果恶意窃听者跟踪服务迁移轨迹,则存在用户位置隐私泄漏的风险。在本文中,我们通过考虑位置隐私泄漏的风险来研究MEC中的服务迁移。更具体地说,我们将系统的总成本定义为迁移成本,用户感知的延迟和位置隐私泄漏风险的组合。我们将服务迁移问题公式化为马尔可夫决策过程,并提出了一种有效的算法来寻找可将长期总成本降至最低的最佳解决方案。最后,基于旧金山真实出租车轨迹的仿真结果表明,所提出的方法可以做出服务迁移决策,从而有效保护用户的位置隐私,并且比其他基准方法的总成本更低。

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