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Cloud Edge-Client Collaborative Trajectory Privacy Protection System and Technology

机译:云边-客户端协同轨迹隐私保护系统与技术

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摘要

Location-based service (LBS), with its personalized, real time, and mobile features, is one of the more popular mobile applications (apps) in the world today. However, under the centralized LBS architecture, the high dimensional trajectory data collected from LBS users are directly exposed to the central server, which entails serious privacy risks. Although existing privacy protection technologies can protect the private user trajectories to a certain extent, they often ignore the reasonable data requirements of LBS providers (e.g., data required to maintain or improve services). Focusing on the weaknesses of centralized LBS and the shortcomings of existing solutions, this article proposes a cloud edge-client collaborative trajectory privacy protection system. The system migrates LBS from the cloud to the network edge and balances privacy and utility-including service utility and data utility-with anonymous authentication, dummy location, and privacy risk evaluation mechanisms. The theoretical analysis and simulation results show that the system can effectively protect trajectory privacy under the premise of high availability of services and data, which is a significant improvement over the current LBS system.
机译:基于位置的服务 (LBS) 具有个性化、实时和移动功能,是当今世界上最流行的移动应用程序 (app) 之一。然而,在中心化的LBS架构下,从LBS用户那里收集的高维轨迹数据直接暴露在中心服务器上,存在严重的隐私风险。现有的隐私保护技术虽然可以在一定程度上保护隐私用户的发展轨迹,但往往忽略了LBS提供商的合理数据需求(例如,维护或改进服务所需的数据)。针对中心化LBS的弱点和现有解决方案的不足,本文提出了一种云边-客户端协同轨迹隐私保护系统。该系统将LBS从云端迁移到网络边缘,通过匿名认证、虚拟位置和隐私风险评估机制,平衡隐私和效用(包括业务效用和数据效用)。理论分析和仿真结果表明,该系统在服务和数据高可用的前提下,能够有效保护轨迹隐私,较现有LBS系统有显著改进。

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