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A k-anonymity privacy-preserving approach in wireless medical monitoring environments

机译:无线医疗监控环境中的k匿名隐私保护方法

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摘要

With the proliferation of wireless sensor networks and mobile technologies in general, it is possible to provide improved medical services and also to reduce costs as well as to manage the shortage of specialized personnel. Monitoring a person's health condition using sensors provides a lot of benefits but also exposes personal sensitive information to a number of privacy threats. By recording user-related data, it is often feasible for a malicious or negligent data provider to expose these data to an unauthorized user. One solution is to protect the patient's privacy by making difficult a linkage between specific measurements with a patient's identity. In this paper we present a privacy-preserving architecture which builds upon the concept of fc-anonymity; we present a clustering-based anonymity scheme for effective network management and data aggregation, which also protects user's privacy by making an entity indistinguishable from other k similar entities. The presented algorithm is resource aware, as it minimizes energy consumption with respect to other more costly, cryptography-based approaches. The system is evaluated from an energy-consuming and network performance perspective, under different simulation scenarios.
机译:总体上,随着无线传感器网络和移动技术的激增,有可能提供改进的医疗服务,并降低成本以及管理专业人员的短缺。使用传感器监视一个人的健康状况有很多好处,但也会使个人敏感信息暴露于多种隐私威胁中。通过记录与用户有关的数据,恶意或疏忽的数据提供者将这些数据暴露给未经授权的用户通常是可行的。一种解决方案是通过使特定测量值与患者身份之间的联系变得困难来保护患者的隐私。在本文中,我们提出了一种基于fc-anonymity概念的隐私保护体系结构。我们提出了一种基于群集的匿名方案,以进行有效的网络管理和数据聚合,该方案还通过使一个实体与其他k个相似实体无法区分来保护用户的隐私。提出的算法具有资源意识,因为相对于其他更昂贵的基于密码的方法,它可将能耗降至最低。在不同的模拟方案下,从能耗和网络性能的角度对系统进行了评估。

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