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Analysis of privacy and utility tradeoffs in anonymized mobile context streams

机译:分析匿名移动上下文流中的隐私和实用程序权衡

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摘要

Mobile user data are collected by service providers around the clock and through intelligent data analysis in which it can offer great services for health cares, business activities, and other personal or social services, etc. However, data could be misused and privacy could potentially be breached which might lead to harmful consequences. Many privacy-preserving techniques have been proposed in the past decade for anonymizing relational and social data. But only a handful of privacypreserving techniques have been proposed to anonymize sensitive mobile context before releasing data to service providers. Unfortunately, these techniques also reduce the utility of data that are supposed to provide helpful services. As such, the effectiveness of these anonymization techniques cannot be easily justified and compared. In this work, we propose a unified approach to define privacy gain and utility loss due to anonymizing sensitive context on mobile user data. We further perform extensive numerical evaluation on various well-known anonymization techniques, compare their performances and trade-offs between privacy and utility, and also provide a framework of analysis which serves a reference for adopting suitable anonymization technique for different user requirements.
机译:服务提供商将全天候并通过智能数据分析来收集移动用户数据,在该数据中它可以为医疗保健,商业活动以及其他个人或社会服务等提供出色的服务。但是,数据可能会被滥用并且隐私可能被滥用。可能会导致有害后果。在过去的十年中,已经提出了许多隐私保护技术来匿名化关系和社交数据。但是,在将数据发布给服务提供商之前,仅提出了几种隐私保护技术来匿名化敏感的移动上下文。不幸的是,这些技术也降低了应该提供有用服务的数据的实用性。因此,这些匿名化技术的有效性不容易被证明和比较。在这项工作中,我们提出了一种统一的方法来定义由于匿名移动用户数据上的敏感上下文而导致的隐私增加和公用事业损失。我们进一步对各种众所周知的匿名化技术进行了广泛的数值评估,比较了它们的性能和隐私与实用性之间的折衷,还提供了一个分析框架,为为不同的用户需求采用合适的匿名化技术提供了参考。

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