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Misty clouds-A layered cloud platform for online user anonymity in Social Internet of Things

机译:朦胧云-社交物联网中用于在线用户匿名的分层云平台

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摘要

Online services typically collect data that are explicitly provided by users and metadata that are implicitly inferred from users’ activity patterns. The proclaimed goal of metadata collection is to support the quality of service, thus enhancing the Social Internet of Things (SIoT). To most users, it is not obvious that metadata express people’s lives to a large degree. Traditionally, security has focused on protecting communication content rather than the metadata associated with it. This provides a thin layer of privacy protection. Thus, a demand exists for privacy-preserving technologies that prevent metadata collection and aggregation. This paper focuses on a service’s ability to observe communication metadata that can be exploited to learn users’ identities and behavior patterns. Thus, a novel system, Misty Clouds, is proposed as a platform for creating anonymous Internet connections to address both security and performance issues. The performance evaluation shows that the desired level of anonymity can be achieved with tolerable performance overheads. Through a comparison analysis, it is shown that the new algorithm outperforms an existing algorithm, Tor. Additionally, the features that can facilitate the growth of Misty Clouds into a holistic privacy-preserving platform are discussed. Furthermore, a user survey was conducted to study users’ perceptions and attitudes.
机译:在线服务通常会收集用户明确提供的数据以及从用户活动模式中隐式推断出的元数据。元数据收集的既定目标是支持服务质量,从而增强社交物联网(SIoT)。对于大多数用户而言,元数据在很大程度上表达了人们的生活,这一点并不明显。传统上,安全性的重点是保护通信内容,而不是与之关联的元数据。这提供了一层薄薄的隐私保护。因此,存在对防止元数据收集和聚合的隐私保护技术的需求。本文着重于服务观察通讯元数据的能力,这些元数据可用于学习用户的身份和行为模式。因此,提出了一种新颖的系统Misty Clouds作为创建匿名Internet连接以解决安全和性能问题的平台。性能评估表明,可以以可承受的性能开销实现所需的匿名级别。通过比较分析表明,新算法的性能优于现有算法Tor。此外,还讨论了可以促进“迷雾云”向整体隐私保护平台增长的功能。此外,进行了一项用户调查,以研究用户的看法和态度。

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