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The Automatic Detection of Sensitive Data in Smart Homes

机译:智能家居敏感数据的自动检测

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Smart homes are increasingly becoming popular because they make living comfortable, enjoyable, and secure. People can remotely control various aspects of their smart home environments. However, smart home appliances can pose threats to privacy. The reason is that smart appliances collect and store sensitive information, and if hackers gain access to this information, user privacy may be breached. It is difficult for users to constantly monitor and determine which data is sensitive to them and which one is not. Also, a user's identity can be leaked during sharing of information with different service providers such as health care providers and utility companies. In this paper we address one important privacy issue in smart homes, which is lack of users' control over their desired privacy. We propose a privacy decision framework which considers this problem. In this framework, active learning (machine learning) technique is used to help users detect sensitive information according to their privacy preferences.
机译:智能家居越来越受欢迎,因为它们使生活舒适,愉快,安全。人们可以远程控制其智能家庭环境的各个方面。但是,智能家用电器可能会对隐私构成威胁。原因是智能电器收集和存储敏感信息,如果黑客访问此信息,则可能会破坏用户隐私。用户难以持续监控并确定哪些数据对它们敏感,哪一个不是。此外,在与诸如医疗提供者和公用事业公司等不同服务提供商的信息共享信息期间,可以泄露用户的身份。在本文中,我们在智能家庭中解决了一个重要的隐私问题,这些问题缺乏用户对所需隐私的控制。我们提出了隐私决策框架,这是考虑这个问题的。在此框架中,主动学习(机器学习)技术用于帮助用户根据其隐私偏好检测敏感信息。

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