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Personalized Privacy Assistants for the Internet of Things: Providing Users with Notice and Choice

机译:物联网的个性化隐私助手:为用户提供通知和选择

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As we interact with an increasingly diverse set of sensing technologies, it becomes difficult to keep up with the many different ways in which data about ourselves is collected and used. Study after study has shown that while people generally care about their privacy, they feel they have little awareness of-let alone control over-the collection and use of their data. This article summarizes ongoing research to develop and field privacy assistants designed to empower people to regain control over their privacy in the Internet of Things (IoT). Specifically, we focus on the infrastructure we have developed and deployed to support privacy assistants for the IoT. This infrastructure enables the assistants to discover IoT resources (sensors, apps, services, devices, and so on) in the vicinity of their users, and selectively inform users about the data practices associated with these resources. It also supports the discovery of user-configurable settings for IoT resources (opt in, opt out, data erasure, and so on) if there are any, enabling privacy assistants to help users configure their IoT experience in accordance with their privacy expectations. We also discuss how, using machine learning to build and refine models of users privacy expectations and preferences, we plan to developed personalized privacy assistants capable of selectively informing their users about the data practices they actually care about and of helping them configure associated privacy settings.
机译:随着我们与越来越多样化的传感技术进行交互,很难跟上收集和使用有关我们自己的数据的许多不同方式。一项又一项的研究表明,尽管人们通常在乎自己的隐私,但他们感到自己几乎不了解,更不用说控制数据的收集和使用了。本文总结了正在进行的有关开发和现场隐私助手的研究,这些助手旨在使人们能够重新获得对物联网(IoT)中隐私的控制。具体来说,我们专注于开发和部署以支持IoT隐私助手的基础架构。该基础架构使助手可以发现其用户附近的IoT资源(传感器,应用,服务,设备等),并有选择地向用户通知与这些资源相关的数据实践。它还支持发现IoT资源的用户可配置设置(选择加入,退出,数据擦除等)(如果有),从而使隐私助手能够帮助用户根据其隐私期望配置其IoT体验。我们还讨论了如何使用机器学习来建立和完善用户隐私期望和偏好的模型,我们计划开发个性化的隐私助手,该助手能够有选择地向用户告知其实际关心的数据做法,并帮助他们配置相关的隐私设置。

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