Privacy Control in Smart Phones Using Semantically Rich Reasoning and Context Modeling

D. Ghosh, A. Joshi, Timothy W. Finin, Pramod Jagtap
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引用次数: 36

Abstract

We present our ongoing work on user data and contextual privacy preservation in mobile devices through semantic reasoning. Recent advances in context modeling, tracking and collaborative localization have led to the emergence of a new class of smart phone applications that can access and share embedded sensor data. Unfortunately, this also means significant amount of user context information is now accessible to applications and potentially others, creating serious privacy and security concerns. Mobile OS frameworks like Android lack mechanisms for dynamic privacy control. We show how data flow among applications can be successfully filtered at a much more granular level using semantic web driven technologies that model device location, surroundings, application roles as well as context-dependent information sharing policies.
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基于语义丰富推理和上下文建模的智能手机隐私控制
我们通过语义推理介绍了我们正在进行的关于移动设备中用户数据和上下文隐私保护的工作。上下文建模、跟踪和协作定位方面的最新进展导致了一类新的智能手机应用程序的出现,这些应用程序可以访问和共享嵌入式传感器数据。不幸的是,这也意味着大量的用户上下文信息现在可以被应用程序和潜在的其他人访问,从而产生严重的隐私和安全问题。像Android这样的移动操作系统框架缺乏动态隐私控制机制。我们展示了如何使用语义web驱动技术在更细粒度的级别上成功过滤应用程序之间的数据流,这些技术对设备位置、环境、应用程序角色以及依赖于上下文的信息共享策略进行建模。
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