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Using Trusted Execution Environments for Secure Stream Processing of Medical Data (Case Study Paper)

机译:使用可信的执行环境对医疗数据进行安全流处理(案例研究文件)

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Processing sensitive data, such as those produced by body sensors, on third-party untrusted clouds is particularly challenging without compromising the privacy of the users generating it. Typically, these sensors generate large quantities of continuous data in a streaming fashion. Such vast amount of data must be processed efficiently and securely, even under strong adversarial models. The recent introduction in the mass-market of consumer-grade processors with Trusted Execution Environments (TEEs), such as Intel SGX, paves the way to implement solutions that overcome less flexible approaches, such as those atop homo-morphic encryption. We present a secure streaming processing system built on top of Intel SGX to showcase the viability of this approach with a system specifically fitted for medical data. We design and fully implement a prototype system that we evaluate with several realistic datasets. Our experimental results show that the proposed system achieves modest overhead compared to vanilla Spark while offering additional protection guarantees under powerful attackers and threat models.
机译:在不损害生成该数据的用户的隐私的情况下,在第三方不受信任的云上处理敏感数据(例如由身体传感器生成的数据)尤其具有挑战性。通常,这些传感器以流方式生成大量连续数据。即使在强大的对抗模型下,也必须高效,安全地处理如此大量的数据。最近在具有可信执行环境(TEE)的消费级处理器的大众市场上推出了诸如Intel SGX之类的产品,为实施解决方案提供了方法,该解决方案可以克服灵活性较弱的方法,例如同态加密之外的方法。我们提出了一个基于Intel SGX的安全流处理系统,以展示该方法的可行性以及专门用于医疗数据的系统。我们设计并完全实现了一个原型系统,该系统将使用多个实际数据集进行评估。我们的实验结果表明,与香草Spark相比,该提议的系统实现了适度的开销,同时在强大的攻击者和威胁模型下提供了额外的保护保证。

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