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Toward Practical Privacy-Preserving Processing Over Encrypted Data in IoT: An Assistive Healthcare Use Case

机译:对IOT中的加密数据进行实际隐私保留处理:辅助医疗保健用例

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摘要

With the advancement of Internet of Things (IoT), a large number of electronic devices are connected to the Internet. These connected electronic devices acquire and transmit information, and respond to any received actions. In the medical ecosystem, hospitals can implement medical diagnosis (MD) with medical sensors, especially for remote auxiliary MD. But, in this context, patients' privacy (PP) is of paramount importance, and confidentiality of medical data is crucial. Therefore, the main challenge ahead is how to realize remote auxiliary MD while protecting confidentiality of the medical data and ensuring PP. In this article, based on somewhat homomorphic encryption (SHE) scheme addressed by Junfeng Fan and Frederik Vercauteren (FV), we provide the first instance of a new efficient SHE scheme for homomorphic evaluation over single instruction multiple data (SIMD). We also implement a new set of efficient SIMD homomorphic comparison and division schemes. Based on these findings, we implement efficient privacy preserving and SIMD homomorphic surf and multiretina-image matching schemes. Offered functionalities include SIMD homomorphic feature point detection, multiretina-image matching, and lesion detection for the encrypted retinal image of diabetic retinopathy. Finally, we provide a proof-of-concept application implementation toward remote auxiliary diagnosis systems for diabetes in order to showcase the core security and privacy pillars of our solution. In the meantime, our IoT system designed with lattice-based cryptography preserves data confidentiality under quantum computation and quantum computers.
机译:随着物联网(物联网)的进步,大量的电子设备连接到互联网。这些连接的电子设备获取和传输信息,并响应任何接收的动作。在医学生态系统中,医院可以使用医疗传感器实施医学诊断(MD),特别是对于远程辅助MD。但是,在这种情况下,患者的隐私(PP)至关重要,医疗数据的保密至关重要。因此,前方的主要挑战是如何在保护医疗数据的机密性并确保PP的同时实现远程辅助MD。在本文中,基于Junfeng Fan and Frederik Vercauten(FV)的若干同性恋加密(她)计划,我们提供了在单个指令多数据(SIMD)上进行新高效SHE计划的新高效评估实例。我们还实施了一套新的高效SIMD同性恋比较和部门方案。基于这些调查结果,我们实施了有效的隐私保存和SIMD同性恋冲浪和多型图形匹配方案。提供的功能包括SIMD同态特征点检测,多型图像匹配和病变检测,用于糖尿病视网膜病变的加密视网膜图像。最后,我们为糖尿病的远程辅助诊断系统提供了概念验证应用程序,以展示我们解决方案的核心安全和隐私柱。与此同时,我们设计的基于格子的加密设计的IoT系统会在量子计算和量子计算机下保留数据机密性。

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