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Privacy-Preserving Outsourced Clinical Decision Support System in the Cloud

机译:云中隐私保护外包临床决策支持系统

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摘要

In this paper, we propose a privacy-preserving clinical decision support system using Naive Bayesian (NB) classifier, hereafter referred to as Peneus, designed for the outsourced cloud computing environment. Peneus allows one to use patient health information to train the NB classifier privately, which can then be used to predict a patient's (undiagnosed) disease based on his/her symptoms in a single communication round. Specifically, we design secure Single Instruction Multiple Data (SIMD) integer circuits using the fully homomorphic encryption scheme, which can greatly increase the performance compared with the original secure integer circuit. Then, we present a privacy-preserving historical Personal Health Information (PHI) aggregation protocol to allow different PHI sources to be securely aggregated without the risk of compromising the privacy of individual data owner. Also, secure NB classifier is constructed to achieve secure disease prediction in the cloud without the help of an additional non-colluding computation server. We then demonstrate that Peneus achieves the goal of patient health status monitoring without privacy leakage to unauthorized parties, as well as the utility and the efficiency of Peneus using simulations and analysis.
机译:在本文中,我们提出了一种使用Naive Bayesian(NB)分类器的隐私保留临床决策支持系统,下文称为莱昂,专为外包云计算环境而设计。佩佩斯允许人们私下使用患者健康信息来训练NB分级器,然后可以用于根据单一通信循环中的症状预测患者(未结社会)疾病。具体而言,我们使用完全同态加密方案设计安全的单指令多数据(SIMD)整数电路,与原始安全整数电路相比,这可以大大提高性能。然后,我们提出了一种隐私保留的历史个人健康信息(PHI)汇总协议,以允许不同的PHI来源被安全地汇总,而不会影响个人数据所有者隐私的风险。此外,构建安全NB分类器以在云中实现安全疾病预测,而无需附加的非勾结计算服务器。然后,我们展示了佩内斯在没有隐私泄漏到未经授权的缔约方的情况下实现患者健康状况监测的目标,以及使用模拟和分析的纯粹性和莱昂斯的效率。

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