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Outsourced Private Function Evaluation with Privacy Policy Enforcement

机译:实施带有隐私政策的外包私人职能评估

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摘要

We propose a novel framework for outsourced private function evaluation with privacy policy enforcement (OPFE-PPE). Suppose an evaluator evaluates a function with private data contributed by a data contributor, and a client obtains the result of the evaluation. OPFE-PPE enables a data contributor to enforce two different kinds of privacy policies to the process of function evaluation: evaluator policy and client policy. An evaluator policy restricts entities that can conduct function evaluation with the data. A client policy restricts entities that can obtain the result of function evaluation. We demonstrate our construction with three applications: personalized medication, genetic epidemiology, and prediction by machine learning. Experimental results show that the overhead caused by enforcing the two privacy policies is less than 10% compared to function evaluation by homomorphic encryption without any privacy policy enforcement.
机译:我们为隐私策略执行(OPFE-PPE)外包私有功能评估提出了一个新颖的框架。假设评估者使用数据贡献者贡献的私有数据评估功能,并且客户获得评估结果。 OPFE-PPE使数据提供者可以在功能评估过程中实施两种不同类型的隐私策略:评估者策略和客户端策略。评估者策略限制了可以对数据进行功能评估的实体。客户策略限制了可以获取功能评估结果的实体。我们通过三种应用来证明我们的构造:个性化药物治疗,遗传流行病学和机器学习预测。实验结果表明,与没有任何隐私策略强制实施的同态加密进行功能评估相比,实施这两个隐私策略所导致的开销不到10%。

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