Efficient homomorphic encryption on integer vectors and its applications

Hongchao Zhou, G. Wornell
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引用次数: 77

Abstract

Homomorphic encryption, aimed at enabling computation in the encrypted domain, is becoming important to a wide and growing range of applications, from cloud computing to distributed sensing. In recent years, a number of approaches to fully (or nearly fully) homomorphic encryption have been proposed, but to date the space and time complexity of the associated schemes has precluded their use in practice. In this work, we demonstrate that more practical homomorphic encryption schemes are possible when we require that not all encrypted computations be supported, but rather only those of interest to the target application. More specifically, we develop a homomorphic encryption scheme operating directly on integer vectors that supports three operations of fundamental interest in signal processing applications: addition, linear transformation, and weighted inner products. Moreover, when used in combination, these primitives allow us to efficiently and securely compute arbitrary polynomials. Some practically relevant examples of the computations supported by this framework are described, including feature extraction, recognition, classification, and data aggregation.
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整数向量的高效同态加密及其应用
同态加密旨在实现加密领域的计算,对于从云计算到分布式感知的广泛且不断增长的应用越来越重要。近年来,已经提出了许多实现完全(或几乎完全)同态加密的方法,但是到目前为止,相关方案的空间和时间复杂性阻碍了它们在实践中的使用。在这项工作中,我们证明,当我们要求不支持所有加密计算,而只支持目标应用程序感兴趣的计算时,更实用的同态加密方案是可能的。更具体地说,我们开发了一种直接在整数向量上操作的同态加密方案,该方案支持信号处理应用中最基本的三种操作:加法、线性变换和加权内积。此外,当组合使用时,这些原语允许我们有效和安全地计算任意多项式。描述了该框架支持的一些实际相关计算示例,包括特征提取、识别、分类和数据聚合。
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