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Analysis of One-Time Random Projections for Privacy Preserving Compressed Sensing

机译:隐私保护压缩感知的一次性随机投影分析

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In this paper, the security of the compressed sensing (CS) framework as a form of data confidentiality is analyzed. Two important properties of one-time random linear measurements acquired using a Gaussian independent identically distributed matrix are outlined: 1) the measurements reveal only the energy of the sensed signal and 2) only the energy of the measurements leaks information about the signal. An important consequence of the above facts is that CS provides information theoretic secrecy in a particular setting. Namely, a simple strategy based on the normalization of the Gaussian measurements achieves, at least in theory, perfect secrecy, enabling the use of CS as an additional security layer in privacy preserving applications. In the generic setting in which CS does not provide information theoretic secrecy, two alternative security notions linked to the difficulty of estimating the energy of the signal and distinguishing equal-energy signals are introduced. Useful bounds on the mean square error of any possible estimator and the probability of error of any possible detector are provided and compared with the simulations. The results indicate that CS is in general not secure according to cryptographic standards, but may provide a useful built-in data obfuscation layer.
机译:本文分析了压缩感知(CS)框架作为数据机密性的安全性。概述了使用高斯独立的均匀分布矩阵获得的一次性随机线性测量的两个重要属性:1)测量仅揭示感测信号的能量,2)仅测量能量泄漏有关信号的信息。上述事实的重要结果是,CS在特定环境中提供了信息理论上的保密性。即,基于高斯测量的归一化的简单策略至少在理论上实现了完美的保密性,从而使得CS可以用作隐私保护应用程序中的附加安全层。在CS不提供信息理论保密性的通用环境中,引入了两个与估计信号能量和区分等能量信号的难度有关的替代安全概念。提供了关于任何可能的估计器的均方误差和任何可能的检测器的错误概率的有用界限,并将其与仿真进行了比较。结果表明,根据加密标准,CS通常并不安全,但是可以提供有用的内置数据混淆层。

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