论文标题

量子差异隐私:信息理论的观点

Quantum Differential Privacy: An Information Theory Perspective

论文作者

Hirche, Christoph, Rouzé, Cambyse, França, Daniel Stilck

论文摘要

在为经典计算提供可证明的安全保证时,差异隐私一直是一个非常成功的概念。最近,该概念被推广到量子计算。尽管经典的计算本质上是无嘈杂的,并且通常通过人为地添加噪声来实现差异隐私,但近期量子计算机本质上是嘈杂的,并且观察到这会导致自然差异隐私作为特征。 在这项工作中,我们通过将其作为量子差异来讨论信息理论框架中的量子差异隐私。这种方法的一个主要优点是,差异隐私仅基于计算的输出状态,而无需检查每个测量值。这导致了更简单的证明和对其属性的广义语句以及一般和特定噪声模型的几个新界限。特别是,这些包括量子电路和量子机学习概念的共同表示。在这里,我们专注于实现一定水平的差异隐私所需的噪声量与使任何计算毫无用处的量的噪声量。最后,我们还概括了当地差异隐私,Renyi差异隐私和假设测试解释的经典概念,从而提供了几种新的属性和见解。

Differential privacy has been an exceptionally successful concept when it comes to providing provable security guarantees for classical computations. More recently, the concept was generalized to quantum computations. While classical computations are essentially noiseless and differential privacy is often achieved by artificially adding noise, near-term quantum computers are inherently noisy and it was observed that this leads to natural differential privacy as a feature. In this work we discuss quantum differential privacy in an information theoretic framework by casting it as a quantum divergence. A main advantage of this approach is that differential privacy becomes a property solely based on the output states of the computation, without the need to check it for every measurement. This leads to simpler proofs and generalized statements of its properties as well as several new bounds for both, general and specific, noise models. In particular, these include common representations of quantum circuits and quantum machine learning concepts. Here, we focus on the difference in the amount of noise required to achieve certain levels of differential privacy versus the amount that would make any computation useless. Finally, we also generalize the classical concepts of local differential privacy, Renyi differential privacy and the hypothesis testing interpretation to the quantum setting, providing several new properties and insights.

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