One-Sided Device-Independent Certification of Unbounded Random Numbers

PC@UCNC Pub Date : 2018-06-27 DOI:10.4204/EPTCS.273.2
Brian Coyle, M. Hoban, E. Kashefi
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引用次数: 19

Abstract

The intrinsic non-locality of correlations in Quantum Mechanics allow us to certify the behaviour of a quantum mechanism in a device independent way. In particular, we present a new protocol that allows an unbounded amount of randomness to be certified as being legitimately the consequence of a measurement on a quantum state. By using a sequence of non-projective measurements on single state, we show a more robust method to certify unbounded randomness than the protocol of Churchod et al., by moving to a one-sided device independent scenario. This protocol also does not assume any specific behaviour of the adversary trying to fool the participants in the protocol, which is an advantage over previous steering based protocols. We present numerical results which confirm the optimal functioning of this protocol in the ideal case. Furthermore, we also study an experimental scenario to determine the feasibility of the protocol in a realistic implementation. The effect of depolarizing noise is examined, by studying a potential state produced by a networked system of ion traps.
无界随机数的单边设备无关认证
量子力学中相关的内在非局部性使我们能够以与设备无关的方式证明量子机制的行为。特别是,我们提出了一种新的协议,允许无限大的随机性被证明是对量子态测量的合法结果。通过在单个状态上使用一系列非投影测量,我们展示了一种比Churchod等人的协议更鲁棒的方法来证明无界随机性,通过移动到单侧设备独立的场景。该协议也不假设对手试图欺骗协议中的参与者的任何特定行为,这比以前基于转向的协议有优势。我们给出的数值结果证实了该协议在理想情况下的最优功能。此外,我们还研究了一个实验场景,以确定协议在现实实现中的可行性。通过研究离子阱网络系统产生的势态,考察了去极化噪声的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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