EPR 转向悖论 "2_Q = (2 - δ)_C"

Zhi-Jie Liu, Xingran Fan, Jie Zhou, Mi Xie, Jing-Ling Chen
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摘要

爱因斯坦-波多尔斯基-罗森(EPR)转向是一种介于纠缠和贝尔非位置性之间的量子非位置性,强调了局域-隐态(LHS)模型与量子理论的不兼容性。众所周知,EPR转向悖论是确定转向的基本方法,它通过逻辑矛盾揭示了转向的本质。然而,以往对 EPR 转向悖论的研究只考察了被转向方的条件态为纯态的情况。在这项工作中,我们提出了关于被引导方条件态混合情况下的 EPR 引导悖论,它可以用量子(Q)和经典(C)理论给出的悖论等式 "2Q = (2 - δ)C" (0 < δ < 1)来表示。对于任何 N 量子比特态,在双设定转向协议中,当且仅当转向方的一组特定投影测量使得被转向方的所有条件态均为纯态时,才能得到矛盾 "2Q = (2 - δ)C",这也意味着 N 量子比特态是可转向的。此外,考虑到被引导方的条件态是混合态,我们能够确定通过 EPR 转向悖论方法探测到的全部可转向态。这也意味着,到目前为止,我们已经找到了所有可以通过 EPR 转向悖论识别的可转向态,这对于一些典型的量子方案(如量子远距传输和量子密钥分发)来说意义重大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EPR Steering Paradox “2_Q = (2 − δ)_C”
Einstein-Podolsky-Rosen (EPR) steering is a quantum nonlocality between entanglement and Bell’s nonlocality emphasizing the incompatibility of the local-hidden-state (LHS) model with quantum theory. It is well established that the EPR steering paradox is an essential method for determining steering, which reveals the nature of steering by logical contradiction. However, previous studies on the EPR steering paradox have only examined cases where the conditional states of the steered party are pure. In this work, we present the EPR steering paradox about the case when the conditional states of the steered party are mixed, which can be expressed as a paradoxical equality “2Q = (2 - δ)C” (0 < δ < 1) given by quantum (Q) and classical (C) theories. For any N-qubit state, in the two-setting steering protocol, the contradiction “2Q = (2 - δ)C” can be obtained if and only if a particular set of projective measurements of the steering party makes all the conditional states of the steered party pure, which also implies that the N-qubit state is steerable. Moreover, considering the conditional states of the steered party as mixed states, we are able to identify the full range of steerable states detectable through the EPR steering paradox method. This also means that, so far, one has found all the steerable states that can be recognized by the EPR steering paradox, which is significant for some typical quantum schemes such as quantum teleportation and quantum key distribution.
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