SWAP冒名顶替者:双向量子隐形传态及其性能

IF 4.2 Q2 QUANTUM SCIENCE & TECHNOLOGY AVS quantum science Pub Date : 2022-10-19 DOI:10.1116/5.0135467
Aliza U. Siddiqui, M. Wilde
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引用次数: 2

摘要

双向量子隐形传态是双方之间交换量子信息的基本协议。具体来说,两个个体利用共享资源状态以及本地操作和经典通信(LOCC)来交换量子态。在这项工作中,我们简要地强调了我们的同伴论文[A]的贡献。王志强,王志强,王志强,等。中国科学院学报(自然科学版),2012,37(4):444 - 444。本文提出了两种量化非理想双向隐形传态误差的方法:归一化菱形距离和信道不信度。然后我们确定这两个指标给出的值对于这个任务是相等的。此外,通过放宽从LOCC允许的操作集到完全保留部分转置正的操作集,我们获得了非理想双向隐形传态误差的半定规划下界。我们对一些关键的例子——各向同性状态和根本没有资源状态——评估这些边界。在这两种情况下,我们都找到了解析解。第二个例子建立了经典和量子双向隐形传态的基准。我们研究的另一个例子由两个贝尔状态组成,它们通过广义振幅阻尼通道发送。对于这种情况,我们找到了误差的解析表达式,以及在数值精度上与前者一致的数值解。
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The SWAP imposter: Bidirectional quantum teleportation and its performance
Bidirectional quantum teleportation is a fundamental protocol for exchanging quantum information between two parties. Specifically, two individuals make use of a shared resource state as well as local operations and classical communication (LOCC) to swap quantum states. In this work, we concisely highlight the contributions of our companion paper [A. U. Siddiqui and M. M. Wilde, arXiv:2010.07905 (2020)]. We develop two different ways of quantifying the error of nonideal bidirectional teleportation by means of the normalized diamond distance and the channel infidelity. We then establish that the values given by both metrics are equal for this task. Additionally, by relaxing the set of operations allowed from LOCC to those that completely preserve the positivity of the partial transpose, we obtain semidefinite programing lower bounds on the error of nonideal bidirectional teleportation. We evaluate these bounds for some key examples—isotropic states and when there is no resource state at all. In both cases, we find an analytical solution. The second example establishes a benchmark for classical versus quantum bidirectional teleportation. Another example that we investigate consists of two Bell states that have been sent through a generalized amplitude damping channel. For this scenario, we find an analytical expression for the error, as well as a numerical solution that agrees with the former up to numerical precision.
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CiteScore
9.90
自引率
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