Reliable Quantum Communications Based on Asymmetry in Distillation and Coding

Lorenzo Valentini;René Bødker Christensen;Petar Popovski;Marco Chiani
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Abstract

The reliable provision of entangled qubits is an essential precondition in a variety of schemes for distributed quantum computing. This is challenged by multiple nuisances, such as errors during the transmission over quantum links, but also due to degradation of the entanglement over time due to decoherence. The latter can be seen as a constraint on the latency of the quantum protocol, which brings the problem of quantum protocol design into the context of latency–reliability constraints. We address the problem through hybrid schemes that combine: indirect transmission based on teleportation and distillation, and direct transmission, based on quantum error correction (QEC). The intuition is that, at present, the quantum hardware offers low fidelity, which demands distillation; on the other hand, low latency can be obtained by QEC techniques. It is shown that, in the proposed framework, the distillation protocol gives rise to asymmetries that can be exploited by asymmetric quantum error correcting code, which sets the basis for unique hybrid distillation and coding design. Our results show that ad hoc asymmetric codes give, compared with conventional QEC, a performance boost and codeword size reduction both in a single-link and in a quantum network scenario.
基于蒸馏和编码不对称的可靠量子通信
可靠地提供纠缠量子比特是各种分布式量子计算方案的重要前提。这面临着多重干扰的挑战,例如量子链路传输过程中的错误,以及退相干导致的纠缠随时间衰减。后者可以看作是对量子协议延迟的限制,这就把量子协议设计问题带入了延迟-可靠性限制的范畴。我们通过混合方案来解决这个问题,这些方案结合了:基于远距传输和蒸馏的间接传输,以及基于量子纠错(QEC)的直接传输。我们的直觉是,目前量子硬件提供的保真度较低,因此需要进行蒸馏;另一方面,QEC 技术可以获得较低的延迟。研究表明,在所提出的框架中,蒸馏协议会产生不对称,而不对称量子纠错码可以利用这些不对称,这为独特的混合蒸馏和编码设计奠定了基础。我们的研究结果表明,与传统的 QEC 相比,特设非对称编码在单链路和量子网络场景中都能提高性能并减少码字大小。
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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