论文标题

随机状态的密集编码和传送的性能 - 通过预处理

Performance of Dense Coding and Teleportation for Random States --Augmentation via Pre-processing

论文作者

Gupta, Rivu, Gupta, Shashank, Mal, Shiladitya, De, Aditi Sen

论文摘要

为了了解量子通信任务中自然量子系统的机智,我们研究了HAAR统一生成的各种等级的随机多部分状态的密集编码能力(DCC)和传送忠诚度(TF)。我们证明,当排名2的两分四分位国家,沃纳州和纯状态具有相同数量的纠缠时,排名2状态的DCC属于纯净和沃纳国家制造的信封。以类似的方式,当使用两个发件人和一个单个接收器进行密集编码时,我们通过广义的Greenberger-Horne-Horne-Zeilinger状态获得了上限,以进行等级-2的三分之二状态,并在发件人中测量纠缠:接收者双方。据报道,DCC的归一化频率分布据报道,据报道,在接收器末端,具有全局和局部解码的随机生成的两,三量和四量密度矩阵。发现两量态状态的平均DCC的估计与数值模拟非常吻合。普遍地,我们观察到,随机编码的随机状态的性能以及传送范围随着国家在开始协议之前对共享状态执行的本地预处理操作所掩盖的状态等级的增加而降低,无论国家等级如何。此处采用的本地预处理基于正面运营商的有价​​值测量以及古典交流,我们表明,与具有两个Quib的随机状态进行密集的编码不同,发件人的操作始终有助于提高实施密集编码和传送的能力。

In order to understand the resourcefulness of a natural quantum system in quantum communication tasks, we study the dense coding capacity (DCC) and teleportation fidelity (TF) of Haar uniformly generated random multipartite states of various ranks. We prove that when a rank-2 two-qubit state, a Werner state, and a pure state possess the same amount of entanglement, the DCC of a rank-2 state belongs to the envelope made by pure and Werner states. In a similar way, we obtain an upper bound via the generalized Greenberger-Horne-Zeilinger state for rank-2 three-qubit states when the dense coding with two senders and a single receiver is performed and entanglement is measured in the senders:receiver bipartition. The normalized frequency distribution of DCC for randomly generated two-, three- and four-qubit density matrices with global as well as local decodings at the receiver's end are reported. The estimation of mean DCC for two-qubit states is found to be in good agreement with the numerical simulations. Universally, we observe that the performance of random states for dense coding as well as teleportation decreases with the increase of the rank of states which we have shown to be surmounted by the local pre-processing operations performed on the shared states before starting the protocols, irrespective of the rank of the states. The local pre-processing employed here is based on positive operator valued measurements along with classical communication and we show that unlike dense coding with two-qubit random states, senders' operations are always helpful to probabilistically enhance the capabilities of implementing dense coding as well as teleportation.

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