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Efficient Optimization of Cut-offs in Quantum Repeater Chains

机译:高效的量子中继器链截止点优化

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Quantum communication enables the implementation of tasks that are unachievable with classical resources. However, losses on the communication channel preclude the direct long-distance transmission of quantum information in many relevant scenarios. In principle quantum repeaters allow one to overcome losses. However, realistic hardware parameters make long-distance quantum communication a challenge in practice. For instance, in many protocols an entangled pair is generated that needs to wait in quantum memory until the generation of an additional pair. During this waiting time the first pair decoheres, impacting the quality of the final entanglement produced. At the cost of a lower rate, this effect can be mitigated by imposing a cut-off condition. For instance, a maximum storage time for entanglement after which it is discarded. In this work, we optimize the cut-offs for quantum repeater chains. First, we develop an algorithm for computing the probability distribution of the waiting time and fidelity of entanglement produced by repeater chain protocols which include a cut-off. Then, we use the algorithm to optimize cut-offs in order to maximize secret-key rate between the end nodes of the repeater chain. We find that the use of the optimal cut-off extends the parameter regime for which secret key can be generated and moreover significantly increases the secret-key rate for a large range of parameters.
机译:量子通信使得能够实现与古典资源无法实现的任务。然而,通信信道上的损失在许多相关场景中妨碍了量子信息的直接远程传输。原则上量子中继器允许人们克服损失。然而,现实的硬件参数在实践中使长途量子通信成为挑战。例如,在许多协议中,生成纠缠的对,其需要在量子存储器中等待,直到生成附加对。在这段等待时间期间,第一对脱歇,影响所产生的最终纠缠的质量。以较低速度的成本,通过施加截止条件,可以减轻这种效果。例如,在丢弃它之后entantlement的最大存储时间。在这项工作中,我们优化了Quantum Repeater链的截止。首先,我们开发一种计算由包括截止的中继器链协议产生的缠结等待时间和保真度的概率分布的算法。然后,我们使用该算法优化截止,以便最大化转发器链的结束节点之间的秘密键速率。我们发现使用最佳截止的使用扩展了可以生成密钥的参数制度,而且显着提高了大范围参数的秘密密钥率。

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