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APS -APS March Meeting 2017 - Event - Efficient recurrence quantum entanglement distillation algorithm for quantum channels impaired by fiber birefringence

机译:APS -APS 2017年3月会议-事件-光纤双折射削弱的量子通道的高效递归量子纠缠蒸馏算法

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Distributing entangled states with high fidelity via fiber optic routes is challenging due to the various decoherence mechanisms in fibers. In particular, one of the primary polarization decoherence mechanism in optical fibers is polarization mode dispersion (PMD), which is the distortion of optical pulses by random birefringences in the system. Among quantum entanglement distillation (QED) algorithms proposed to mitigate decoherence, the recurrence QED algorithms require the smallest size of quantum circuits, and are most robust against severe decoherence. On the other hand, the yield of recurrence QED algorithms drops exponentially with respect to the rounds of distillation, and hence it is critical to minimize the required rounds of distillation. We present a recurrence QED algorithm, which is capable of achieving maximum fidelity in every round of distillation when each photonic qubit individually traverses a PMD-degraded channel. The attainment of optimal fidelity in every round of distillation implies that our algorithm reaches the fastest possible convergence speed and hence requires the minimum rounds of distillation. Therefore, the proposed algorithm provides an efficient method to distribute entangled states with high fidelity via optic fibers.
机译:由于光纤中的各种去相干机制,通过光纤路线以高保真度分布纠缠态是一项挑战。特别地,光纤中主要的偏振退相干机制之一是偏振模色散(PMD),它是系统中随机双折射引起的光脉冲失真。在为减轻退相干性而提出的量子纠缠蒸馏(QED)算法中,递归QED算法需要最小尺寸的量子电路,并且对严重的退相干性最鲁棒。另一方面,循环QED算法的产量相对于蒸馏次数呈指数下降,因此至关重要的是使所需的蒸馏次数最小化。我们提出一种递归QED算法,当每个光子量子位分别遍历PMD降解的通道时,该算法能够在每一轮蒸馏中实现最大保真度。在每一轮蒸馏中达到最佳保真度意味着我们的算法达到了最快的收敛速度,因此需要最少的蒸馏轮次。因此,提出的算法提供了一种有效的方法来通过光纤高保真度地分配纠缠态。

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