论文标题
信仰传播带有量子增强古典通信的量子消息
Belief Propagation with Quantum Messages for Quantum-Enhanced Classical Communications
论文作者
论文摘要
对于基于太空的激光通信,当每个接收到的光脉冲的平均光子数远小于1时,与接收器可实现的通信能力之间存在很大的差距,而接收器可以执行单个单个脉冲检测,而量子最佳的“关节检测接收器”在长时间的脉冲脉冲脉冲上集体起作用;效果通常称为“超级能力”。在本文中,我们认为最简单的场景已知:具有相干二进制相移键合(BPSK)调制的纯损失通道。可以从概念上映射两个bpsk状态,以量子的两个非正交状态,由内部产物描述,是每个脉冲平均光子数的函数。使用此地图,我们根据最近的“信仰传播量子通用量子消息”(BPQM)(ARXIV:1607.04833)的概念,得出了联合检测接收器的量子电路的明确结构。我们量化了其性能改进,比执行最佳逐脉冲检测的Dolinar接收器,这代表了最佳的“经典”方法。我们严格分析该方案,并表明它在区分长度5二进制线性代码的8(bpsk)代码字中达到了最小平均误差概率的量子极限。我们的结果表明,BPQM接收器可能会达到此BPSK调制的纯损失通道的孔隙容量。此外,我们的接收器电路为量子至上实验提供了替代建议,该实验针对的是特定应用,该应用可能可以在小型的特殊,特殊的光子量子计算机上实现,能够执行猫 - 巴西通用Qubit逻辑。
For space-based laser communications, when the mean photon number per received optical pulse is much smaller than one, there is a large gap between communications capacity achievable with a receiver that performs individual pulse-by-pulse detection, and the quantum-optimal "joint-detection receiver" that acts collectively on long codeword-blocks of modulated pulses; an effect often termed "superadditive capacity". In this paper, we consider the simplest scenario where a large superadditive capacity is known: a pure-loss channel with a coherent-state binary phase-shift keyed (BPSK) modulation. The two BPSK states can be mapped conceptually to two non-orthogonal states of a qubit, described by an inner product that is a function of the mean photon number per pulse. Using this map, we derive an explicit construction of the quantum circuit of a joint-detection receiver based on a recent idea of "belief-propagation with quantum messages" (BPQM) (arXiv:1607.04833). We quantify its performance improvement over the Dolinar receiver that performs optimal pulse-by-pulse detection, which represents the best "classical" approach. We analyze the scheme rigorously and show that it achieves the quantum limit of minimum average error probability in discriminating 8 (BPSK) codewords of a length-5 binary linear code with a tree factor graph. Our result suggests that a BPQM-receiver might attain the Holevo capacity of this BPSK-modulated pure-loss channel. Moreover, our receiver circuit provides an alternative proposal for a quantum supremacy experiment, targeted at a specific application that can potentially be implemented on a small, special-purpose, photonic quantum computer capable of performing cat-basis universal qubit logic.