变损耗光信道上相干态接收机的强化学习校准

Matias Bilkis, M. Rosati, J. Calsamiglia
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引用次数: 2

摘要

本文研究了在可变透射率量子光信道上传输的量子接收机的光相干态校准问题。可变透射率量子光信道是长距离光纤和自由/深空光通信[1]-[7]的通用模型。我们优化了传统自适应接收机的平均误差概率,如Kennedy和Dolinar的[8],[9],相对于信道透射率分布。然后,我们将我们的结果与一般量子器件所能达到的最终误差概率进行比较,这是我们所知的第一次计算相干态假设混合的Helstrom界,并使用同差测量。利用这些工具,我们首先分析了两种不同透射率值的最简单情况;我们发现,随著两种透过率差异的增加,自适应接收器所采用的策略呈现出惊人的新特征。最后,我们采用了最近引入的浅强化学习方法库[10],证明了智能代理可以通过在具有可变传输率的信道上重复通信事件进行训练,并在正确识别相干状态消息的情况下接收奖励,从头开始学习最佳接收器设置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reinforcement-learning calibration of coherent-state receivers on variable-loss optical channels
We study the problem of calibrating a quantum receiver for optical coherent states when transmitted on a quantum optical channel with variable transmissivity, a common model for long-distance optical-fiber and free/deep-space optical communication [1]–[7]. We optimize the error probability of legacy adaptive receivers, such as Kennedy’s and Dolinar’s [8], [9], on average with respect to the channel transmissivity distribution. We then compare our results with the ultimate error probability attainable by a general quantum device, computing the Helstrom bound for mixtures of coherent-state hypotheses, for the first time to our knowledge, and with homodyne measurements. With these tools, we first analyze the simplest case of two different transmissivity values; we find that the strategies adopted by adaptive receivers exhibit strikingly new features as the difference between the two transmissivities increases. Finally, we employ a recently introduced library of shallow reinforcement learning methods [10], demonstrating that an intelligent agent can learn the optimal receiver setup from scratch by training on repeated communication episodes on the channel with variable transmissivity and receiving rewards if the coherent-state message is correctly identified.
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