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Optimized communication strategies with binary coherent states over phase noise channels

机译:在相位噪声通道上具有二进制相干态的优化通信策略

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The achievable rate of information transfer in optical communications is determined by the physical properties of the communication channel, such as the intrinsic channel noise. Bosonic phase noise channels, a class of non-Gaussian channels, have emerged as a relevant noise model in quantum information and optical communication. However, while the fundamental limits for communication over Gaussian channels have been extensively studied, the properties of communication over Bosonic phase noise channels are not well understood. Here we propose and demonstrate experimentally the concept of optimized communication strategies for communication over phase noise channels to enhance information transfer beyond what is possible with conventional methods of modulation and detection. Two key ingredients are generalized constellations of coherent states that interpolate between standard on-off keying and binary phase-shift keying formats, and non-Gaussian measurements based on photon number resolving detection of the coherently displaced signal. For a given power constraint and channel noise strength, these novel strategies rely on joint optimization of the input alphabet and the measurement to provide enhanced communication capability over a non-Gaussian channel characterized in terms of the error rate as well as mutual information.
机译:光通信中可实现的信息传输速率取决于通信信道的物理属性,例如固有信道噪声。玻色子相位噪声信道是一类非高斯信道,已经成为量子信息和光通信中的一种相关噪声模型。但是,尽管已经对高斯信道上的通信的基本限制进行了广泛研究,但对Bosonic相位噪声信道上的通信的属性却知之甚少。在这里,我们提出并通过实验证明了用于相位噪声信道上通信的优化通信策略的概念,以增强信息传递,而超出了传统的调制和检测方法。两个关键要素是相干态的广义星座,它们在标准的开-关键控和二进制相移键控格式之间进行插值,以及基于相干位移信号的光子数分辨检测的非高斯测量。对于给定的功率约束和信道噪声强度,这些新颖的策略依赖于输入字母和测量的联合优化,以在以错误率和互信息为特征的非高斯信道上提供增强的通信能力。

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