Quantum Rotation Diversity in Displaced Squeezed Binary Phase-Shift Keying

IF 4.6
Ioannis Krikidis
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Abstract

We propose a quantum rotation diversity (QRD) scheme for optical quantum communication using binary phase-shift-keying displaced squeezed states and homodyne detection over Gamma–Gamma turbulence channels. Consecutive temporal modes are coupled by a passive orthogonal rotation that redistributes the displacement amplitude between slots, yielding a diversity order of two under independent fading and joint maximum-likelihood detection. Analytical expressions for the symbol error rate performance, along with asymptotic results for the diversity and coding gains, are derived. The optimal rotation angle and energy allocation between displacement and squeezing are obtained in closed form. Furthermore, we show that when both the displacement amplitude and the squeezing strength scale with the total photon number, an effective diversity order of four is achieved. Numerical results validate the analysis and demonstrate the superdiversity behavior of the proposed QRD scheme.
位移压缩二元相移键控中的量子旋转多样性
我们提出了一种量子旋转分集(QRD)方案,用于光量子通信,该方案使用二元相移键控位移压缩态和伽玛-伽玛湍流通道上的同差检测。在独立衰落和联合最大似然检测下,连续时间模式通过被动正交旋转耦合,该旋转在槽间重新分配位移振幅,产生2级的分集阶数。给出了码元误码率性能的解析表达式,以及码元分集和编码增益的渐近结果。以封闭形式得到了位移与挤压的最佳旋转角度和能量分配。此外,我们还发现当位移振幅和压缩强度与总光子数成比例时,有效的分集阶数为4。数值结果验证了分析结果,并证明了所提QRD方案的超分集特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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