Recent technological advancements in satellite based quantum communication has made it a promising technology for realizing global scale quantum networks. Due to better loss distance scaling compared to ground based fiber communication, satellite quantum communication can distribute high quality quantum entanglements among ground stations that are geographically separated at very long distances. This work focuses on optimal distribution of bipartite entanglements to a set of pair of ground stations using a constellation of orbiting satellites. In particular, we characterize the optimal satellite-to-ground station transmission scheduling policy with respect to the aggregate entanglement distribution rate subject to various resource constraints at the satellites and ground stations. We cast the optimal transmission scheduling problem as an integer linear programming problem and solve it efficiently for some specific scenarios. Our framework can also be used as a benchmark tool to measure the performance of other potential transmission scheduling policies.
翻译:卫星量子通信最近的技术进步使卫星量子通信成为实现全球规模量子网络的一个有希望的技术。由于与地面纤维通信相比,损失距离的比重有所提高,卫星量子通信可以在地理上相隔很远的地面站之间散布高质量的量子纠缠。这项工作的重点是利用轨道卫星星座,最佳地将两边纠缠点分布到一组地面站。特别是,我们在卫星和地面站受各种资源限制的情况下,将卫星到地面站总纠缠分布率的最佳卫星到地面站传输时间安排政策定性为最佳政策。我们把最佳传输时间安排问题作为一个整数线性编程问题,并有效地解决某些具体情景。我们的框架还可以用作衡量其他潜在传输时间安排政策绩效的基准工具。