论文标题
量子网络上远程纠缠生成的有效路由设计
Effective routing design for remote entanglement generation on quantum networks
论文作者
论文摘要
量子网络是许多开创性应用程序的有前途的平台,它超出了其经典同行的能力。具有相对有限的资源(例如量子记忆)的量子网络上有效的纠缠生成对于完全实现网络的能力是必不可少的,该解决方案需要精致的网络设计,目前处于原始阶段。在这项研究中,我们提出了一个有效的路由方案,以实现自动响应,以自动响应具有有限边缘能力的量子晶格网络上的源末端站点之间的纠缠生成请求。通过执行纠缠净化来确保每个路径的纠缠保真度,为每个连接请求利用多个连接路径。该路由方案具有柔性性质高度模块化,将量子操作嵌入算法工作流程中,其性能是从多个角度评估的。特别是,提出了三种算法并比较量子网络边缘上容量分配的计划。在经典的路由问题中体现了成比例的共享和渐进式填充的思想,我们设计了一种新的调度算法,即传播更新方法,在某些方面,该算法在计划表演中基于经典启发式的两种算法覆盖了两种算法。通用解决方案方案为有效设计有效设计在适用量子网络上的有效设计和流控制协议。
Quantum network is a promising platform for many ground-breaking applications that lie beyond the capability of its classical counterparts. Efficient entanglement generation on quantum networks with relatively limited resources such as quantum memories is essential to fully realize the network's capabilities, the solution to which calls for delicate network design and is currently at the primitive stage. In this study we propose an effective routing scheme to enable automatic responses for multiple requests of entanglement generation between source-terminal stations on a quantum lattice network with finite edge capacities. Multiple connection paths are exploited for each connection request while entanglement fidelity is ensured for each path by performing entanglement purification. The routing scheme is highly modularized with a flexible nature, embedding quantum operations within the algorithmic workflow, whose performance is evaluated from multiple perspectives. In particular, three algorithms are proposed and compared for the scheduling of capacity allocation on the edges of quantum network. Embodying the ideas of proportional share and progressive filling that have been well-studied in classical routing problems, we design a new scheduling algorithm, the propagatory update method, which in certain aspects overrides the two algorithms based on classical heuristics in scheduling performances. The general solution scheme paves the road for effective design of efficient routing and flow control protocols on applicational quantum networks.