论文标题
移动边缘量子计算的通用终端
Universal terminal for mobile edge-quantum computing
论文作者
论文摘要
为了将量子计算能力带到个人边缘设备,最佳方法是具有简单的非错误校正的个人设备,这些设备通过具有低温组件和容忍失误的方案的边缘服务器将计算任务卸载到可扩展的量子计算机。因此,网络元素部署不同的编码协议。本文提出了与不同的编码协议兼容的量子终端。为实现移动边缘量子计算铺平道路。通过容纳腔体内的原子晶格处理器,纠缠机制由Rydberg-Fermi腔 - 水测技术提供。该栅极是通过托有物理Qubits的Plaquette原子的Rydberg电子的费米散射运行的。因此,逻辑质量的不同排列在区分特征状态上得出了中央原子,在以量子干扰区分的早期或后期时期的光子发射。在两个发出的光子上应用一个纠缠 - 交换门,无论其编码协议如何,都会使远程分离量子纠缠。该门提供了一个通用光子接口,用于聚集处理器并将其与与不同编码格式兼容的量子记忆和量子云连接。
To bring the quantum computing capacities to the personal edge devices, the optimum approach is to have simple non-error corrected personal devices that offload the computational tasks to scalable quantum computers via edge servers with cryogenic components and fault-tolerant schemes. Hence the network elements deploy different encoding protocols. This article proposes quantum terminals that are compatible with different encoding protocols; paving the way for realizing mobile edge-quantum computing. By accommodating the atomic lattice processor inside a cavity, the entangling mechanism is provided by the Rydberg-Fermi cavity-QED technology. The gate operates by the Fermi scattering of a Rydberg electron from the plaquette atoms hosting the physical qubits. Therefore, different arrangements of logical-qubits derive the central atom over distinguished eigenstates, featuring photon emission at the early or late times distinguished by quantum interference. Applying an entanglement-swapping gate on two emitted photons would make the far-separated qubits entangled regardless of their encoding protocols. This gate provides a universal photonic interface for clustering the processors and connecting them with the quantum memories and quantum cloud that is compatible with different encoding formats.