FPGA-based Deterministic and Low-Latency Control for Distributed Quantum Computing

R. Oliveira, S. Bahrani, E. Arabul, Rui Wang, R. Nejabati, D. Simeonidou
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Abstract

Distributed quantum computing is a promising solution for creating large-scale quantum computers. In such scenarios, quantum processing units (QPUs) are connected to each other via quantum and classical links. To increase the performance in such a distributed manner, and due to the fragile nature of quantum bits and their decoherence with time, the impact of classical links such as communication latency and jitter between QPUs shall be considered. Here, we propose a low-latency and time-deterministic FPGA-based network supporting execution of distributed quantum circuits. We focus on transmissions of measurement result and control messages as well as synchronization in a distributed network. We demonstrate that a message is transmitted with 361.60 ns between QPUs using optical Ethernet. Synchronization reaches 9.6 ns precision using only Ethernet frames and can reach 21 ps with an external clock. Further, a use-case example of an Inverse Quantum Fourier Transform is implemented to evaluate the impact in terms of latency for inter-QPU data transfers. Our theoretical error analysis and simulation results show that the latency added by our FPGA-controlled network has a negligible impact on the quantum algorithm performance for practical values of memory decoherence time.
基于fpga的分布式量子计算确定性和低延迟控制
分布式量子计算是创建大规模量子计算机的一个很有前途的解决方案。在这种情况下,量子处理单元(qpu)通过量子和经典链路相互连接。为了以这种分布式方式提高性能,并且由于量子比特的脆弱性及其随时间的退相干性,需要考虑量子处理器之间的通信延迟和抖动等经典链路的影响。在这里,我们提出了一个低延迟和时间确定性的基于fpga的网络,支持分布式量子电路的执行。重点研究了分布式网络中测量结果和控制信息的传输以及同步问题。我们证明了使用光以太网在qpu之间传输消息的时间为361.60 ns。仅使用以太网帧同步精度可达9.6 ns,使用外部时钟同步精度可达21 ps。此外,还实现了一个反量子傅立叶变换的用例,以评估qpu间数据传输延迟方面的影响。理论误差分析和仿真结果表明,fpga控制网络增加的延迟对量子算法性能的影响可以忽略不计。
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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