Exploration of Optimizing FPGA-based Qubit Controller for Experiments on Superconducting Quantum Computing Hardware

Hans Johnson, Silvia Zorzetti, J. Saniie
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引用次数: 2

Abstract

This work explores avenues and target areas for optimizing FPGA-based control hardware for experiments conducted on superconducting quantum computing systems and serves as an introduction to some of the current research at the intersection of classical and quantum computing hardware. With the promise of building larger-scale error-corrected quantum computers based on superconducting qubit architecture, innovations to room-temperature control electronics are needed to bring these quantum realizations to fruition. The QICK (Quantum Instrumentation Control Kit) is one leading experimental FPGA-based implementations. However, its integration into other experimental quantum computing architectures, especially those using superconducting radiofrequency (SRF) cavities, is largely unexplored. We identify some key target areas for optimizing control electronics for superconducting qubit architectures and provide some preliminary results to the resolution of a control pulse waveform. With optimizations targeted at 3D superconducting qubit setups, we hope to bring to light some of the requirements in classical computational methodologies to bring out the full potential of this quantum computing architecture, and to convey the excitement of progress in this research.
超导量子计算硬件实验中基于fpga的量子比特控制器优化探索
这项工作探索了在超导量子计算系统上进行实验的优化基于fpga的控制硬件的途径和目标领域,并作为对经典和量子计算硬件交叉的一些当前研究的介绍。随着基于超导量子比特架构构建更大规模纠错量子计算机的前景,需要对室温控制电子设备进行创新,以实现这些量子实现。QICK(量子仪器控制套件)是一个领先的基于fpga的实验实现。然而,它与其他实验量子计算架构的集成,特别是那些使用超导射频(SRF)腔的量子计算架构,在很大程度上还没有被探索。我们确定了优化超导量子比特体系结构控制电子器件的一些关键目标领域,并为控制脉冲波形的分辨率提供了一些初步结果。通过针对3D超导量子比特设置的优化,我们希望揭示经典计算方法中的一些要求,以充分发挥这种量子计算架构的潜力,并传达这项研究进展的兴奋。
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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