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Design and analysis of digital communication within an SoC-based control system for trapped-ion quantum computing

Quantum Physics 2023-01-20 v2 Hardware Architecture

Abstract

Electronic control systems used for quantum computing have become increasingly complex as multiple qubit technologies employ larger numbers of qubits with higher fidelity targets. Whereas the control systems for different technologies share some similarities, parameters like pulse duration, throughput, real-time feedback, and latency requirements vary widely depending on the qubit type. In this paper, we evaluate the performance of modern System-on-Chip (SoC) architectures in meeting the control demands associated with performing quantum gates on trapped-ion qubits, particularly focusing on communication within the SoC. A principal focus of this paper is the data transfer latency and throughput of several high-speed on-chip mechanisms on Xilinx multi-processor SoCs, including those that utilize direct memory access (DMA). They are measured and evaluated to determine an upper bound on the time required to reconfigure a gate parameter. Worst-case and average-case bandwidth requirements for a custom gate sequencer core are compared with the experimental results. The lowest-variability, highest-throughput data-transfer mechanism is DMA between the real-time processing unit (RPU) and the PL, where bandwidths up to 19.2 GB/s are possible. For context, this enables reconfiguration of qubit gates in less than 2μ\mus, comparable to the fastest gate time. Though this paper focuses on trapped-ion control systems, the gate abstraction scheme and measured communication rates are applicable to a broad range of quantum computing technologies.

Keywords

Cite

@article{arxiv.2209.15601,
  title  = {Design and analysis of digital communication within an SoC-based control system for trapped-ion quantum computing},
  author = {Nafis Irtija and Jim Plusquellic and Eirini Eleni Tsiropoulou and Joshua Goldberg and Daniel Lobser and Daniel Stick},
  journal= {arXiv preprint arXiv:2209.15601},
  year   = {2023}
}

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IEEE Transactions on Quantum Engineering

R2 v1 2026-06-28T02:28:34.674Z