English

Experimental realization of the bucket-brigade quantum random access memory

Quantum Physics 2025-06-23 v1

Abstract

Quantum random access memory (QRAM) enables efficient classical data access for quantum computers -- a prerequisite for many quantum algorithms to achieve quantum speedup. Despite various proposals, the experimental realization of QRAM remains largely unexplored. Here, we experimentally investigate the circuit-based bucket-brigade QRAM with a superconducting quantum processor. To facilitate the experimental implementation, we introduce a hardware-efficient gate decomposition scheme for quantum routers, which effectively reduces the depth of the QRAM circuit by more than 30% compared to the conventional controlled-SWAP-based implementation. We further propose an error mitigation method to boost the QRAM query fidelity. With these techniques, we are able to experimentally implement the QRAM architectures with two and three layers, achieving query fidelities up to 0.800 ±\pm 0.026 and 0.604±\pm0.005, respectively. Additionally, we study the error propagation mechanism and the scalability of our QRAM implementation, providing experimental evidence for the noise resilience nature of the bucket-brigade QRAM architecture. Our results highlight the potential of superconducting quantum processors for realizing a scalable QRAM architecture.

Keywords

Cite

@article{arxiv.2506.16682,
  title  = {Experimental realization of the bucket-brigade quantum random access memory},
  author = {Fanhao Shen and Yujie Ji and Debin Xiang and Yanzhe Wang and Ke Wang and Chuanyu Zhang and Aosai Zhang and Yiren Zou and Yu Gao and Zhengyi Cui and Gongyu Liu and Jianan Yang and Yihang Han and Jinfeng Deng and Anbang Wang and Zhihong Zhang and Hekang Li and Qiujiang Guo and Pengfei Zhang and Chao Song and Liqiang Lu and Zhen Wang and Jianwei Yin},
  journal= {arXiv preprint arXiv:2506.16682},
  year   = {2025}
}

Comments

10 pages, 5 figures + 13 pages, 7 figures

R2 v1 2026-07-01T03:25:55.053Z