量子电子学报 ›› 2026, Vol. 43 ›› Issue (4): 513-523.doi: 10.3969/j.issn.1007-5461.2026.04.002

• 量子线路设计自动化 • 上一篇    下一篇

扩展量子门集在量子纠错中的应用(特邀,封面文章)

孔令航 1, 陈建鑫 2*   

  1. 1 中关村实验室, 北京 100000; 2 清华大学计算机科学与技术系, 北京 100084
  • 收稿日期:2025-11-04 修回日期:2025-12-31 出版日期:2026-07-28 发布日期:2026-07-27
  • 通讯作者: E-mail: chenjianxin@tsinghua.edu.cn E-mail: E-mail: chenjianxin@tsinghua.edu.cn
  • 作者简介:孔令航 ( 1994 - ), 山西太原人, 博士, 副研究员, 主要从事量子纠错方面的研究。E-mail: linghang@iqubit.org
  • 基金资助:
    中关村实验室资助项目, 国家重点研发计划 (2025YFE0200900)

Applications of extended gate sets in quantum error correction(Invited, Cover Paper)

KONG Linghang 1 , CHEN Jianxin 2*   

  1. 1 中关村实验室, 北京 100000; 2 清华大学计算机科学与技术系, 北京 100084
  • Received:2025-11-04 Revised:2025-12-31 Published:2026-07-28 Online:2026-07-27

摘要: 尽管扩展的量子门集在编译含噪声的中等规模超导量子电路时展现出显著优势, 其在量子纠错中的应用仍有待进一步发掘。本文全面分析了近期提出的Halma与Louvre两种量子纠错应用方案, 二者均通过利用扩展量子门集来降低容错量子计算的硬件需求。Halma方案展示了如何在存在缺陷的量子比特阵列中实现表面码, 相较先前方案具有更低的资源开销; 同时, 该方案与超稳定子方案具有良好兼容性, 当缺陷密度过高时, 可局部回退至超稳定子方案并与之协同使用。Louvre方案则在广义双环码的实现中降低了对量子比特连接性的要求。此两种方案均通过扩展量子门集实现了量子比特的高效路由, 从而实现量子比特及其之间连接的复用。这些工作为实现扩展量子门集应用于超导量子平台上的容错量子计算铺平了道路。

关键词: 量子计算, 量子信息与处理, 量子纠错码, 量子门集, 表面码, 广义双环码

Abstract: Although extended gate sets exhibit significant advantages in compiling noisy intermediate-scale quantum circuits on superconducting qubits, their potential applications in quantum error correction still need further exploration. In this paper, we comprehensively analyze two recent proposals, Halma scheme and Louvre scheme, both of which leverage extended gate sets to reduce the hardware overhead of fault-tolerant quantum computing. The Halma scheme demonstrates how the surface codes can be implemented on a lattice with defects, with lower overhead compared to prior approaches. In addition, the scheme has good compatibility with the previous superstabilizer scheme, enabling fallback to the superstabilizer scheme in case of defect clustering and thereby supporting hybrid usage. The Louvre scheme reduces the qubit connectivity requirements of generalized bicycle codes. In both schemes, the extended gate sets facilitate flexible qubit routing, thereby allowing for the reuse of qubits and interconnects. These approaches have demonstrated how extended gate sets can pave a path toward practical fault-tolerant quantum computing on superconducting platforms.

Key words: quantum computing, quantum information and processing, quantum error correction code, quantum gate set, surface code, generalized bicycle code

中图分类号: