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October 16, 202519 citationsOpen Access

Demonstration of low-overhead quantum error correction codes

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KWKe WangZLZhide LuCZChuanyu Zhang

Key Points

  • Logical error rates were achieved at 8.91% for a distance-4 code and 7.77% for a distance-3 code, demonstrating effective error correction.
  • The implementation utilized 32 transmon qubits across a two-dimensional architecture, enabling the measurement of nonlocal stabilizers.
  • Results highlight the feasibility of qLDPC codes on long-range coupled superconducting processors, essential for future quantum computing.
  • This advancement represents a significant step towards building large-scale fault-tolerant quantum computers.

Abstract

Quantum computers hold the potential to surpass classical computers in solving complex computational problems. However, the fragility of quantum information and the error-prone nature of quantum operations make building large-scale, fault-tolerant quantum computers a prominent challenge. To combat errors, pioneering experiments have demonstrated a variety of quantum error correction codes. Yet, most of these codes suffer from low encoding efficiency, and their scalability is hindered by prohibitively high resource overheads. Here, we report the demonstration of two low-overhead quantum low-density parity-check (qLDPC) codes, a distance-4 bivariate bicycle code and a distance-3 qLDPC code, on our latest superconducting processor, Kunlun, featuring 32 long-range-coupled transmon qubits. Utilizing a two-dimensional architecture with overlapping long-range couplers, we demonstrate simultaneous measurements of all nonlocal weight-6 stabilizers via the periodic execution of an efficient syndrome extraction circuit. We achieve a logical error rate per logical qubit per cycle of (8. 91 0. 17) \% for the distance-4 bivariate bicycle code with four logical qubits and (7. 77 0. 12) \% for the distance-3 qLDPC code with six logical qubits. Our results establish the feasibility of implementing various qLDPC codes with long-range coupled superconducting processors, marking a crucial step towards large-scale low-overhead quantum error correction.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68f147cc724575985c3fd10dhttps://doi.org/10.48550/arxiv.2505.09684
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