Color code decoder with improved scaling for correcting circuit-level noise

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2025-01-27 DOI:10.22331/q-2025-01-27-1609
Seok-Hyung Lee, Andrew Li, Stephen D. Bartlett
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Abstract

Two-dimensional color codes are a promising candidate for fault-tolerant quantum computing, as they have high encoding rates, transversal implementation of logical Clifford gates, and resource-efficient magic state preparation schemes. However, decoding color codes presents a significant challenge due to their structure, where elementary errors violate three checks instead of just two (a key feature in surface code decoding), and the complexity of extracting syndrome is greater. We introduce an efficient color-code decoder that tackles these issues by combining two matching decoders for each color, generalized to handle circuit-level noise by employing detector error models. We provide comprehensive analyses of the decoder, covering its threshold and sub-threshold scaling both for bit-flip noise with ideal measurements and for circuit-level noise. Our simulations reveal that this decoding strategy nearly reaches the best possible scaling of logical failure ($p_\mathrm{fail} \sim p^{d/2}$) for both noise models, where $p$ is the noise strength, in the regime of interest for fault-tolerant quantum computing. While its noise thresholds are comparable with other matching-based decoders for color codes ($8.2\%$ for bit-flip noise and $0.46\%$ for circuit-level noise), the scaling of logical failure rates below threshold significantly outperforms the best matching-based decoders.
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彩色码解码器与改进的缩放校正电路级噪声
二维彩色编码是容错量子计算的一个很有前途的候选,因为它们具有高编码率、逻辑Clifford门的横向实现和资源高效的魔法状态准备方案。然而,解码颜色代码由于其结构而面临重大挑战,其中基本错误违反三个检查而不是两个(表面代码解码的关键特征),并且提取综合症的复杂性更大。我们介绍了一种有效的颜色码解码器,通过为每种颜色组合两个匹配的解码器来解决这些问题,并通过使用检测器误差模型来处理电路级噪声。我们对解码器进行了全面的分析,涵盖了其阈值和亚阈值缩放,用于具有理想测量值的位翻转噪声和电路级噪声。我们的模拟表明,对于两种噪声模型,这种解码策略几乎达到了逻辑故障的最佳缩放($p_\ mathm {fail} \sim p^{d/2}$),其中$p$是容错量子计算感兴趣的噪声强度。虽然其噪声阈值与其他基于匹配的彩色码解码器相当(位翻转噪声为8.2%,电路级噪声为0.46%),但逻辑故障率低于阈值的比例明显优于最佳基于匹配的解码器。
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
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