Suppressing quantum errors by scaling a surface code logical qubit

IF 50.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Nature Pub Date : 2023-02-22 DOI:10.1038/s41586-022-05434-1
Google Quantum AI
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引用次数: 272

Abstract

Practical quantum computing will require error rates well below those achievable with physical qubits. Quantum error correction1,2 offers a path to algorithmically relevant error rates by encoding logical qubits within many physical qubits, for which increasing the number of physical qubits enhances protection against physical errors. However, introducing more qubits also increases the number of error sources, so the density of errors must be sufficiently low for logical performance to improve with increasing code size. Here we report the measurement of logical qubit performance scaling across several code sizes, and demonstrate that our system of superconducting qubits has sufficient performance to overcome the additional errors from increasing qubit number. We find that our distance-5 surface code logical qubit modestly outperforms an ensemble of distance-3 logical qubits on average, in terms of both logical error probability over 25 cycles and logical error per cycle ((2.914 ± 0.016)% compared to (3.028 ± 0.023)%). To investigate damaging, low-probability error sources, we run a distance-25 repetition code and observe a 1.7 × 10−6 logical error per cycle floor set by a single high-energy event (1.6 × 10−7 excluding this event). We accurately model our experiment, extracting error budgets that highlight the biggest challenges for future systems. These results mark an experimental demonstration in which quantum error correction begins to improve performance with increasing qubit number, illuminating the path to reaching the logical error rates required for computation. A study demonstrating increasing error suppression with larger surface code logical qubits, implemented on a superconducting quantum processor.

Abstract Image

通过缩放表面编码逻辑量子比特抑制量子误差
实用量子计算所需的误差率将远远低于物理比特所能达到的误差率。量子纠错1,2 通过将逻辑量子比特编码到许多物理量子比特中,提供了实现算法相关错误率的途径。然而,引入更多的量子比特也会增加错误源的数量,因此错误密度必须足够低,逻辑性能才能随着代码规模的增加而提高。在此,我们报告了对几种代码规模的逻辑量子位性能缩放的测量结果,并证明我们的超导量子位系统具有足够的性能来克服量子位数量增加所带来的额外错误。我们发现,就 25 个周期的逻辑错误概率和每个周期的逻辑错误率((2.914 ± 0.016)% 对 (3.028 ± 0.023)%)而言,我们的距离-5 表面代码逻辑量子比特平均略微优于距离-3 逻辑量子比特集合。为了研究具有破坏性的低概率错误源,我们运行了距离-25 的重复代码,并观察到由单个高能事件设定的每个周期 1.7 × 10-6 的逻辑错误下限(不包括该事件为 1.6 × 10-7)。我们对实验进行了精确建模,提取出的误差预算凸显了未来系统面临的最大挑战。这些结果标志着量子纠错开始随着量子比特数的增加而提高性能,为达到计算所需的逻辑错误率指明了道路。一项在超导量子处理器上实现的研究表明,随着表面代码逻辑量子比特的增加,误差抑制也在增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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