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Error mitigation extends the computational reach of a noisy quantum processor

机译:错误缓解扩展了嘈杂量子处理器的计算范围

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摘要

Quantum computation, a paradigm of computing that is completely different from classical methods, benefits from theoretically proved speed-ups for certain problems and can be used to study the properties of quantum systems(1). Yet, because of the inherently fragile nature of the physical computing elements (qubits), achieving quantum advantages over classical computation requires extremely low error rates for qubit operations, as well as substantial physical qubits, to realize fault tolerance via quantum error correction(2,3). However, recent theoretical work(4,5) has shown that the accuracy of computation (based on expectation values of quantum observables) can be enhanced through an extrapolation of results from a collection of experiments of varying noise. Here we demonstrate this error mitigation protocol on a superconducting quantum processor, enhancing its computational capability, with no additional hardware modifications. We apply the protocol to mitigate errors in canonical single-and two-qubit experiments and then extend its application to the variational optimization(6-8) of Hamiltonians for quantum chemistry and magnetism(9). We effectively demonstrate that the suppression of incoherent errors helps to achieve an otherwise inaccessible level of accuracy in the variational solutions using our noisy processor. These results demonstrate that error mitigation techniques will enable substantial improvements in the capabilities of near-term quantum computing hardware.
机译:量子计算,从经典方法完全不同的计算范式,从理论上证明的速度上有一些问题,并且可以用于研究量子系统(1)的性质。然而,由于物理计算元件(QUBITS)的固有脆弱性质,通过古典计算实现量子优势需要极低的QUBBit操作的误差率,以及大量物理QUBITS,以通过量子误差校正实现容错容限(2, 3)。然而,最近的理论工作(4,5)表明,可以通过从不同噪声的实验采集的结果推断来提高计算的准确性(基于量子可观察到的期望值)。在这里,我们在超导量子处理器上展示了该错误缓解协议,增强了其计算能力,没有额外的硬件修改。我们应用协议以减轻规范单和双态比特实验中的错误,然后将其应用扩展到汉密特兰人的变分优化(6-8),用于量子化学和磁性(9)。我们有效地证明了不连贯的错误的抑制有助于使用我们的嘈杂处理器在变分解决方案中实现其他无法访问的准确性。这些结果表明,误差缓解技术将实现近期量子计算硬件的能力的大量改进。

著录项

  • 来源
    《Nature》 |2019年第7749期|491-495|共5页
  • 作者单位

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

    IBM TJ Watson Res Ctr Yorktown Hts NY 10598 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:15:16

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