Electrical and Computer Engineering Department, American University of Beirut, Beirut, 1107 202, Lebanon.
Center for Embedded and Cyber-Physical Systems, University of California-Irvine, Irvine, CA, 92697-2625, USA.
Sci Rep. 2023 Mar 8;13(1):3912. doi: 10.1038/s41598-023-30510-5.
Quantum computers have enabled solving problems beyond the current machines' capabilities. However, this requires handling noise arising from unwanted interactions in these systems. Several protocols have been proposed to address efficient and accurate quantum noise profiling and mitigation. In this work, we propose a novel protocol that efficiently estimates the average output of a noisy quantum device to be used for quantum noise mitigation. The multi-qubit system average behavior is approximated as a special form of a Pauli Channel where Clifford gates are used to estimate the average output for circuits of different depths. The characterized Pauli channel error rates, and state preparation and measurement errors are then used to construct the outputs for different depths thereby eliminating the need for large simulations and enabling efficient mitigation. We demonstrate the efficiency of the proposed protocol on four IBM Q 5-qubit quantum devices. Our method demonstrates improved accuracy with efficient noise characterization. We report up to 88% and 69% improvement for the proposed approach compared to the unmitigated, and pure measurement error mitigation approaches, respectively.
量子计算机已经能够解决当前机器能力范围之外的问题。然而,这需要处理这些系统中由于不需要的相互作用而产生的噪声。已经提出了几种协议来解决高效和准确的量子噪声分析和缓解问题。在这项工作中,我们提出了一种新的协议,可以有效地估计噪声量子设备的平均输出,用于量子噪声缓解。多量子位系统的平均行为被近似为一种特殊形式的 Pauli 通道,其中 Clifford 门用于估计不同深度电路的平均输出。然后,使用表征的 Pauli 通道误差率、状态制备和测量误差来构造不同深度的输出,从而不需要进行大量的模拟,并能够实现高效的缓解。我们在四个 IBM Q 5 量子设备上展示了所提出协议的效率。我们的方法通过有效的噪声特征描述提高了准确性。与未缓解和纯测量误差缓解方法相比,我们的方法分别报告了高达 88%和 69%的改进。