Quantum computers have enabled solving problems beyond the current computers' 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.
翻译:量子计算机解决了目前计算机能力之外的问题。然而,这需要处理这些系统中不必要的互动所产生的噪音。提出了若干议定书,以解决高效和准确的量子噪音特征分析和缓减问题。我们在此工作中提议了一项新议定书,高效估计用于量子噪音减缓的噪音量子装置的平均输出量。多Q位数系统的平均行为大概是保罗海峡的一种特殊形式,用它来估计不同深度的电路的平均输出量。然后,用保利频道的典型误差率以及状态准备和测量错误来构建不同深度的输出量,从而消除大型模拟和有效缓减的需要。我们展示了拟议的关于四台IBMQ 5QQQQQQQQQQQQQQQQ的量子装置的议定书的效率。我们的方法显示,通过高效的噪音定性提高了准确度。我们报告,与未简化的和纯度测量错误缓减方法相比,拟议的方法分别改进到88 ⁇ 和69 ⁇ 。