论文标题
使用局部噪声模型模拟嘈杂的变分量子本素量
Simulating noisy variational quantum eigensolver with local noise models
论文作者
论文摘要
变异量子本质量(VQE)有望在近期噪声中间尺度量子(NISQ)计算机上显示量子优势。 VQE的一个核心问题是噪声的影响,尤其是物理噪声对逼真的量子计算机的影响。我们通过使用各种局部噪声模型进行数值模拟,包括振幅阻尼,倾向和去极化噪声,系统地研究VQE算法对VQE算法的效果。我们表明,随着噪声概率的增加,基态能量将偏离确切值,并且通常随着电路深度的增加而累积噪声。我们建立一个噪声模型,以捕获真实量子计算机中的噪声。我们的数值模拟与通过云在IBM量子计算机上的量子实验结果一致。我们的工作为嘈杂的VQE实践研究提供了新的启示。对VQE的噪声效应的深刻理解可能有助于在近量子计算机上开发量子误差缓解技术。
Variational quantum eigensolver (VQE) is promising to show quantum advantage on near-term noisy-intermediate-scale quantum (NISQ) computers. One central problem of VQE is the effect of noise, especially the physical noise on realistic quantum computers. We study systematically the effect of noise for the VQE algorithm, by performing numerical simulations with various local noise models, including the amplitude damping, dephasing, and depolarizing noise. We show that the ground state energy will deviate from the exact value as the noise probability increase and normally noise will accumulate as the circuit depth increase. We build a noise model to capture the noise in a real quantum computer. Our numerical simulation is consistent with the quantum experiment results on IBM Quantum computers through Cloud. Our work sheds new light on the practical research of noisy VQE. The deep understanding of the noise effect of VQE may help to develop quantum error mitigation techniques on near team quantum computers.