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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Error Sensitivity to Environmental Noise in Quantum Circuits for Chemical State Preparation
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Error Sensitivity to Environmental Noise in Quantum Circuits for Chemical State Preparation

机译:用于化学状态制备的量子电路中对环境噪声的误差敏感性

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Calculating molecular energies is likely to be one of the first useful applications to achieve quantum supremacy, performing faster on a quantum than a classical computer. However, if future quantum devices are to produce accurate calculations, errors due to environmental noise and algorithmic approximations need to be characterized and reduced. In this study, we use the high performance qHiPSTER software to investigate the effects of environmental noise on the preparation of quantum chemistry states. We simulated 18 16-qubit quantum circuits under environmental noise, each corresponding to a unitary coupled cluster state preparation of a different molecule or molecular configuration. Additionally, we analyze the nature of simple gate errors in noise-free circuits of up to 40 qubits. We find that, in most cases, the Jordan-Wigner (JW) encoding produces smaller errors under a noisy environment as compared to the Bravyi-Kitaev (BK) encoding. For the JW encoding, pure dephasing noise is shown to produce substantially smaller errors than pure relaxation noise of the same magnitude. We report error trends in both molecular energy and electron particle number within a unitary coupled cluster state preparation scheme, against changes in nuclear charge, bond length, number of electrons, noise types, and noise magnitude. These trends may prove to be useful in making algorithmic and hardware-related choices for quantum simulation of molecular energies.
机译:计算分子能可能是实现量子霸权的第一个有用的应用程序之一,它在量子上的执行速度比经典计算机快。但是,如果将来的量子器件要产生精确的计算,则必须表征和减少由于环境噪声和算法近似而引起的误差。在这项研究中,我们使用高性能的qHiPSTER软件来研究环境噪声对量子化学态制备的影响。我们在环境噪声下模拟了18个16量子位量子电路,每个电路对应于一个不同分子或分子构型的unit合簇状态的制备。此外,我们分析了高达40量子位的无噪声电路中简单门错误的性质。我们发现,在大多数情况下,与Bravyi-Kitaev(BK)编码相比,Jordan-Wigner(JW)编码在嘈杂的环境下产生的错误较小。对于JW编码,显示的纯相移噪声比相同幅度的纯弛豫噪声产生的误差要小得多。我们在一个单一的耦合簇状态制备方案中报告了分子能和电子粒子数量的误差趋势,这些趋势是针对核电荷,键长,电子数量,噪声类型和噪声大小的变化的。这些趋势可能被证明有助于为分子能量的量子模拟做出与算法和硬件相关的选择。

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