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使用FMO方案的VQE-UCCSD计算揭示的尺寸一致性和轨道不变性问题。

Size-consistency and orbital-invariance issues revealed by VQE-UCCSD calculations with the FMO scheme.

作者信息

Sugisaki Kenji, Nakano Tatsuya, Mochizuki Yuji

机构信息

Graduate School of Science and Technology, Keio University, Kawasaki, Japan.

Quantum Computing Center, Keio University, Yokohama, Japan.

出版信息

J Comput Chem. 2024 Oct 5;45(26):2204-2213. doi: 10.1002/jcc.27438. Epub 2024 May 25.

Abstract

The fragment molecular orbital (FMO) scheme is one of the popular fragmentation-based methods and has the potential advantage of making the circuit shallow for quantum chemical calculations on quantum computers. In this study, we used a GPU-accelerated quantum simulator (cuQuantum) to perform the electron correlation part of the FMO calculation as unitary coupled-cluster singles and doubles (UCCSD) with the variational quantum eigensolver (VQE) for hydrogen-bonded (FH) and (FH) -H O systems with the STO-3G basis set. VQE-UCCSD calculations were performed using both canonical and localized MO sets, and the results were examined from the point of view of size-consistency and orbital-invariance affected by the Trotter error. It was found that the use of localized MO leads to better results, especially for (FH) -H O. The GPU acceleration was substantial for the simulations with larger numbers of qubits, and was about a factor of 6.7-7.7 for 18 qubit systems.

摘要

片段分子轨道(FMO)方法是一种流行的基于片段的方法,具有使量子化学计算在量子计算机上的电路变浅的潜在优势。在本研究中,我们使用了GPU加速的量子模拟器(cuQuantum),以单重和双重酉耦合簇(UCCSD)结合变分量子本征求解器(VQE),在STO-3G基组下对氢键(FH)和(FH)-H₂O系统进行FMO计算的电子相关部分。使用正则和定域分子轨道集进行了VQE-UCCSD计算,并从受 Trotter 误差影响的尺寸一致性和轨道不变性的角度检查了结果。结果发现,使用定域分子轨道会得到更好的结果,特别是对于(FH)-H₂O。对于具有更多量子比特的模拟,GPU加速效果显著,对于18量子比特系统,加速因子约为6.7-7.7。

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