面向量子化学的高效量子计算:利用跨相关和自适应反演技术降低电路复杂性

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL Faraday Discussions Pub Date : 2024-04-16 DOI:10.1039/d4fd00039k
Erika Magnusson, Aaron Fitzpatrick, Stefan Knecht, Martin Rahm, Werner Dobrautz
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引用次数: 0

摘要

量子计算机的近期实用性受到噪声形式的硬件限制的阻碍。在混合量子算法中实现抗噪性的途径之一是降低解决特定问题所需的电路深度--应用门的数量。这项工作展示了如何通过将转相关(TC)方法与自适应量子解析及其在变分量子虚时间演化(AVQITE)中的实现相结合来降低电路深度。TC-AVQITE 组合方法用于计算 H$_4$、LiH 和 H$_2$O 势能面上的基态能量。其中,H$_4$ 是一个众所周知的难题,在这种情况下,单元耦合簇理论(包括单激发和双激发)无法提供准确的结果。在自适应解析中,添加TC可以得到接近完整基集(CBS)极限的能量,同时减少了必要算子的数量,从而降低了电路深度。电路深度的降低进一步增强了算法的抗噪能力,并加快了算法的收敛速度。我们的研究证明,将TC方法与自适应解析相结合,可以得到紧凑、抗噪、易于优化的量子电路,从而得到接近CBS极限的精确量子化学结果。
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Towards Efficient Quantum Computing for Quantum Chemistry: Reducing Circuit Complexity with Transcorrelated and Adaptive Ansatz Techniques
The near-term utility of quantum computers is hindered by hardware constraints in the form of noise. One path to achieving noise resilience in hybrid quantum algorithms is to decrease the required circuit depth -- the number of applied gates -- to solve a given problem. This work demonstrates how to reduce circuit depth by combining the transcorrelated (TC) approach with adaptive quantum ansätze and their implementations in the context of variational quantum imaginary time evolution (AVQITE). The combined TC-AVQITE method is used to calculate ground state energies across the potential energy surfaces of H$_4$, LiH, and H$_2$O. In particular, H$_4$ is a notoriously difficult case where unitary coupled cluster theory, including singles and doubles excitations, fails to provide accurate results. Adding TC yields energies close to the complete basis set (CBS) limit while reducing the number of necessary operators -- and thus circuit depth -- in the adaptive ansätze. The reduced circuit depth furthermore makes our algorithm more noise-resilient and accelerates convergence. Our study demonstrates that combining the TC method with adaptive ansätze yields compact, noise-resilient, and easy-to-optimize quantum circuits that yield accurate quantum chemistry results close to the CBS limit.
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Faraday Discussions
Faraday Discussions 化学-物理化学
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期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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