A probabilistic quantum algorithm for imaginary-time evolution based on Taylor expansion

IF 5.6 2区 物理与天体物理 Q1 OPTICS EPJ Quantum Technology Pub Date : 2025-04-03 DOI:10.1140/epjqt/s40507-025-00347-0
Xin Yi, Jiacheng Huo, Guanhua Liu, Ling Fan, Ru Zhang, Cong Cao
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Abstract

Imaginary-time evolution is a powerful tool for obtaining the ground state of a quantum system, but the complexity of classical algorithms designed for simulating imaginary-time evolution will increase significantly as the size of the quantum system becomes larger. Here, a probabilistic quantum algorithm based on Taylor expansion for implementing imaginary-time evolution is introduced. For Hamiltonians composed of Pauli product terms, the quantum circuit requires only a single ancillary qubit and is exclusively constructed using elementary single-qubit and two-qubit gates. Furthermore, similar principles are used to extend the algorithm to the case where the Hamiltonian takes a more general form. The algorithm only requires negligible precomputed numerical calculations, without the need for complex classical pre-mathematical calculations or optimization loops. We demonstrate the algorithm by solving the ground state energy of hydrogen molecules and Heisenberg Hamiltonians. Moreover, we conducted experiments on real quantum computers through the quantum cloud platform to find the ground state energy of Heisenberg Hamiltonians. Our work extends the methods for realizing imaginary-time evolution on quantum computers, and our algorithm exhibits potential for implementation on near-term quantum devices, particularly when the Hamiltonian consists of Pauli product terms.

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基于Taylor展开的虚时间演化概率量子算法
虚时演化是获得量子系统基态的有力工具,但随着量子系统规模的增大,用于模拟虚时演化的经典算法的复杂性将显著增加。本文介绍了一种基于泰勒展开的概率量子算法,用于实现虚时进化。对于由泡利积项组成的哈密顿量,量子电路只需要一个辅助量子比特,并且只使用基本单量子比特和双量子比特门来构建。此外,使用类似的原理将算法扩展到哈密顿量采用更一般形式的情况。该算法只需要可忽略不计的预计算数值计算,不需要复杂的经典预数学计算或优化循环。我们通过求解氢分子的基态能量和海森堡哈密顿量来证明该算法。此外,我们通过量子云平台在真实的量子计算机上进行实验,寻找海森堡哈密顿子的基态能量。我们的工作扩展了在量子计算机上实现虚时间演化的方法,并且我们的算法显示出在近期量子设备上实现的潜力,特别是当哈密顿量由泡利积项组成时。
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来源期刊
EPJ Quantum Technology
EPJ Quantum Technology Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
7.70
自引率
7.50%
发文量
28
审稿时长
71 days
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. EPJ Quantum Technology covers theoretical and experimental advances in subjects including but not limited to the following: Quantum measurement, metrology and lithography Quantum complex systems, networks and cellular automata Quantum electromechanical systems Quantum optomechanical systems Quantum machines, engineering and nanorobotics Quantum control theory Quantum information, communication and computation Quantum thermodynamics Quantum metamaterials The effect of Casimir forces on micro- and nano-electromechanical systems Quantum biology Quantum sensing Hybrid quantum systems Quantum simulations.
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