Mitigating errors in analog quantum simulation by Hamiltonian reshaping or Hamiltonian rescaling

IF 8.3 1区 物理与天体物理 Q1 PHYSICS, APPLIED npj Quantum Information Pub Date : 2025-01-28 DOI:10.1038/s41534-025-00969-3
Rui-Cheng Guo, Yanwu Gu, Dong E. Liu
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Abstract

Simulating quantum many-body systems is crucial for advancing physics but poses substantial challenges for classical computers. Quantum simulations overcome these limitations, with analog simulators offering unique advantages over digital methods, such as lower systematic errors and reduced circuit depth, making them efficient for studying complex quantum phenomena. However, unlike their digital counterparts, analog quantum simulations face significant limitations due to the absence of effective error mitigation techniques. This work introduces two novel error mitigation strategies—Hamiltonian reshaping and Hamiltonian rescaling—in analog quantum simulation for tasks like eigen-energy evaluation. Hamiltonian reshaping uses random unitary transformations to generate new Hamiltonians with identical eigenvalues but varied eigenstates, allowing error reduction through averaging. Hamiltonian rescaling mitigates errors by comparing eigenvalue estimates from energy-scaled Hamiltonians. Numerical calculations validate both methods, demonstrating their significant practical effectiveness in enhancing the accuracy and reliability of analog quantum simulators.

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通过哈密顿重塑或哈密顿重标度来减轻模拟量子模拟中的误差
模拟量子多体系统对推进物理学至关重要,但对经典计算机提出了重大挑战。量子模拟克服了这些限制,与数字方法相比,模拟模拟器具有独特的优势,例如更低的系统误差和更小的电路深度,使它们能够有效地研究复杂的量子现象。然而,与数字模拟不同,由于缺乏有效的误差缓解技术,模拟量子模拟面临着重大限制。本文介绍了两种新的误差缓解策略-哈密顿重构和哈密顿重标度-在模拟量子模拟中用于特征能量评估等任务。哈密顿重构使用随机酉变换来生成具有相同特征值但不同特征态的新哈密顿,允许通过平均来减小误差。哈密顿重标度通过比较能量尺度哈密顿的特征值估计来减轻误差。数值计算验证了这两种方法,表明它们在提高模拟量子模拟器的精度和可靠性方面具有重要的实际有效性。
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来源期刊
npj Quantum Information
npj Quantum Information Computer Science-Computer Science (miscellaneous)
CiteScore
13.70
自引率
3.90%
发文量
130
审稿时长
29 weeks
期刊介绍: The scope of npj Quantum Information spans across all relevant disciplines, fields, approaches and levels and so considers outstanding work ranging from fundamental research to applications and technologies.
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