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Tunneling in projective quantum Monte Carlo simulations with guiding wave functions

机译:具有引导波函数的投影量子蒙特卡罗模拟中的隧道

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摘要

Quantum tunneling is a valuable resource exploited by quantum annealers to solve complex optimization problems. Tunneling events also occur during projective quantum Monte Carlo (PQMC) simulations, and in a class of problems characterized by a double-well energy landscape their rate was found to scale linearly with the first energy gap, i.e., even more favorably than in physical quantum annealers, where the rate scales with the gap squared. Here we investigate how a guiding wave function-which is essential to make many-body PQMC simulations computationally feasible-affects the tunneling rate. The chosen test beds are a continuous-space double-well problem, the ferromagnetic quantum Ising chain, and the recently introduced shamrock model. As guiding wave function, we consider an approximate Boltzmann-type ansatz, the numerically exact ground state of the double-well model, and a neural-network wave function based on a Boltzmann machine. Remarkably, for each ansatz we find the same asymptotic linear scaling of the tunneling rate that was previously found in the PQMC simulations performed without a guiding wave function. We also provide a semiclassical theory for the double-well with exact guiding wave function that explains the observed linear scaling. These findings suggest that PQMC simulations guided by an accurate ansatz represent a valuable benchmark for physical quantum annealers and a potentially competitive quantum-inspired optimization technique.
机译:量子隧道是Quantum退火者利用的有价值的资源,以解决复杂的优化问题。在投影量子蒙特卡罗(PQMC)模拟期间也发生隧道事件,并且在一类特征在一起的问题,其特征在于双井能量景观,其速率被发现与第一能隙线性缩放,即甚至更有利地比物理量子更有利退火者,速率平方的速度缩放。在这里,我们调查指导波函数 - 使许多身体PQMC模拟是必不可少的计算可行 - 影响隧道速率。所选择的试验床是连续空间的双井问题,铁磁量子展链,最近引入的三叶草模型。作为引导波函数,我们考虑一个近似的Boltzmann型Ansatz,双井模型的数值精确的地面,以及基于Boltzmann机器的神经网络波功能。值得注意的是,对于每个ANSATZ,我们发现在没有引导波函数的PQMC模拟中先前发现的隧道速率相同的渐近线性缩放。我们还为双孔提供了一种半熟的精确指导波函数,该方法解释了观察到的线性缩放。这些发现表明,由精确的ANSATZ引导的PQMC仿真代表了物理量子退火仪的有价值基准,以及潜在的竞争量子启发优化技术。

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  • 来源
    《Physical review》 |2019年第21期|214303.1-214303.10|共10页
  • 作者单位

    SISSA Int Sch Adv Studies I-34136 Trieste Italy|Abdus Salam Int Ctr Theoret Phys I-34151 Trieste Italy|Ist Nazl Fis Nucl Sez Trieste I-34136 Trieste Italy;

    SISSA Int Sch Adv Studies I-34136 Trieste Italy|Abdus Salam Int Ctr Theoret Phys I-34151 Trieste Italy|Ist Nazl Fis Nucl Sez Trieste I-34136 Trieste Italy|Perimeter Inst Theoret Phys Waterloo ON N2L 2Y5 Canada;

    SISSA Int Sch Adv Studies I-34136 Trieste Italy|Abdus Salam Int Ctr Theoret Phys I-34151 Trieste Italy|Ist Nazl Fis Nucl Sez Trieste I-34136 Trieste Italy;

    Univ Camerino Phys Div Sch Sci & Technol I-62032 Camerino MC Italy;

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