PaperPanorama

HEP Lattice·hep-lat

Thu·Sep 10, 2026

3 papers0 primary·3 cross-listed

  1. 01

    Quantum tunneling from perturbation theory revisited

    Hiroshi Suzuki🇯🇵

    In the late 1990s, Suzuki and Yasuta proposed a compact formula that extracts the decay rate per unit volume of a false vacuum in the -dimensional theory with an unbounded potential from conventional perturbative coefficients of the vacuum energy density, i.e., vacuum bubble diagrams. The idea was to identify the imaginary part arising from the Borel integral along the discontinuity of the Borel transform with that of the vacuum energy density. While the formula works quite well for~, i.e., quantum mechanics, its validity remained unclear for~ because only the first three perturbative coefficients for~ were available and the result showed no sign of convergence. In the present paper, we reexamine this approach using the first seven nontrivial perturbative coefficients (up to nine loops) for~ and~ obtained by Serone, Spada, and~Villadoro. Introducing two tunable parameters in the finite-order truncated Borel transform following these authors, we find that the imaginary part converges as the perturbative order increases, with the last few orders agreeing to within a few percent. In the intermediate range of the coupling constant, , this approach yields an imaginary part rather close to the leading-order semi-classical approximation with the one-loop determinant; it is -- larger than the semi-classical result with the two-loop correction computed by Malatesta, Parisi, and~Rizzo.

    hep-thhep-lat0 citations
  2. 02

    An improved partial-wave projection of the one-particle exchange in relativistic three-body scattering

    Nicholas C. Chambers🇺🇸 · Andrew W. Jackura🇺🇸

    A critical component of relativistic three-body scattering amplitudes is the one-particle exchange (OPE) process, wherein a single particle is exchanged between incoming and outgoing two-body subsystems. We present an improved, finite-sum expression for the partial-wave OPE that is valid for three massive, spinless particles in arbitrary angular momentum configurations. A collection of analytic and numerical checks demonstrate that our finite-sum expression reproduces the known properties of the partial-wave OPE, including its threshold scaling behavior and singularity structure. Compared with previous work, this result more efficiently handles the rapid proliferation of partial waves contributing to any total angular momentum , enabling the construction of robust wavesets for three-body amplitude analyses.

    hep-phhep-lathep-thnucl-th0 citations
  3. 03

    Faster Quantum Monte Carlo Simulation by Random Compilation

    John M. Martyn🇺🇸 · Joshua Lin🇺🇸 · Neill C. Warrington🇺🇸 · Isaac L. Chuang🇺🇸 · Andrew J. Daley🇬🇧

    Quantum Monte Carlo (QMC) algorithms are among the most powerful classical methods for simulating quantum systems, yet their accuracy is often limited by the systematic errors in the approximations used, such as Trotterization. Here we introduce randomly compiled quantum Monte Carlo (RC-QMC) as a general framework that suppresses these systematic errors by averaging over a family of approximations rather than relying on a single fixed one. This strategy is grounded in the concept of randomized compiling from quantum computing, which suppresses errors by sampling over quantum gates, at essentially no additional computational cost. Consequently, our framework achieves a computational advantage over standard QMC methods when estimating a target state to a desired level of accuracy. We illustrate this advantage on two key Monte Carlo algorithms: (1) path integral quantum Monte Carlo for estimating thermal states, and (2) the quantum trajectories method for simulating open system dynamics. In aggregate, these results represent a cross-fertilization of quantum and classical algorithms, are readily generalizable to other QMC methods, and suggest wider applications in classical simulation.

    quant-phcond-mat.str-elhep-lat0 citations

Affiliations

first authorsco-authorsvia INSPIRE