Realization of all-to-all fermion propagator for the first principle high accuracy strong interaction prediction

Fuente: arXiv
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Main Authors: Hu, Zhi-Cheng, Wang, Ji-Hao, Jiang, Xiangyu, Liu, Liuming, Su, Shi-Hao, Sun, Peng, Yang, Yi-Bo
Format: Preprint
Published: 2025
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author Hu, Zhi-Cheng
Wang, Ji-Hao
Jiang, Xiangyu
Liu, Liuming
Su, Shi-Hao
Sun, Peng
Yang, Yi-Bo
author_facet Hu, Zhi-Cheng
Wang, Ji-Hao
Jiang, Xiangyu
Liu, Liuming
Su, Shi-Hao
Sun, Peng
Yang, Yi-Bo
contents We propose a ``blending" algorithm that projects the all-to-all fermion propagator onto spatial low-frequency modes (LFM) combined with a stochastic estimate of spatial high-frequency modes (SHFM) at each time slice. This approach enables the calculation of arbitrary-point correlation functions for arbitrary hadron states in strongly interacting quantum field theories (QFT) with fermions, such as quantum chromodynamics (QCD). Specifically, LFM allows the construction of spatially extended hadron states below a certain energy threshold by diagonalizing multi-fermion interpolation fields. Meanwhile, the local interactions required for N-point correlation functions in QFT can be approximated in an unbiased manner through a reweighted summation of both LFM and SHFM contributions. To demonstrate the efficiency of this algorithm, we obtained {\color{black} $g_A^u=0.895(15)$, $g_A^d=-0.338(15)$, $g_A^s=-0.0245(72)$, $g_A^{u+d+s}=0.533(28)$ and $g_A^{u-d}=1.2339(43)$ } for nucleon at $m_π=300$ MeV and $a=0.077$ fm using 40 configurations. The consistency check of the pion electric form factor and charge radius derived from 3-point and 4-point correlation functions is also provided.
format Preprint
id arxiv_https___arxiv_org_abs_2505_01719
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Realization of all-to-all fermion propagator for the first principle high accuracy strong interaction prediction
Hu, Zhi-Cheng
Wang, Ji-Hao
Jiang, Xiangyu
Liu, Liuming
Su, Shi-Hao
Sun, Peng
Yang, Yi-Bo
High Energy Physics - Lattice
High Energy Physics - Phenomenology
Nuclear Theory
We propose a ``blending" algorithm that projects the all-to-all fermion propagator onto spatial low-frequency modes (LFM) combined with a stochastic estimate of spatial high-frequency modes (SHFM) at each time slice. This approach enables the calculation of arbitrary-point correlation functions for arbitrary hadron states in strongly interacting quantum field theories (QFT) with fermions, such as quantum chromodynamics (QCD). Specifically, LFM allows the construction of spatially extended hadron states below a certain energy threshold by diagonalizing multi-fermion interpolation fields. Meanwhile, the local interactions required for N-point correlation functions in QFT can be approximated in an unbiased manner through a reweighted summation of both LFM and SHFM contributions. To demonstrate the efficiency of this algorithm, we obtained {\color{black} $g_A^u=0.895(15)$, $g_A^d=-0.338(15)$, $g_A^s=-0.0245(72)$, $g_A^{u+d+s}=0.533(28)$ and $g_A^{u-d}=1.2339(43)$ } for nucleon at $m_π=300$ MeV and $a=0.077$ fm using 40 configurations. The consistency check of the pion electric form factor and charge radius derived from 3-point and 4-point correlation functions is also provided.
title Realization of all-to-all fermion propagator for the first principle high accuracy strong interaction prediction
topic High Energy Physics - Lattice
High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2505.01719