Abstract

AbstractIn this paper, we perform the first application of the hybrid method (exact low modes plus stochastically estimated high modes) for all-to-all propagators to the HAL QCD method. We calculate the HAL QCD potentials in the $I=2$$\pi\pi$ scattering in order to see how statistical fluctuations of the potential behave under the hybrid method. All of the calculations are performed with the 2+1 flavor gauge configurations on a $16^3 \times 32$ lattice at the lattice spacing $a \approx 0.12$ fm and $m_{\pi} \approx 870$ MeV. It is revealed that statistical errors for the potential are enhanced by stochastic noises introduced by the hybrid method, which, however, are shown to be reduced by increasing the level of dilutions, in particular, that of space dilutions. From systematic studies, we obtain a guiding principle for a choice of dilution types/levels and a number of eigenvectors to reduce noise contamination to the potential while keeping numerical costs reasonable. We also confirm that we can obtain the scattering phase shifts for the $I=2$$\pi\pi$ system by the hybrid method within a reasonable numerical cost; these phase shifts are consistent with the result obtained with the conventional method. The knowledge that we obtain in this study will become useful for the investigation of hadron resonances that require quark annihilation diagrams such as the $\rho$ meson by the HAL QCD potential with the hybrid method.

Highlights

  • Understanding hadronic resonances in terms of quantum chromodynamics (QCD) is one of the most challenging subjects in both particle and nuclear physics

  • The first realistic calculation of baryon interactions with nearly physical quark masses was performed with the HAL QCD method and and N

  • The HAL QCD method is a powerful method to study hadron–hadron scatterings, we still do not have a mature way to treat scattering processes containing quark annihilation diagrams, due to the need for all elements of propagators. Such quark annihilation diagrams typically appear in resonant channels; establishing an efficient technique to treat them is an urgent issue for deeper understanding of hadronic resonances in the HAL QCD method

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Summary

Introduction

Understanding hadronic resonances in terms of quantum chromodynamics (QCD) is one of the most challenging subjects in both particle and nuclear physics. In order to study hadronic resonances in QCD, we have to analyze hadron–hadron scatterings using non-perturbative methods such as lattice. The HAL QCD method has been applied to a wide range of hadronic systems [14,15,16,17,18,19,20,21,22,23,24] including, in particular, the candidate for the exotic state, Zc (3900) [25,26]. The consistency between Lüscher’s method and the HAL QCD method for two-baryon systems is extensively studied in Refs. Yutaro Akahoshi1,2,∗ , Sinya Aoki1,2 , Tatsumi Aoyama3,2 , Takumi Doi2,4 , Takaya Miyamoto1,2 , and Kenji Sasaki

HAL QCD method
The hybrid method for all-to-all propagators
The hybrid method and the HAL QCD potential
Conclusion
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