Stabilizing complex Langevin for real-time gauge theories with an anisotropic kernel
A bstract The complex Langevin (CL) method is a promising approach to overcome the sign problem that occurs in real-time formulations of quantum field theories. Using the Schwinger-Keldysh formalism, we study SU( N c ) gauge theories with CL. We observe that current stabilization techniques are insu...
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Veröffentlicht in: | The journal of high energy physics 2023-06, Vol.2023 (6), p.11-42, Article 11 |
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Sprache: | eng |
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bstract
The complex Langevin (CL) method is a promising approach to overcome the sign problem that occurs in real-time formulations of quantum field theories. Using the Schwinger-Keldysh formalism, we study SU(
N
c
) gauge theories with CL. We observe that current stabilization techniques are insufficient to obtain correct results. Therefore, we revise the discretization of the CL equations on complex time contours, find a time reflection symmetric formulation and introduce a novel anisotropic kernel that enables CL simulations on discretized complex time paths. Applying it to SU(2) Yang-Mills theory in 3+1 dimensions, we obtain unprecedentedly stable results that we validate using additional observables and that can be systematically improved. For the first time, we are able to simulate non-Abelian gauge theory on time contours whose real-time extent exceeds its inverse temperature. Thus, our approach may pave the way towards an ab-initio real-time framework of QCD in and out of equilibrium with a potentially large impact on the phenomenology of heavy-ion collisions. |
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ISSN: | 1029-8479 1029-8479 |
DOI: | 10.1007/JHEP06(2023)011 |