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We present torchami, an advanced implementation of algorithmic Matsubara integration (AMI) that utilizes pytorch as a backend to provide easy parallelization and GPU support.
doi:10.1145/355586.364791
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doi:https://doi.org/10.1016/j.phpro.2010.09.034
K. V. Houcke, E. Kozik, N. Prokof’ev, B. Svistunov, Diagrammatic monte carlo, Physics Procedia 6 (2010) 95 – 105 · 2010
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doi:10.1103/PhysRevLett.119.045701
R. Rossi, Determinant diagrammatic monte carlo algorithm in the thermodynamic limit , Phys. Rev. Lett. 119 (2017) 045701 · 2017
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Amir Taheridehkordi, S. H. Curnoe, and J. P. F. LeBlanc, Algorithmic Matsubara integration for Hubbard-like models, Phys. Rev. B 99 035120 (2019)
2019
Earlier work this paper cites.
doi:10.1103/PhysRevB.99.035120
A. Taheridehkordi, S. H. Curnoe, J. P. F. LeBlanc, Algorithmic matsubara integration for hubbard-like models , Phys. Rev. B 99 (2019) 035120 · 2019
Earlier work this paper cites.
doi:10.1103/PhysRevB.102.045115
A. Taheridehkordi, S. H. Curnoe, J. P. F. LeBlanc, Algorithmic approach to diagrammatic expansions for real-frequency evaluation of susceptibility functions , Phys. Rev. B 102 (2020) 045115 · 2020
Earlier work this paper cites.
doi:10.1103/PhysRevB.101.125109
A. Taheridehkordi, S. H. Curnoe, J. P. F. LeBlanc, Optimal grouping of arbitrary diagrammatic expansions via analytic pole structure , Phys. Rev. B 101 (2020) 125109 · 2020
Cited alongside, same era.
doi:10.1103/PhysRevB.102.045115
A. Taheridehkordi, S. H. Curnoe, J. P. F. LeBlanc, Algorithmic approach to diagrammatic expansions for real-frequency evaluation of susceptibility functions , Phys. Rev. B 102 (2020) 045115 · 2020
Cited alongside, same era.
doi:10.1103/PhysRevB.104.125114
B. D. E. McNiven, G. T. Andrews, J. P. F. LeBlanc, Single particle properties of the two-dimensional hubbard model for real frequencies at weak coupling: Breakdown of the dyson series for partial self-energy expansions , Phys. Rev. B 104 (2021) 125114 · 2021
Cited alongside, same era.
doi:10.1103/PhysRevLett.127.026403
I. S. Tupitsyn, A. M. Tsvelik, R. M. Konik, N. V. Prokof’ev, Real-frequency response functions at finite temperature , Phys. Rev. Lett. 127 (2021) 026403 · 2021
Cited alongside, same era.
H. Elazab, B. D. E. McNiven, and J. P. F. LeBlanc, LIBAMI: Implementation of algorithmic Matsubara integration, Computer Physics Communications 280, 108469 (2022)
2022
Cited alongside, same era.
doi:https://doi.org/10.1016/j.cpc.2022.108469
H. Elazab, B. McNiven, J. LeBlanc, Libami: Implementation of algorithmic matsubara integration , Computer Physics Communications 280 (2022) 108469 · 2022
Later among the works it cites.
doi:10.1103/PhysRevB.107.195138
R. Farid, M. Grandadam, J. P. F. LeBlanc, Pairing susceptibility of the two-dimensional hubbard model in the thermodynamic limit , Phys. Rev. B 107 (2023) 195138 · 2023
Closest in time.
I. Assi, J. P. F. LeBlanc, arXiv (2023) 2305.09103
2023
Closest in time.
doi:10.1103/PhysRevB.107.115151
M. D. Burke, M. Grandadam, J. P. F. LeBlanc, Renormalized perturbation theory for fast evaluation of feynman diagrams on the real frequency axis , Phys. Rev. B 107 (2023) 115151 · 2023
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K. Haule, arXiv:2311.09412 (2023)
2023
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B. D. E. McNiven, H. Terletska, G. T. Andrews, J. P. F. LeBlanc, arXiv:2203.09657 (2022)
2022
Cited alongside, same era.
doi:10.1103/PhysRevLett.129.246401
J. P. F. LeBlanc, K. Chen, K. Haule, N. V. Prokof’ev, I. S. Tupitsyn, Dynamic response of an electron gas: Towards the exact exchange-correlation kernel , Phys. Rev. Lett. 129 (2022) 246401 · 2022
Cited alongside, same era.
2023
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