15 pages, 9 figuresDiagrammatic expansions are a central tool for treating correlated electron systems. At thermal equilibrium, they are most naturally defined within the Matsubara formalism. However, extracting any dynamic response function from a Matsubara calculation ultimately requires the ill-defined analytical continuation from the imaginary- to the real-frequency domain. It was recently proposed [Phys. Rev. B 99, 035120 (2019)] that the internal Matsubara summations of any interaction-expansion diagram can be performed analytically by using symbolic algebra algorithms. The result of the summations is then an analytical function of the complex frequency rather than Matsubara frequency. Here we apply this principle and develop a diagra...
We show that Monte Carlo sampling of the Feynman diagrammatic series (DiagMC) can be used for tackli...
We present a new algorithm to analytically continue the self-energy of quantum many-body systems fro...
Diagrammatic Monte Carlo -- the technique for numerically exact summation of all Feynman diagrams to...
International audienceDiagrammatic expansions are a central tool for treating correlated electron sy...
We compute perturbative expansions of the self-energy and spin susceptibility functions in real-fre...
18 pages, 12 figuresInternational audienceThe past years have seen a revived interest in the diagram...
We present a method to accelerate the numerical evaluation of spatial integrals of Feynman diagrams ...
This thesis is devoted to the development of numerical methods for correlated electrons in realistic...
In this work the basic formalism of non-equilibrium Green’s functions is presented and then applied ...
International audienceWe provide a description of a diagrammatic Monte Carlo algorithm for the reson...
This thesis will describe efforts to enhance our ability to simulate the 2D Hubbard model. Chapter ...
Diagrammatic Monte Carlo (DiagMC) is a numeric technique that allows one to calculate quantities spe...
Precise calculations of dynamics in the homogeneous electron gas (jellium model) are of fundamental ...
International audienceWe present a technique that enables the evaluation of perturbative expansions ...
AbstractDiagrammatic Monte Carlo (DiagMC) is a numeric technique that allows one to calculate quanti...
We show that Monte Carlo sampling of the Feynman diagrammatic series (DiagMC) can be used for tackli...
We present a new algorithm to analytically continue the self-energy of quantum many-body systems fro...
Diagrammatic Monte Carlo -- the technique for numerically exact summation of all Feynman diagrams to...
International audienceDiagrammatic expansions are a central tool for treating correlated electron sy...
We compute perturbative expansions of the self-energy and spin susceptibility functions in real-fre...
18 pages, 12 figuresInternational audienceThe past years have seen a revived interest in the diagram...
We present a method to accelerate the numerical evaluation of spatial integrals of Feynman diagrams ...
This thesis is devoted to the development of numerical methods for correlated electrons in realistic...
In this work the basic formalism of non-equilibrium Green’s functions is presented and then applied ...
International audienceWe provide a description of a diagrammatic Monte Carlo algorithm for the reson...
This thesis will describe efforts to enhance our ability to simulate the 2D Hubbard model. Chapter ...
Diagrammatic Monte Carlo (DiagMC) is a numeric technique that allows one to calculate quantities spe...
Precise calculations of dynamics in the homogeneous electron gas (jellium model) are of fundamental ...
International audienceWe present a technique that enables the evaluation of perturbative expansions ...
AbstractDiagrammatic Monte Carlo (DiagMC) is a numeric technique that allows one to calculate quanti...
We show that Monte Carlo sampling of the Feynman diagrammatic series (DiagMC) can be used for tackli...
We present a new algorithm to analytically continue the self-energy of quantum many-body systems fro...
Diagrammatic Monte Carlo -- the technique for numerically exact summation of all Feynman diagrams to...