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Littérature scientifique sur le sujet « Bosonic analytic continuation »
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Articles de revues sur le sujet "Bosonic analytic continuation"
Ong, Perkins Jon, et Danilo M. Yanga. « Damping of spin waves in high-Tc superconductors in the spin polaron formulation ». International Journal of Modern Physics B 32, no 15 (18 juin 2018) : 1850190. http://dx.doi.org/10.1142/s0217979218501904.
Texte intégralBRESSLOFF, P. C., J. G. TAYLOR et A. RESTUCCIA. « A FUNCTIONAL LIGHT-CONE GAUGE CONSTRUCTION OF A BOSONIC STRING COMPACTIFIED ON A TORUS ». International Journal of Modern Physics A 03, no 02 (février 1988) : 451–86. http://dx.doi.org/10.1142/s0217751x88000175.
Texte intégralNg, K. K. « Bilayered Spin-S Heisenberg Model in Fractional Dimensions ». International Journal of Modern Physics B 12, no 18 (20 juillet 1998) : 1809–12. http://dx.doi.org/10.1142/s0217979298001034.
Texte intégralMANDAL, GAUTAM, ANIRVAN M. SENGUPTA et SPENTA R. WADIA. « INTERACTIONS AND SCATTERING IN d = 1 STRING THEORY ». Modern Physics Letters A 06, no 16 (30 mai 1991) : 1465–77. http://dx.doi.org/10.1142/s0217732391001585.
Texte intégralOstrovska, Sofiya. « On the properties of the limit q-Bernstein operator ». Studia Scientiarum Mathematicarum Hungarica 48, no 2 (1 juin 2011) : 160–79. http://dx.doi.org/10.1556/sscmath.48.2011.2.1164.
Texte intégralFeng, Xin, Xu Wang et Yue Zhang. « Research on public emotional polarization and public opinion evolution of OTC and learning during the COVID-19 epidemic : taking the topic of OTC on Zhihu as an example ». Library Hi Tech 40, no 2 (16 décembre 2021) : 286–303. http://dx.doi.org/10.1108/lht-09-2021-0323.
Texte intégralNogaki, Kosuke, et Hiroshi Shinaoka. « Bosonic Nevanlinna Analytic Continuation ». Journal of the Physical Society of Japan 92, no 3 (15 mars 2023). http://dx.doi.org/10.7566/jpsj.92.035001.
Texte intégralNeuhaus, James, Nathan S. Nichols, Debshikha Banerjee, Benjamin Cohen-Stead, Thomas Maier, Adrian Del Maestro et Steven Johnston. « SmoQyDEAC.jl : A differential evolution package for the analytic continuation of imaginary time correlation functions ». SciPost Physics Codebases, 12 novembre 2024. http://dx.doi.org/10.21468/scipostphyscodeb.39.
Texte intégralNeuhaus, James, Nathan S. Nichols, Debshikha Banerjee, Benjamin Cohen-Stead, Thomas Maier, Adrian Del Maestro et Steven Johnston. « Codebase release r1.1 for SmoQyDEAC.jl ». SciPost Physics Codebases, 12 novembre 2024. http://dx.doi.org/10.21468/scipostphyscodeb.39-r1.1.
Texte intégralPalermo, A., M. Buzzegoli et F. Becattini. « Exact equilibrium distributions in statistical quantum field theory with rotation and acceleration : Dirac field ». Journal of High Energy Physics 2021, no 10 (octobre 2021). http://dx.doi.org/10.1007/jhep10(2021)077.
Texte intégralThèses sur le sujet "Bosonic analytic continuation"
Rotella, Francesco. « Theoretical methods for the role of correlations on high-Tc superconductivity ». Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPASP181.
Texte intégralThis thesis includes two projects. In the first one, we develop and bench-mark an A.I. model to solve bosonic analytic continuation problems, that is generating the right optical conductivity starting from the current-current correlation function. Recent work has demonstrated that Neural Network can outperform Maximum Entropy methods for the analytical continuation of noisy Matsubara Green’s function in many-body physics, both in accuracy and computational cost. Here we generalize this approach to the conductivity response functions. A combination of Beta distributions is proposed as way to generate training sets that avoid limitations associated with monotonous flat scenery, as they offer a broad set of qualitatively different training spectra. We find that Neural Networks are particularly efficient at predicting DC conductivity, a notoriously difficult quantity for Maximum Entropy methods. We clarify the procedure to use the model in a thermally agnostic fashion, meaning that a Neural Network trained at a specific temperature could be used at different ones through a rescaling routine. Finally, we propose a general definition of confidence to be associated with the prediction of the optical conductivity profile, a much needed missing tile in the A.I. analytic continuation landscape, and provide some insight on its applicability. The second project focuses on cuprate high temperature superconductors. Recent experimental work has shown a strong anticorrelation between superconducting order parameter and the so called charge transfer gap. This involves both oxygen and copper orbitals and originates from the strong electronic correlation typical of these materials. In particular, a direct measure of these observables and their anti-correlation has been obtained by scanning tunneling microscopy experiments. Taking advantage from the natural modulation of the apical oxygen position on the surface of bi-layered BSCCO, which also modulate these observable in space, the anti-correlation could be validated at different sites of the same material. Using an advanced Dynamical Mean Field Theory method applied to the inhomogeneous Emery-Hubbard model, which takes into account both the copper and the oxygen orbitals of the cuprate planes, we are able to simulate the experimental situation. By using a pseudoinversion extrapolation method, we can show that the anti-correlation is present and strong in this model, though the strong spatial variation reported in experiments does not occur. This calls for a critical re-evaluation of the interpretation of the experimental results within our modeling. We finally discuss these findings in relation with the critical transition temperature, the superconducting order parameter and charge transfer gap of various known cuprate compounds