English

Lanczos-based Low-Rank Correction Method for Solving the Dyson Equation in Inhomogenous Dynamical Mean-Field Theory

Strongly Correlated Electrons 2011-02-17 v2 Atomic Physics Computational Physics Quantum Physics

Abstract

Inhomogeneous dynamical mean-field theory has been employed to solve many interesting strongly interacting problems from transport in multilayered devices to the properties of ultracold atoms in a trap. The main computational step, especially for large systems, is the problem of calculating the inverse of a large sparse matrix to solve Dyson's equation and determine the local Green's function at each lattice site from the corresponding local self-energy. We present a new efficient algorithm, the Lanczos-based low-rank algorithm, for the calculation of the inverse of a large sparse matrix which yields this local (imaginary time) Green's function. The Lanczos-based low-rank algorithm is based on a domain decomposition viewpoint, but avoids explicit calculation of Schur complements and relies instead on low-rank matrix approximations derived from the Lanczos algorithm, for solving the Dyson equation. We report at least a 25-fold improvement of performance compared to explicit decomposition (such as sparse LU) of the matrix inverse. We also report that scaling relative to matrix sizes, of the low-rank correction method on the one hand and domain decomposition methods on the other, are comparable.

Keywords

Cite

@article{arxiv.1102.3137,
  title  = {Lanczos-based Low-Rank Correction Method for Solving the Dyson Equation in Inhomogenous Dynamical Mean-Field Theory},
  author = {Pierre Carrier and Jok M. Tang and Yousef Saad and James K. Freericks},
  journal= {arXiv preprint arXiv:1102.3137},
  year   = {2011}
}

Comments

13 pages, 1 figure, 24th Annual CSP Workshop, University of Georgia, Athens, GA, submitted to Physics Procedia. New version has some of the References corrected

R2 v1 2026-06-21T17:26:43.021Z