English

Bilinear Quantum Monte Carlo: Expectations and Energy Differences

Condensed Matter 2010-01-12 v1

Abstract

We propose a bilinear sampling algorithm in Green's function Monte Carlo for expectation values of operators that do not commute with the Hamiltonian and for differences between eigenvalues of different Hamiltonians. The integral representations of the Schroedinger equations are transformed into two equations whose solution has the form ψa(x)t(x,y)ψb(y)\psi_a(x) t(x,y) \psi_b(y), where ψa\psi_a and ψb\psi_b are the wavefunctions for the two related systems and t(x,y)t(x,y) is a kernel chosen to couple xx and yy. The Monte Carlo process, with random walkers on the enlarged configuration space xyx \otimes y, solves these equations by generating densities whose asymptotic form is the above bilinear distribution. With such a distribution, exact Monte Carlo estimators can be obtained for the expectation values of quantum operators and for energy differences. We present results of these methods applied to several test problems, including a model integral equation, and the hydrogen atom.

Keywords

Cite

@article{arxiv.cond-mat/9205003,
  title  = {Bilinear Quantum Monte Carlo: Expectations and Energy Differences},
  author = {Shiwei Zhang and M. H. Kalos},
  journal= {arXiv preprint arXiv:cond-mat/9205003},
  year   = {2010}
}

Comments

27 pages

R2 v1 2026-07-22T11:45:16.663Z