English

Quantum Realization of the Finite Element Method

Quantum Physics 2025-08-20 v4 Data Structures and Algorithms Numerical Analysis Numerical Analysis

Abstract

This paper presents a quantum algorithm for the solution of prototypical second-order linear elliptic partial differential equations discretized by dd-linear finite elements on Cartesian grids of a bounded dd-dimensional domain. An essential step in the construction is a BPX preconditioner, which transforms the linear system into a sufficiently well-conditioned one, making it amenable to quantum computation. We provide a constructive proof demonstrating that, for any fixed dimension, our quantum algorithm can compute suitable functionals of the solution to a given tolerance tol\mathtt{tol} with an optimal complexity of order tol1\mathtt{tol}^{-1} up to logarithmic terms, significantly improving over existing approaches. Notably, this approach does not rely on regularity of the solution and achieves quantum advantage over classical solvers in two dimensions, whereas prior quantum methods required at least four dimensions for asymptotic benefits. We further detail the design and implementation of a quantum circuit capable of executing our algorithm, present simulator results, and report numerical experiments on current quantum hardware, confirming the feasibility of preconditioned finite element methods for near-term quantum computing.

Keywords

Cite

@article{arxiv.2403.19512,
  title  = {Quantum Realization of the Finite Element Method},
  author = {Matthias Deiml and Daniel Peterseim},
  journal= {arXiv preprint arXiv:2403.19512},
  year   = {2025}
}

Comments

Updated version contains experiments on real quantum hardware and clarifications in Theorem 6.5. Article accepted in Mathematics of Computation

R2 v1 2026-06-28T15:37:16.746Z