An Implementation of the Finite Element Method in Hybrid Classical/Quantum Computers

Fuente: arXiv
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Main Authors: Arora, Abhishek, Ward, Benjamin M., Oskay, Caglar
Format: Preprint
Published: 2024
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author Arora, Abhishek
Ward, Benjamin M.
Oskay, Caglar
author_facet Arora, Abhishek
Ward, Benjamin M.
Oskay, Caglar
contents This manuscript presents the Quantum Finite Element Method (Q-FEM) developed for use in noisy intermediate-scale quantum (NISQ) computers and employs the variational quantum linear solver (VQLS) algorithm. The proposed method leverages the classical FEM procedure to perform the unitary decomposition of the stiffness matrix and employs generator functions to design explicit quantum circuits corresponding to the unitaries. Q-FEM keeps the structure of the finite element discretization intact allowing for the use of variable element lengths and material coefficients in FEM discretization. The proposed method is tested on a steady-state heat equation discretized using linear and quadratic shape functions. Numerical verification studies are performed on the IBM QISKIT simulator and it is demonstrated that Q-FEM is effective in converging to the correct solution for a variety of problems and model discretizations, including with different element lengths, variable coefficients, and different boundary conditions. The formalism developed herein is general and can be extended to problems with higher dimensions. However, numerical examples also demonstrate that the number of parameters for the variational ansatz scale exponentially with the number of qubits, and increases the odds of convergence. Moreover, the deterioration of system conditioning with problem size results in barren plateaus and convergence difficulties.
format Preprint
id arxiv_https___arxiv_org_abs_2411_09038
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An Implementation of the Finite Element Method in Hybrid Classical/Quantum Computers
Arora, Abhishek
Ward, Benjamin M.
Oskay, Caglar
Quantum Physics
Numerical Analysis
This manuscript presents the Quantum Finite Element Method (Q-FEM) developed for use in noisy intermediate-scale quantum (NISQ) computers and employs the variational quantum linear solver (VQLS) algorithm. The proposed method leverages the classical FEM procedure to perform the unitary decomposition of the stiffness matrix and employs generator functions to design explicit quantum circuits corresponding to the unitaries. Q-FEM keeps the structure of the finite element discretization intact allowing for the use of variable element lengths and material coefficients in FEM discretization. The proposed method is tested on a steady-state heat equation discretized using linear and quadratic shape functions. Numerical verification studies are performed on the IBM QISKIT simulator and it is demonstrated that Q-FEM is effective in converging to the correct solution for a variety of problems and model discretizations, including with different element lengths, variable coefficients, and different boundary conditions. The formalism developed herein is general and can be extended to problems with higher dimensions. However, numerical examples also demonstrate that the number of parameters for the variational ansatz scale exponentially with the number of qubits, and increases the odds of convergence. Moreover, the deterioration of system conditioning with problem size results in barren plateaus and convergence difficulties.
title An Implementation of the Finite Element Method in Hybrid Classical/Quantum Computers
topic Quantum Physics
Numerical Analysis
url https://arxiv.org/abs/2411.09038