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Reducing Unitary Coupled Cluster Circuit Depth by Classical Stochastic Amplitude Pre-Screening

Quantum Physics 2022-06-15 v3 Chemical Physics

Abstract

Unitary Coupled Cluster (UCC) approaches are an appealing route to utilising quantum hardware to perform quantum chemistry calculations, as quantum computers can in principle perform UCC calculations in a polynomially scaling fashion, as compared to the exponential scaling required on classical computers. Current noisy intermediate scale quantum (NISQ) computers are limited by both hardware capacity in number of logical qubits and the noise introduced by the deep circuits required for UCC calculations using the Variational Quantum Eigensolver (VQE) approach. We present a combined classical--quantum approach where a stochastic classical UCC pre-processing step is used to determine the important excitations in the UCC ansatz. The reduced number of selected excitations are then used in a UCC-based VQE calculation. This approach gives a systematically improvable approximation, and we show that significant reductions in quantum resources can be achieved, with simulations on the CH2_2, N2_2 and N2_2H2_2 molecules giving sub-milliHartree errors.

Keywords

Cite

@article{arxiv.2108.10912,
  title  = {Reducing Unitary Coupled Cluster Circuit Depth by Classical Stochastic Amplitude Pre-Screening},
  author = {Maria-Andreea Filip and Nathan Fitzpatrick and David Muñoz Ramo and Alex J. W. Thom},
  journal= {arXiv preprint arXiv:2108.10912},
  year   = {2022}
}

Comments

14 pages, 10 figures, 5 tables + 3 pages, 3 figures Supplemental Material

R2 v1 2026-06-24T05:23:28.763Z