English

Shallow quantum circuits for efficient preparation of Slater determinants and correlated states on a quantum computer

Quantum Physics 2023-08-22 v5 Chemical Physics

Abstract

Fermionic ansatz state preparation is a critical subroutine in many quantum algorithms such as Variational Quantum Eigensolver for quantum chemistry and condensed matter applications. The shallowest circuit depth needed to prepare Slater determinants and correlated states to date scale at least linearly with respect to the system size NN. Inspired by data-loading circuits developed for quantum machine learning, we propose an alternate paradigm that provides shallower, yet scalable O(dlog22N){\mathcal{O}}(d \log_2^2N) two-qubit gate depth circuits to prepare such states with d-fermions, offering a subexponential reduction in NN over existing approaches in second quantization, enabling high-accuracy studies of dO(N/log22N)d{\ll}{\mathcal{O}}{\left(N / \log_2^2 N\right)} fermionic systems with larger basis sets on near-term quantum devices.

Keywords

Cite

@article{arxiv.2301.07477,
  title  = {Shallow quantum circuits for efficient preparation of Slater determinants and correlated states on a quantum computer},
  author = {Chong Hian Chee and Daniel Leykam and Adrian M. Mak and Dimitris G. Angelakis},
  journal= {arXiv preprint arXiv:2301.07477},
  year   = {2023}
}

Comments

revised, 5+8 pages, 5+1 figures