Adaptive Variational Quantum Imaginary Time Evolution Approach for Ground State Preparation

ORAL

Abstract

An adaptive variational quantum imaginary time evolution (AVQITE) approach is introduced that yields efficient representations of ground states for interacting Hamiltonians on near-term quantum computers. It is based on McLachlan's variational principle applied to the imaginary time evolution of variational wave functions. The variational parameters evolve deterministically according to equations of motion that minimize the difference to the exact imaginary time evolution, which is quantified by the McLachlan distance. Rather than working with a fixed variational ansatz, where the McLachlan distance is constrained by the quality of the ansatz, the AVQITE method iteratively expands the ansatz along the dynamical path to keep the McLachlan distance below a chosen threshold. This ensures that the state is able to follow the quantum imaginary time evolution path in the system Hilbert space rather than in a restricted variational manifold set by a predefined fixed ansatz. AVQITE is used to prepare ground states of H$_4$, H$_2$O and BeH$_2$ molecules, where it yields compact variational ans\"atze and ground state energies within chemical accuracy. Polynomial scaling of circuit depth with system size is shown through a set of AVQITE calculations of quantum spin models. Finally, quantum Lanczos calculations are demonstrated alongside AVQITE without additional quantum resource costs.

*This work was supported by the U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences, Materials Science and Engineering Division. The research was performed at the Ames Laboratory, which is operated for the U.S. DOE by Iowa State University under Contract No. DE-AC02-07CH11358.

Publication: N. Gomes et al. arXiv:2102.01544 (2021) (accepted at Advanced Quantum Technologies)

Presenters

  • Niladri Gomes

    • Ames Lab

Authors

  • Niladri Gomes

    • Ames Lab
  • Anirban Mukherjee

    • The Ames Laboratory
  • Feng Zhang

    • Ames Lab
  • Thomas Iadecola

    • Iowa State University
  • Cai-Zhuang Wang

    • Iowa State University
  • Kai-Ming Ho

    • Ames Laboratory
    • The Ames Laboratory
    • Iowa State University
    • Department of Physics, Iowa State University, Ames, Iowa 50011, USA
  • Peter P Orth

    • Department of Physics and Astronomy, Iowa State University, Ames, Iowa 50011, USA
    • Iowa State University
    • Ames Laboratory / Iowa State University
    • Ames Laboratory and Iowa State University
    • Iowa State University / Ames Laboratory
  • Yongxin Yao

    • Ames Lab
    • Ames Laboratory, U.S. Department of Energy, Ames, Iowa 50011, USA