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Scalable Variational Ansatz for Quantum Many-Body Dynamics on Noisy Quantum Devices

ORAL

Abstract

Quantum algorithms designed to simulate many-body quantum dynamics and their implementation on present-day noisy intermediate-scale quantum (NISQ) hardware should prioritize resource efficiency. Simulating time-dependent quantum Hamiltonians by explicit construction of the evolution operator requires a circuit depth scaling with the number of time steps, making it prohibitive for NISQ devices. Variational hybrid quantum-classical approaches, although approximate, make repeated use of short circuits and are thus more attractive for use in NISQ settings. However, finding a scalable variational ansatz capable of representing the dynamics in both adiabatic and non-adiabatic limits is a non-trivial problem. In our work, we use a variational time-evolution algorithm to simulate time-dependent spin models. Our ansatz scales polynomially with system size and provides qualitative agreement with exact numerics in adiabatic and non-adiabatic regimes with possible implementation in NISQ devices.

Presenters

  • Niladri Gomes

    Ames Laboratory

Authors

  • Niladri Gomes

    Ames Laboratory

  • Yongxin Yao

    Ames Laboratory, Ames Laboratory and Iowa State University, Iowa State University

  • Feng Zhang

    Ames Laboratory, Department of Physics, Iowa State University, Iowa State University

  • Cai-Zhuang Wang

    Ames Laboratory, U.S. Department of Energy and Department of Physics and Astronomy, Iowa State University, Iowa State University, Dept. of Physics and Astronomy, Iowa State University, Ames Laboratory and Iowa State University, Department of Physics, Iowa State University

  • Thomas Iadecola

    Iowa State University, Dept. of Physics and Astronomy, Iowa State University, Department of Physics and Astronomy, Iowa State University

  • Peter Orth

    Dept. of Physics and Astronomy, Iowa State University, Iowa State University, Ames Laboratory and Iowa State University