Trotter24: A precision-guaranteed adaptive stepsize Trotterization for Hamiltonian simulations

ORAL

Abstract

Choosing an optimal time step is crucial for an efficient Hamiltonian simulation based on Trotterization but difficult due to the complex structure of the Trotter error. In this talk, we present a method measuring the Trotter error without ancillary qubits by combining the second- and fourth-order Trotterizations rather than consulting with mathematical error bounds. Implementing this method, we construct an algorithm, which we name Trotter24, for adaptively using almost the largest stepsize, which keeps quantum circuits shallowest, within an error tolerance preset for our purpose. Trotter24 applies to generic Hamiltonians, including time-dependent ones, and can be generalized to any orders of Trotterization. Benchmarking it in a quantum spin chain, we find the adaptively chosen time step to be about ten times larger than that inferred from known upper bounds of Trotter errors. Trotter24 allows us to keep the quantum circuit thus shallower within the error tolerance in exchange for paying the cost of measurements.

* This work is supported by MEXT Quantum Leap Flagship Program (MEXTQLEAP) Grant No. JPMXS0118067394, JPMXS0120319794, JST COI-NEXT program Grant No. JPMJPF2014, JST PRESTO Grant No. JPMJPR2112, and JSPS KAKENHI Grant No. JP21K13852.

Publication: arXiv:2307.05406

Presenters

  • Tatsuhiko N Ikeda

    RIKEN Center for Quantum Computing

Authors

  • Tatsuhiko N Ikeda

    RIKEN Center for Quantum Computing

  • Hideki Kono

    Department of Applied Physics, The University of Tokyo, The University of Tokyo

  • Keisuke Fujii

    Osaka University, Osaka Univ, Graduate School of Engineering Science, Osaka University, Osaka University / RIKEN RQC, The University of Osaka