English

Exploiting Maximally Mixed States for Spectral Estimation by Time Evolution

Quantum Physics 2023-12-20 v2

Abstract

We introduce a novel approach for estimating the spectrum of quantum many-body Hamiltonians, and more generally, of Hermitian operators, using quantum time evolution. In our approach we are evolving a maximally mixed state under the Hamiltonian of interest and collecting specific time-series measurements to estimate its spectrum. We demonstrate the advantage of our technique over currently used classical statistical sampling methods. We showcase our approach by experimentally estimating the spectral decomposition of a 2-qubit Heisenberg Hamiltonian on an IBM Quantum backend. For this purpose, we develop a hardware-efficient decomposition that controls nn-qubit Pauli rotations against the physically closest qubit alongside expressing two-qubit rotations in terms of the native entangling interaction. This substantially reduced the accumulation of errors from noisy two-qubit operations in time evolution simulation protocols. We conclude by discussing the potential impact of our work and the future directions of research it opens.

Keywords

Cite

@article{arxiv.2312.00687,
  title  = {Exploiting Maximally Mixed States for Spectral Estimation by Time Evolution},
  author = {Kaelyn J. Ferris and Zihang Wang and Itay Hen and Amir Kalev and Nicholas T. Bronn and Vojtech Vlcek},
  journal= {arXiv preprint arXiv:2312.00687},
  year   = {2023}
}

Comments

9 pages, 6 figures

R2 v1 2026-06-28T13:38:32.186Z