English

A Simple and Efficient Joint Measurement Strategy for Estimating Fermionic Observables and Hamiltonians

Quantum Physics 2025-07-23 v3 Mathematical Physics math.MP

Abstract

We propose a simple scheme to estimate fermionic observables and Hamiltonians relevant in quantum chemistry and correlated fermionic systems. Our approach is based on implementing a measurement that jointly measures noisy versions of any product of two or four Majorana operators in an NN mode fermionic system. To realize our measurement we use: (i) a randomization over a set of unitaries that realize products of Majorana fermion operators; (ii) a unitary, sampled at random from a constant-size set of suitably chosen fermionic Gaussian unitaries; (iii) a measurement of fermionic occupation numbers; (iv) suitable post-processing. Our scheme can estimate expectation values of all quadratic and quartic Majorana monomials to ϵ\epsilon precision using O(Nlog(N)/ϵ2)\mathcal{O}(N \log(N)/\epsilon^2) and O(N2log(N)/ϵ2)\mathcal{O}(N^2 \log(N)/\epsilon^2) measurement rounds respectively, matching the performance offered by fermionic classical shadows. In certain settings, such as a rectangular lattice of qubits which encode an NN mode fermionic system via the Jordan-Wigner transformation, our scheme can be implemented in circuit depth O(N1/2)\mathcal{O}(N^{1/2}) with O(N3/2)\mathcal{O}(N^{3/2}) two-qubit gates, offering an improvement over fermionic and matchgate classical shadows that require depth O(N)\mathcal{O}(N) and O(N2)\mathcal{O}(N^2) two-qubit gates. By benchmarking our method on exemplary molecular Hamiltonians and observing performances comparable to fermionic classical shadows, we demonstrate a novel, competitive alternative to existing strategies.

Keywords

Cite

@article{arxiv.2402.19230,
  title  = {A Simple and Efficient Joint Measurement Strategy for Estimating Fermionic Observables and Hamiltonians},
  author = {Joanna Majsak and Daniel McNulty and Michał Oszmaniec},
  journal= {arXiv preprint arXiv:2402.19230},
  year   = {2025}
}

Comments

11 + 10 pages, 7 figures. v3: accepted in npj Quantum Information

R2 v1 2026-06-28T15:04:42.990Z