English

Quantum State Certification via Effective Parent Hamiltonians from Local Measurement Data

Quantum Physics 2026-03-06 v1

Abstract

The preparation and certification of quantum states is a fundamental challenge across quantum information technology. We introduce a tomography-free state certification method that lower-bounds the fidelity by estimating expectation values of engineered parent-Hamiltonian terms from local measurement data. We apply this framework to construct a parent Hamiltonian that enables certification and variational optimization across the Dicke-state family, which includes the single-excitation WnW_n state. We experimentally validate the framework on IBM quantum hardware, certifying genuine multipartite entanglement for WnW_n states up to six qubits and establishing positive lower bounds on the state fidelity up to thirteen qubits. For Dicke states with two- and three-excitations, we certify genuine multipartite entanglement up to seven qubits. Within this stringent certification framework, these results constitute among the largest witness-certified demonstrations of such states on a programmable quantum processor.

Keywords

Cite

@article{arxiv.2603.04499,
  title  = {Quantum State Certification via Effective Parent Hamiltonians from Local Measurement Data},
  author = {Guy-Philippe Nadon and Guanyi Heng and Pacôme Gasnier and Antoine Lemelin and Camille Coti and Zeljko Zilic and Mikko Möttönen and Ville Kotovirta and Toni Annala and Ernesto Campos and Jacob Biamonte},
  journal= {arXiv preprint arXiv:2603.04499},
  year   = {2026}
}

Comments

12 pages, 4 figures, REVTeX

R2 v1 2026-07-01T11:03:48.234Z