In situ quantum verification of polarization-stabilized optical channels
Abstract
The active stabilization of polarization channels is a task of growing importance as quantum networks move to deployed demonstrations over existing fiber infrastructure. However, the uniquely strict requirements for high-fidelity qubit transmission complicate the extent to which classical solutions may apply to future quantum networks, particularly in terms of recognizing noise sources present in low-flux, nonunitary channels. Here we introduce a novel in situ benchmarking approach that augments a classical polarization tracking system, limited to unitary correction, with simultaneously transmitted quantum light for ancilla-assisted process tomography of the full quantum map. Implemented in a local-area quantum network, our method uses the reconstructed map both to validate the classical compensation and to expose noise sources it fails to capture. A sliding measurement window that continuously updates the estimated quantum process further increases sensitivity to rapid channel fluctuations. Our results should unlock new opportunities for in situ channel characterization in quantum-classical coexistence networks.
Keywords
Cite
@article{arxiv.2510.26034,
title = {In situ quantum verification of polarization-stabilized optical channels},
author = {Matthew L. Stevens and Noah I. Wasserbeck and Zachary Goisman and Arefur Rahman and John Michael Record and Taman Truong and Ariq Haqq and Muneer Alshowkan and Brian T. Kirby and Nils T. Otterstrom and Joseph M. Lukens},
journal= {arXiv preprint arXiv:2510.26034},
year = {2026}
}
Comments
8 pages, 4 figures