LECS
Laboratoire pour les systèmes informatiques émergents
Université Concordia · Montréal
arXiv quant-ph

CHSH Violations using Dynamic Circuits

IEEE QCE · 2025 · arXiv:2504.18429
Informatique quantique
IEEE QCE 2025 Jean-Baptiste Waring, Christophe Pere, Sébastien Le Beux
Résumé

Scalable quantum computing relies on high-quality, long-range entanglement, a challenge on noisy, near-term devices. The need for practical insights for near-term algorithm design calls for trade-offs exploration in implementing dynamic circuits on current hardware. In this work, we experimentally compare three CNOT implementations for generating Bell states across varying qubit separations on a 127-qubit IBM Quantum Eagle processor (ibm_quebec): a unitary (SWAP-based) approach, a dynamic approach with mid-circuit measurements and classical feedforward, and a post-processed approach. We use Clauser-Horne-Shimony-Holt (CHSH) inequality violations to quantify entanglement quality. We observe that, beyond 10 qubits, dynamic circuits lead to higher |S| values than the unitary approach, demonstrating improved distance-dependent entanglement preservation. The post-processed approach yields the highest CHSH values, reaching |S| > 2 up to 13 qubits. Our results underscore the critical need for faster classical feedforward and higher readout fidelity.

Citation

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@misc{jeanbaptiste2025250418429,
  title         = {CHSH Violations using Dynamic Circuits},
  author        = {Jean-Baptiste Waring and Christophe Pere and Sébastien Le Beux},
  year          = {2025},
  eprint        = {2504.18429},
  archivePrefix = {arXiv},
  primaryClass  = {quant-ph}
}

Remerciements

Ces travaux ont été soutenus en partie par le Conseil de recherches en sciences naturelles et en génie du Canada (CRSNG) et par le Fonds de recherche du Québec — Nature et technologies (FRQNT).