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An entanglement-based volumetric benchmark for near-term quantum hardware

Quantum Physics 2022-09-05 v1

Abstract

We introduce a volumetric benchmark for near-term quantum platforms based on the generation and verification of genuine entanglement across n-qubits using graph states and direct stabilizer measurements. Our benchmark evaluates the robustness of multipartite and bipartite n-qubit entanglement with respect to many sources of hardware noise: qubit decoherence, CNOT and swap gate noise, and readout error. We demonstrate our benchmark on multiple superconducting qubit platforms available from IBM (ibmq_belem, ibmq_toronto, ibmq_guadalupe and ibmq_jakarta). Subsets of n<10n<10 qubits are used for graph state preparation and stabilizer measurement. Evaluation of genuine and biseparable entanglement witnesses we report observations of 55 qubit genuine entanglement, but robust multipartite entanglement is difficult to generate for n>4n>4 qubits and identify two-qubit gate noise as strongly correlated with the quality of genuine multipartite entanglement.

Keywords

Cite

@article{arxiv.2209.00678,
  title  = {An entanglement-based volumetric benchmark for near-term quantum hardware},
  author = {Kathleen E. Hamilton and Nouamane Laanait and Akhil Francis and Sophia E. Economou and George S. Barron and Kübra Yeter-Aydeniz and Titus Morris and Harrison Cooley and Muhun Kang and Alexander F. Kemper and Raphael Pooser},
  journal= {arXiv preprint arXiv:2209.00678},
  year   = {2022}
}

Comments

21 pages, 17 figures

R2 v1 2026-06-28T00:35:42.119Z