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Advancing Technology for Humanity
Quantum Computing & Information Theory Open Access (CC-BY 4.0) Featured Paper Identifier: IEEE-RH-2026-0001

Scalable Error-Mitigated Quantum Telemetry for Superconducting Multi-Qubit Processors

(1) Prof. Alistair Vance — Stanford University

(2) Dr. Elena Rostova — MIT CSAIL

Date of Publication: August 15, 2026
Digital Object Identifier (DOI): 10.1109/IRH.2026.1001429
Volume & Issue: Vol. 14, Issue 3 (pp. 102-118)
Conference & Proceedings: IEEE ICAC 2026 Proceedings

Abstract

Superconducting quantum circuits face severe fidelity degradation due to thermal quasiparticles and decoherence during multi-qubit readout cycles. In this paper, we introduce an adaptive error-mitigation protocol that performs real-time continuous calibration using non-destructive dispersive telemetry. Benchmarked across a 127-qubit planar lattice, our approach suppresses state-preparation and measurement (SPAM) errors by 41.6% without incurring physical qubit overhead. Experimental verification on benchmark algorithms demonstrates two orders of magnitude improvement in circuit depth capacity.

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Published under Creative Commons Attribution 4.0 International (CC BY 4.0)

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Citation Information

IEEE Standard Format:
Prof. Alistair Vance, Dr. Elena Rostova, "Scalable Error-Mitigated Quantum Telemetry for Superconducting Multi-Qubit Processors," International Conference Summit (ICS), vol. 14, no. 3, pp. 102-118, Aug 2026, doi: 10.1109/IRH.2026.1001429.
View BibTeX Record
@article{vance2026IEEERH20260001,
  title={Scalable Error-Mitigated Quantum Telemetry for Superconducting Multi-Qubit Processors},
  author={Prof. Alistair Vance and Dr. Elena Rostova},
  journal={International Conference Summit (ICS) Open Transactions},
  volume={14},
  number={3},
  pages={102-118},
  year={2026},
  doi={10.1109/IRH.2026.1001429},
  publisher={International Conference Summit (ICS)}
}