Reliable high-accuracy error mitigation for utility-scale quantum circuits
Dorit Aharonov, Ori Alberton, Itai Arad, Yosi Atia, Eyal Bairey, Matan Ben Dov, Asaf Berkovitch, Zvika Brakerski, Itsik Cohen, Eran Fuchs, Omri Golan, Or Golan, Barak D. Gur, Ilya Gurwich, Avieli Haber, Rotem Haber, Dorri Halbertal, Yaron Itkin, Barak A. Katzir, Oded Kenneth

TL;DR
The paper introduces QESEM, a new error mitigation framework that combines the accuracy guarantees of probabilistic methods with reduced computational overhead, enabling reliable high-accuracy quantum circuit outputs on current hardware.
Contribution
QESEM offers a rigorously-grounded, characterization-based error mitigation approach that surpasses existing heuristic and unbiased methods in accuracy and efficiency.
Findings
QESEM outperforms zero-noise extrapolation in accuracy.
QESEM achieves high-accuracy results on large-scale quantum circuits.
Validated across diverse quantum devices and applications.
Abstract
Error mitigation is essential for unlocking the full potential of quantum algorithms and accelerating the timeline toward quantum advantage. As quantum hardware progresses to push the boundaries of classical simulation, efficient and robust error mitigation methods are becoming increasingly important for producing accurate and reliable outputs. However, existing error-mitigation approaches face a fundamental tradeoff between practical performance and reliability: heuristic methods such as zero-noise extrapolation (ZNE) enjoy faster runtime but lack accuracy guarantees, while rigorous techniques such as probabilistic error cancellation (PEC) provide unbiased estimates at prohibitive computational cost. We introduce a characterization-based, rigorously-grounded quantum error mitigation and error suppression framework (QESEM) that resolves this tradeoff by leveraging the accuracy…
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