PaperPanorama

arXiv:2007.03663·v3·Quantum Physics

Measurement Error Mitigation in Quantum Computers Through Classical Bit-Flip Correction

Lena Funcke🇨🇦 · Tobias Hartung🇬🇧 · Karl Jansen🇩🇪 · Stefan Kühn🇨🇾 · Paolo Stornati🇩🇪 · Xiaoyang Wang🇨🇳

PDFarXivINSPIREDOI

Abstract

We develop a classical bit-flip correction method to mitigate measurement errors on quantum computers. This method can be applied to any operator, any number of qubits, and any realistic bit-flip probability. We first demonstrate the successful performance of this method by correcting the noisy measurements of the ground-state energy of the longitudinal Ising model. We then generalize our results to arbitrary operators and test our method both numerically and experimentally on IBM quantum hardware. As a result, our correction method reduces the measurement error on the quantum hardware by up to one order of magnitude. We finally discuss how to pre-process the method and extend it to other errors sources beyond measurement errors. For local Hamiltonians, the overhead costs are polynomial in the number of qubits, even if multi-qubit correlations are included.

Comments: 27 pages, 11 figures, 4 tables, v3: updated to match journal version

Citation historyopen in Citation History ↗