Bulletin of the American Physical Society
APS March Meeting 2021
Volume 66, Number 1
Monday–Friday, March 15–19, 2021; Virtual; Time Zone: Central Daylight Time, USA
Session M32: Noisy Intermediate Scale Quantum Computers IV
11:30 AM–2:30 PM,
Wednesday, March 17, 2021
Sponsoring
Units:
DQI DCOMP
Chair: Nicolas Sawaya, Intel Corp - Santa Clara
Abstract: M32.00014 : Unified approach to data-driven quantum error mitigation
2:06 PM–2:18 PM
Live
Presenter:
Andrew Arrasmith
(Los Alamos National Laboratory)
Authors:
Angus Lowe
(University of Waterloo)
Max Hunter Gordon
(Autonomous Institute of Madrid)
Piotr Czarnik
(Los Alamos National Laboratory)
Andrew Arrasmith
(Los Alamos National Laboratory)
Patrick Coles
(Los Alamos National Laboratory)
Lukasz Cincio
(Los Alamos National Laboratory)
Achieving near-term quantum advantage will require effective methods for mitigating hardware noise. Data-driven approaches to error mitigation are promising, with popular examples including zero-noise extrapolation (ZNE) and Clifford data regression (CDR). Here we propose a novel, scalable error mitigation method that conceptually unifies ZNE and CDR. Our approach, called variable-noise Clifford data regression (vnCDR), significantly outperforms these individual methods in numerical benchmarks. vnCDR generates training data first via near-Clifford circuits (which are classically simulable) and second by varying the noise levels in these circuits.
We test out new methods by employing a noise model obtained from IBM's Ourense quantum computer to benchmark our method. For the problem of estimating the energy of an 8-qubit Ising model system, vnCDR improves the absolute energy error by a factor of 33 over the unmitigated results and by factors 20 and 1.8 over ZNE and CDR, respectively. For the problem of correcting observables from random quantum circuits with 64 qubits, vnCDR improves the error by factors of 2.7 and 1.5 over ZNE and CDR, respectively.
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