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Published December 2021 | Accepted Version + Published
Journal Article Open

Hierarchical qubit maps and hierarchically implemented quantum error correction

Abstract

We consider hierarchically implemented quantum error correction (HI-QEC), in which the fidelities of logical qubits are differentially optimized to enhance the capabilities of quantum devices in scientific applications. By employing qubit representations that propagate hierarchies in simulated systems to those in logical qubit noise sensitivities, heterogeneity in the distribution of physical-to-logical qubits can be systematically structured. For concreteness, we estimate HI-QEC's impact on surface code resources in computing low-energy observables to fixed precision, finding up to approximately 60% reductions in qubit requirements plausible in early error-corrected simulations. Hierarchical qubit maps are also possible without error correction in qubit and qudit systems where fidelities are nonuniform, either unintentionally or by design. Hierarchical optimizations are another element in the codesign process of quantum computations, including quantum simulations for nuclear and particle physics.

Additional Information

© 2021 American Physical Society. Received 11 September 2021; accepted 1 December 2021; published 15 December 2021. N.K. was supported in part by the Walter Burke Institute for Theoretical Physics and by the U.S. Department of Energy Office of Science, Office of Advanced Scientific Computing Research (Grant No. DE-SC0020290), and Office of High Energy Physics (Grant No. DE-ACO2-07CH11359). M.J.S. was supported in part by the U.S. Department of Energy, Office of Science, Office of Nuclear Physics, InQubator for Quantum Simulation under Award No. DE-SC0020970 through Quantum Horizons: QIS Research and Innovation for Nuclear Science Initiative.

Attached Files

Published - PhysRevA.104.062425.pdf

Accepted Version - 2109.01953.pdf

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Created:
August 20, 2023
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October 23, 2023