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Co-designing Spectral Transformation Oracles with Hybrid Oscillator-Qubit Quantum Processors: From Algorithms to Compilation

Research output: Contribution to journalArticlepeer-review

Abstract

We co-design a family of quantum eigenvalue transformation oracles that can be efficiently implemented on hybrid discrete- or continuous-variable (qubit or qumode) hardware. To illustrate the oracle’s representation-theoretic power and near-term experimental accessibility, we encode a Gaussian imaginary time-evolution spectral filter. As a result, we define a continuous linear combination of unitaries block encoding. Due to the ancillary qumode’s infinite-dimensional nature, continuous-variable qumodes constitute a powerful compilation tool for encoding continuous spectral functions without discretization errors while minimizing resource requirements. We then focus on the ubiquitous task of preparing eigenstates in quantum spin models. For completeness, we provide an end-to-end compilation which expresses high-level oracles in terms of an experimentally realizable instruction set architecture in both 1D and 2D. Finally, we examine the leading-order effects of physical errors and highlight open research directions. Our algorithms scale linearly with the spatial extent of the target system and are applicable to both near-term and large-scale quantum processors.

Original languageEnglish
Article number040359
JournalPRX Quantum
Volume6
Issue number4
DOIs
StatePublished - Jan 2025

Funding

ORNL is managed by UT-Battelle, LLC, under Contract No. DE-AC05-00OR22725 for the U.S. Department of Energy. The United States Government retains, and the publisher, by accepting the article for publication, acknowledges that the United States Government retains a nonexclusive, paid-up, irrevocable, worldwide license to publish or reproduce the published form of this manuscript, or allow others to do so, for the United States Government purposes. The Department of Energy will provide public access to these results of federally sponsored research in accordance with the DOE Public Access Plan. We thank P. Lotshaw for helpful comments. L.B. was supported by DOE ASCR funding under the Quantum Computing Application Teams program, FWP ERKJ347. Y.W. was supported by the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Quantum Science Center, and DOE ASCR funding under the Accelerated Research in Quantum Computing Program, FWP ERKJ445. E.D. was supported by the U.S. Department of Energy, Office of Science, Advanced Scientific Research Program, Early Career Award under Contract No. ERKJ420. K.S. was supported by the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Co-design Center for Quantum Advantage under Contract No. DE-SC0012704. Y.L. acknowledges the support by the U.S. Department of Energy, Office of Science, Advanced Scientific Computing Research, under Contract No. DESC0025384. S.M.G. acknowledges additional support for research sponsored by the Army Research Office (ARO), and accomplished under Grant No. W911NF-23-1-0051.

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