Resources for Bosonic Quantum Computational Advantage
- Creators
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Chabaud, Ulysse
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Walschaers, Mattia
Abstract
Quantum computers promise to dramatically outperform their classical counterparts. However, the nonclassical resources enabling such computational advantages are challenging to pinpoint, as it is not a single resource but the subtle interplay of many that can be held responsible for these potential advantages. In this Letter, we show that every bosonic quantum computation can be recast into a continuous-variable sampling computation where all computational resources are contained in the input state. Using this reduction, we derive a general classical algorithm for the strong simulation of bosonic computations, whose complexity scales with the non-Gaussian stellar rank of both the input state and the measurement setup. We further study the conditions for an efficient classical simulation of the associated continuous-variable sampling computations and identify an operational notion of non-Gaussian entanglement based on the lack of passive separability, thus clarifying the interplay of bosonic quantum computational resources such as squeezing, non-Gaussianity, and entanglement.
Additional Information
© 2023 American Physical Society. We thank Frédéric Grosshans for inspiring discussions. This work was supported by the ANR JCJC project NoRdiC (ANR-21-CE47-0005) and Plan France 2030 project NISQ2LSQ (ANR-22-PETQ-0006). U. C. acknowledges funding provided by the Institute for Quantum Information and Matter, a NSF Physics Frontiers Center (NSF Grant No. PHY-1733907).Attached Files
Published - PhysRevLett.130.090602.pdf
Supplemental Material - SM.pdf
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Additional details
- Eprint ID
- 120668
- Resolver ID
- CaltechAUTHORS:20230404-414969100.16
- Agence Nationale de la Recherche (ANR)
- ANR-21-CE47-0005
- Agence Nationale de la Recherche (ANR)
- ANR-22-PETQ-0006
- NSF
- PHY-1733907
- Created
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2023-05-05Created from EPrint's datestamp field
- Updated
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2023-05-05Created from EPrint's last_modified field
- Caltech groups
- Institute for Quantum Information and Matter