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Interactive cryptographic proofs of quantumness using mid-circuit measurements

Publication ,  Journal Article
Zhu, D; Kahanamoku-Meyer, GD; Lewis, L; Noel, C; Katz, O; Harraz, B; Wang, Q; Risinger, A; Feng, L; Biswas, D; Egan, L; Gheorghiu, A; Nam, Y ...
Published in: Nature Physics
November 1, 2023

The ability to perform measurements in the middle of a quantum circuit is a powerful resource. It underlies a wide range of applications, from remote state preparation to quantum error correction. Here we apply mid-circuit measurements for a particular task: demonstrating quantum computational advantage. The goal of such a demonstration is for a quantum device to perform a computational task that is infeasible for a classical device with comparable resources. In contrast to existing demonstrations, the distinguishing feature of our approach is that the classical verification process is efficient, both in asymptotic complexity and in practice. Furthermore, the classical hardness of performing the task is based upon well-established cryptographic assumptions. Protocols with these features are known as cryptographic proofs of quantumness. Using a trapped-ion quantum computer, we perform mid-circuit measurements by spatially isolating portions of the ion chain via shuttling. This enables us to implement two interactive cryptographic proofs of quantumness, which when suitably scaled to larger systems, promise the efficient verification of quantum computational advantage. Our methods can be applied to a range of interactive quantum protocols.

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Published In

Nature Physics

DOI

EISSN

1745-2481

ISSN

1745-2473

Publication Date

November 1, 2023

Volume

19

Issue

11

Start / End Page

1725 / 1731

Related Subject Headings

  • Fluids & Plasmas
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 02 Physical Sciences
  • 01 Mathematical Sciences
 

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Zhu, D., Kahanamoku-Meyer, G. D., Lewis, L., Noel, C., Katz, O., Harraz, B., … Monroe, C. (2023). Interactive cryptographic proofs of quantumness using mid-circuit measurements. Nature Physics, 19(11), 1725–1731. https://doi.org/10.1038/s41567-023-02162-9
Zhu, D., G. D. Kahanamoku-Meyer, L. Lewis, C. Noel, O. Katz, B. Harraz, Q. Wang, et al. “Interactive cryptographic proofs of quantumness using mid-circuit measurements.” Nature Physics 19, no. 11 (November 1, 2023): 1725–31. https://doi.org/10.1038/s41567-023-02162-9.
Zhu D, Kahanamoku-Meyer GD, Lewis L, Noel C, Katz O, Harraz B, et al. Interactive cryptographic proofs of quantumness using mid-circuit measurements. Nature Physics. 2023 Nov 1;19(11):1725–31.
Zhu, D., et al. “Interactive cryptographic proofs of quantumness using mid-circuit measurements.” Nature Physics, vol. 19, no. 11, Nov. 2023, pp. 1725–31. Scopus, doi:10.1038/s41567-023-02162-9.
Zhu D, Kahanamoku-Meyer GD, Lewis L, Noel C, Katz O, Harraz B, Wang Q, Risinger A, Feng L, Biswas D, Egan L, Gheorghiu A, Nam Y, Vidick T, Vazirani U, Yao NY, Cetina M, Monroe C. Interactive cryptographic proofs of quantumness using mid-circuit measurements. Nature Physics. 2023 Nov 1;19(11):1725–1731.

Published In

Nature Physics

DOI

EISSN

1745-2481

ISSN

1745-2473

Publication Date

November 1, 2023

Volume

19

Issue

11

Start / End Page

1725 / 1731

Related Subject Headings

  • Fluids & Plasmas
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 02 Physical Sciences
  • 01 Mathematical Sciences