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Quantum divide and compute: Hardware demonstrations and noisy simulations

  • Thomas Ayral
  • , Francois Marie Le Regent
  • , Zain Saleem
  • , Yuri Alexeev
  • , Martin Suchara
  • Atos Quantum Lab
  • Argonne National Laboratory

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

30 Citations (Scopus)

Abstract

Noisy, intermediate-scale quantum computers comewith intrinsic limitations in terms of the number of qubits (circuit 'width') and decoherence time (circuit 'depth') they can have. Here, for the first time, we demonstrate a recently introduced method that breaks a circuit into smaller subcircuits or fragments, and thus makes it possible to run circuits that are either too wide or too deep for a given quantum processor. We investigate the behavior of the method on one of IBM's 20-qubit superconducting quantum processors with various numbers of qubits and fragments. We build noise models that capture decoherence, readout error, and gate imperfections for this particular processor. We then carry out noisy simulations of the method in order to account for the observed experimental results. We find an agreement within 20% between the experimental and the simulated success probabilities, and we observe that recombining noisy fragments yields overall results that can outperform the results without fragmentation.

Original languageEnglish
Title of host publicationProceedings - 2020 IEEE Computer Society Annual Symposium on VLSI, ISVLSI 2020
PublisherIEEE Computer Society
Pages138-140
Number of pages3
ISBN (Electronic)9781728157757
DOIs
Publication statusPublished - 1 Jul 2020
Externally publishedYes
Event19th IEEE Computer Society Annual Symposium on VLSI, ISVLSI 2020 - Limassol, Cyprus
Duration: 6 Jul 20208 Jul 2020

Publication series

NameProceedings of IEEE Computer Society Annual Symposium on VLSI, ISVLSI
Volume2020-July
ISSN (Print)2159-3469
ISSN (Electronic)2159-3477

Conference

Conference19th IEEE Computer Society Annual Symposium on VLSI, ISVLSI 2020
Country/TerritoryCyprus
CityLimassol
Period6/07/208/07/20

Keywords

  • Fragmentation
  • Noise models
  • Noisy simulation
  • Quantum algorithms
  • Quantum computing

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