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Scaling advantage over path-integral Monte Carlo in quantum simulation of geometrically frustrated magnets.
King, Andrew D; Raymond, Jack; Lanting, Trevor; Isakov, Sergei V; Mohseni, Masoud; Poulin-Lamarre, Gabriel; Ejtemaee, Sara; Bernoudy, William; Ozfidan, Isil; Smirnov, Anatoly Yu; Reis, Mauricio; Altomare, Fabio; Babcock, Michael; Baron, Catia; Berkley, Andrew J; Boothby, Kelly; Bunyk, Paul I; Christiani, Holly; Enderud, Colin; Evert, Bram; Harris, Richard; Hoskinson, Emile; Huang, Shuiyuan; Jooya, Kais; Khodabandelou, Ali; Ladizinsky, Nicolas; Li, Ryan; Lott, P Aaron; MacDonald, Allison J R; Marsden, Danica; Marsden, Gaelen; Medina, Teresa; Molavi, Reza; Neufeld, Richard; Norouzpour, Mana; Oh, Travis; Pavlov, Igor; Perminov, Ilya; Prescott, Thomas; Rich, Chris; Sato, Yuki; Sheldan, Benjamin; Sterling, George; Swenson, Loren J; Tsai, Nicholas; Volkmann, Mark H; Whittaker, Jed D; Wilkinson, Warren; Yao, Jason; Neven, Hartmut.
Afiliação
  • King AD; D-Wave Systems, Burnaby, BC, Canada. aking@dwavesys.com.
  • Raymond J; D-Wave Systems, Burnaby, BC, Canada.
  • Lanting T; D-Wave Systems, Burnaby, BC, Canada.
  • Isakov SV; Google, Zurich, Switzerland.
  • Mohseni M; Google, Venice, CA, USA.
  • Poulin-Lamarre G; D-Wave Systems, Burnaby, BC, Canada.
  • Ejtemaee S; D-Wave Systems, Burnaby, BC, Canada.
  • Bernoudy W; D-Wave Systems, Burnaby, BC, Canada.
  • Ozfidan I; D-Wave Systems, Burnaby, BC, Canada.
  • Smirnov AY; D-Wave Systems, Burnaby, BC, Canada.
  • Reis M; D-Wave Systems, Burnaby, BC, Canada.
  • Altomare F; D-Wave Systems, Burnaby, BC, Canada.
  • Babcock M; D-Wave Systems, Burnaby, BC, Canada.
  • Baron C; D-Wave Systems, Burnaby, BC, Canada.
  • Berkley AJ; D-Wave Systems, Burnaby, BC, Canada.
  • Boothby K; D-Wave Systems, Burnaby, BC, Canada.
  • Bunyk PI; D-Wave Systems, Burnaby, BC, Canada.
  • Christiani H; D-Wave Systems, Burnaby, BC, Canada.
  • Enderud C; D-Wave Systems, Burnaby, BC, Canada.
  • Evert B; D-Wave Systems, Burnaby, BC, Canada.
  • Harris R; D-Wave Systems, Burnaby, BC, Canada.
  • Hoskinson E; D-Wave Systems, Burnaby, BC, Canada.
  • Huang S; D-Wave Systems, Burnaby, BC, Canada.
  • Jooya K; D-Wave Systems, Burnaby, BC, Canada.
  • Khodabandelou A; D-Wave Systems, Burnaby, BC, Canada.
  • Ladizinsky N; D-Wave Systems, Burnaby, BC, Canada.
  • Li R; D-Wave Systems, Burnaby, BC, Canada.
  • Lott PA; D-Wave Systems, Burnaby, BC, Canada.
  • MacDonald AJR; D-Wave Systems, Burnaby, BC, Canada.
  • Marsden D; D-Wave Systems, Burnaby, BC, Canada.
  • Marsden G; D-Wave Systems, Burnaby, BC, Canada.
  • Medina T; D-Wave Systems, Burnaby, BC, Canada.
  • Molavi R; D-Wave Systems, Burnaby, BC, Canada.
  • Neufeld R; D-Wave Systems, Burnaby, BC, Canada.
  • Norouzpour M; D-Wave Systems, Burnaby, BC, Canada.
  • Oh T; D-Wave Systems, Burnaby, BC, Canada.
  • Pavlov I; D-Wave Systems, Burnaby, BC, Canada.
  • Perminov I; D-Wave Systems, Burnaby, BC, Canada.
  • Prescott T; D-Wave Systems, Burnaby, BC, Canada.
  • Rich C; D-Wave Systems, Burnaby, BC, Canada.
  • Sato Y; D-Wave Systems, Burnaby, BC, Canada.
  • Sheldan B; D-Wave Systems, Burnaby, BC, Canada.
  • Sterling G; D-Wave Systems, Burnaby, BC, Canada.
  • Swenson LJ; D-Wave Systems, Burnaby, BC, Canada.
  • Tsai N; D-Wave Systems, Burnaby, BC, Canada.
  • Volkmann MH; D-Wave Systems, Burnaby, BC, Canada.
  • Whittaker JD; D-Wave Systems, Burnaby, BC, Canada.
  • Wilkinson W; D-Wave Systems, Burnaby, BC, Canada.
  • Yao J; D-Wave Systems, Burnaby, BC, Canada.
  • Neven H; Google, Venice, CA, USA.
Nat Commun ; 12(1): 1113, 2021 Feb 18.
Article em En | MEDLINE | ID: mdl-33602927
ABSTRACT
The promise of quantum computing lies in harnessing programmable quantum devices for practical applications such as efficient simulation of quantum materials and condensed matter systems. One important task is the simulation of geometrically frustrated magnets in which topological phenomena can emerge from competition between quantum and thermal fluctuations. Here we report on experimental observations of equilibration in such simulations, measured on up to 1440 qubits with microsecond resolution. By initializing the system in a state with topological obstruction, we observe quantum annealing (QA) equilibration timescales in excess of one microsecond. Measurements indicate a dynamical advantage in the quantum simulation compared with spatially local update dynamics of path-integral Monte Carlo (PIMC). The advantage increases with both system size and inverse temperature, exceeding a million-fold speedup over an efficient CPU implementation. PIMC is a leading classical method for such simulations, and a scaling advantage of this type was recently shown to be impossible in certain restricted settings. This is therefore an important piece of experimental evidence that PIMC does not simulate QA dynamics even for sign-problem-free Hamiltonians, and that near-term quantum devices can be used to accelerate computational tasks of practical relevance.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Commun Assunto da revista: BIOLOGIA / CIENCIA Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Canadá

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Commun Assunto da revista: BIOLOGIA / CIENCIA Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Canadá