Scaling advantage 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,Hilton Jeremy P.,Ladizinsky Eric, Johnson Mark W.,Amin Mohammad H.

arxiv(2019)

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摘要
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 relaxation 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) relaxation timescales in excess of one microsecond. Measurements indicate a dynamical advantage in the quantum simulation over the classical approach of path-integral Monte Carlo (PIMC) fixed-Hamiltonian relaxation with multiqubit cluster updates. The advantage increases with both system size and inverse temperature, exceeding a million-fold speedup over a CPU. This is an important piece of experimental evidence that in general, PIMC does not mimic QA dynamics for stoquastic Hamiltonians. The observed scaling advantage, for simulation of frustrated magnetism in quantum condensed matter, demonstrates that near-term quantum devices can be used to accelerate computational tasks of practical relevance.
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