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Dissipative environment may improve the quantum annealing performances of the ferromagnetic p -spin model

Academic Article
Publication Date:
2018
abstract:
We investigate the quantum annealing of the ferromagnetic p-spin model in a dissipative environment (p=5 and p=7). This model, in the large-p limit, codifies Grover's algorithm for searching in an unsorted database [L. K. Grover, Proceedings of the 28th Annual ACM Symposium on Theory of Computing (ACM, New York, 1996), pp. 212-219]. The dissipative environment is described by a phonon bath in thermal equilibrium at finite temperature. The dynamics is studied in the framework of a Lindblad master equation for the reduced density matrix describing only the spins. Exploiting the symmetries of our model Hamiltonian, we can describe many spins and extrapolate expected trends for large N and p. While at weak system-bath coupling the dissipative environment has detrimental effects on the annealing results, we show that in the intermediate-coupling regime, the phonon bath seems to speed up the annealing at low temperatures. This improvement in the performance is likely not due to thermal fluctuation but rather arises from a correlated spin-bath state and persists even at zero temperature. This result may pave the way to a new scenario in which, by appropriately engineering the system-bath coupling, one may optimize quantum annealing performances below either the purely quantum or the classical limit.
Iris type:
01.01 Articolo in rivista
Keywords:
Finite temperatures; Intermediate co; Lindblad master equation; Model Hamiltonians; Reduced-density matrix; System-bath coupling; Thermal equilibriums; Thermal fluctuations
List of contributors:
Cataudella, Vittorio; DE FILIPPIS, Giulio; Passarelli, Gianluca; Lucignano, Procolo
Handle:
https://iris.cnr.it/handle/20.500.14243/343005
Published in:
PHYSICAL REVIEW. A
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