Quantum simulation using fidelity-profile optimization
Data(s) |
2014
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Resumo |
Experimental quantum simulation of a Hamiltonian H requires unitary operator decomposition (UOD) of its evolution unitary U = exp(-iHt) in terms of native unitary operators of the experimental system. Here, using a genetic algorithm, we numerically evaluate the most generic UOD (valid over a continuous range of Hamiltonian parameters) of the unitary operator U, termed fidelity-profile optimization. The optimization is obtained by systematically evaluating the functional dependence of experimental unitary operators (such as single-qubit rotations and time-evolution unitaries of the system interactions) to the Hamiltonian (H) parameters. Using this technique, we have solved the experimental unitary decomposition of a controlled-phase gate (for any phase value), the evolution unitary of the Heisenberg XY interaction, and simulation of the Dzyaloshinskii-Moriya (DM) interaction in the presence of the Heisenberg XY interaction. Using these decompositions, we studied the entanglement dynamics of a Bell state in the DM interaction and experimentally verified the entanglement preservation procedure of Hou et al. Ann. Phys. (N.Y.) 327, 292 (2012)] in a nuclear magnetic resonance quantum information processor. |
Formato |
application/pdf |
Identificador |
http://eprints.iisc.ernet.in/49371/1/phy_rev%20A_89-5_2014.pdf Manu, VS and Kumar, Anil (2014) Quantum simulation using fidelity-profile optimization. In: PHYSICAL REVIEW A, 89 (5). |
Publicador |
AMER PHYSICAL SOC |
Relação |
http://dx.doi.org/10.1103/PhysRevA.89.052331 http://eprints.iisc.ernet.in/49371/ |
Palavras-Chave | #NMR Research Centre (Formerly SIF) #Physics |
Tipo |
Journal Article PeerReviewed |