New Journal of Physics · 2019 · 49 citations · 67 references
Quantum DynamicEngineeringControl ProtocolQuantum ComputingQuantum Optimization AlgorithmQuantum ProtocolsSystems EngineeringQuantum NetworkQuantum EntanglementQuantum ScienceOptimal ControlPhysicsQuantum FeedbackQuantum InformationNatural SciencesEnergetic CostQuantum DevicesQuantum SystemQuantum Networking
Abstract We quantitatively assess the energetic cost of several well-known control protocols that achieve a finite time adiabatic dynamics, namely counterdiabatic and local counterdiabatic driving, optimal control, and inverse engineering. By employing a cost measure based on the norm of the total driving Hamiltonian, we show that a hierarchy of costs emerges that is dependent on the protocol duration. As case studies we explore the Landau–Zener model, the quantum harmonic oscillator, and the Jaynes–Cummings model and establish that qualitatively similar results hold in all cases. For the analytically tractable Landau–Zener case, we further relate the effectiveness of a control protocol with the spectral features of the new driving Hamiltonians and show that in the case of counterdiabatic driving, it is possible to further minimize the cost by optimizing the ramp.
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Bruce W. Shore, P. L. Knight · Journal of Modern Optics · 1993 · 1.3K citations
Shortcuts to adiabaticity: Concepts, methods, and applications
D. Guéry-Odelin, A. Ruschhaupt, Anthony Kiely et al. · Reviews of Modern Physics · 2019 · 979 citations · Full text