Optimal control theory for a unitary operation under dissipative evolution

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Abstract

We show that optimizing a quantum gate for an open quantum system requires the time evolution of only three states irrespective of the dimension of Hilbert space. This represents a significant reduction in computational resources compared to the complete basis of Liouville space that is commonly believed necessary for this task. The reduction is based on two observations: the target is not a general dynamical map but a unitary operation; and the time evolution of two properly chosen states is sufficient to distinguish any two unitaries. We illustrate gate optimization employing a reduced set of states for a controlled phasegate with trapped atoms as qubit carriers and a √iSWAP gate with superconducting qubits. © 2014 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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Goerz, M. H., Reich, D. M., & Koch, C. P. (2014). Optimal control theory for a unitary operation under dissipative evolution. New Journal of Physics, 16. https://doi.org/10.1088/1367-2630/16/5/055012

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