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Singularities of Quantum Control Landscapes

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arxiv 0907.2354 v1 pith:4FGMXV7I submitted 2009-07-14 quant-ph

classification quant-ph
keywords controlcontrolsquantumfindlandscapelandscapessimulationssingularities
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A quantum control landscape is defined as the objective to be optimized as a function of the control variables. Existing empirical and theoretical studies reveal that most realistic quantum control landscapes are generally devoid of false traps. However, the impact of singular controls has yet to be investigated, which can arise due to a singularity on the mapping from the control to the final quantum state. We provide an explicit characterization of such controls that are strongly Hamiltonian-dependent and investigate their associated landscape geometry. Although in principle the singularities may correspond to local traps, we did not find any in numerical simulations. Also, as they occupy a small portion of the entire set of possible critical controls, their influence is expected to be much smaller than controls corresponding to the commonly located regular extremals. This observation supports the established ease of optimal searches to find high-quality controls in simulations and experiments.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Traversing Quantum Control Robustness Landscapes: A New Paradigm for Quantum Gate Engineering

    quant-ph 2024-12 conditional novelty 6.0 of 10

    A level-set traversal algorithm called RIPV propagates noise robustness from one starting pulse to a continuous family of parametric quantum gates, preserving resilience while changing the gate angle.

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