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    Nonunitary enhanced transfer efficiency in quantum walk search on complex networks

    Ugo Nzongani1,2,*, Andrea Simonetto2,3,†, and Giuseppe Di Molfetta1,‡

    • *Contact author: ugo.nzongani@lis-lab.fr
    • †Contact author: andrea.simonetto@ensta.fr
    • ‡Contact author: giuseppe.dimolfetta@lis-lab.fr

    Phys. Rev. A 112, 052451 – Published 24 November, 2025

    DOI: https://doi.org/10.1103/jhbs-27mm

    Abstract

    The task of finding an element in an unstructured database is known as spatial search and can be expressed as a quantum-walk evolution on a graph. In this article, we modify the usual search problem by adding an extra trapping vertex to the graph, which is only connected to the target element. We study the transfer efficiency of the walker to a trapping site, using the search problem as a case study. Thus, our model offers no computational advantage for the search problem, but focuses on information transport in an open environment with a search Hamiltonian. The walker evolution is a mix between classical and quantum-walk search dynamics. The balance between unitary and nonunitary dynamics is tuned with a parameter, and we numerically show that, depending on the graph topology and the connectivity of the target element, this hybrid approach can outperform a purely classical or quantum evolution for reaching the trapping site. We show that this behavior is only observed in the presence of an extra trapping site, and that, depending on the topology and a tunable parameter controlling the strength of the oracle, a hybrid regime composed of 90% coherent dynamics can lead to either the highest or worst transfer efficiency to the trapping site. We also relate the performance of a hybrid regime to the entropy's decay rate. As the introduction of nonunitary operations may be considered noise, we interpret this phenomenon as a noise-assisted quantum evolution.

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