On Utility-Optimal Entanglement Routing in Quantum Networks

Conference Paper (2026)
Author(s)

Sounak Kar (TU Delft - QuTech Advanced Research Centre, TU Delft - QID/Wehner Group)

Arpan Mukhopadhyay (University of Warwick)

Research Institute
QuTech Advanced Research Centre
DOI related publication
https://doi.org/10.1109/QCNC69040.2026.00082 Final published version
More Info
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Publication Year
2026
Language
English
Research Institute
QuTech Advanced Research Centre
Pages (from-to)
457-464
Publisher
IEEE
ISBN (electronic)
9798331561109
Event
3rd International Conference on Quantum Communications, Networking, and Computing, QCNC 2026 (2026-04-06 - 2026-04-08), Kobe, Japan
Reuse Rights

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Abstract

Quantum networks are envisioned to enable reliable distribution and manipulation of quantum information across distances, forming the foundation of a future quantum internet. The fair and efficient allocation of communication resources in such networks has been addressed through the quantum network utility maximization (QNUM) framework, which optimizes network utility under the assumption of predetermined routes for competing user demands. In this work, we relax this assumption and aim to identify optimal routes that correspond to the maximum achievable network utility. Specifically, we formulate the single-path utility-based entanglement routing problem as a Mixed-Integer Convex Program (MICP). The formulation is exact when negativity is chosen as the entanglement measure for utility quantification or the network supports sufficiently high entanglement generation rates across demands. For other entanglement measures considered, the formulation approximates the problem with over 99.99 % accuracy on evaluated real-world examples. To improve computational tractability, we propose a randomized rounding-based heuristic and an upper bound via the relaxation of the MICP. Furthermore, based on min-congestion routing, we introduce an alternative randomized heuristic and upper bound. This heuristic is computationally faster, while both the heuristic and the upper bound often outperform their counterparts on considered real-world networks. Our work provides the framework for extending classical flow-based and quality of service-aware routing concepts to quantum networks.

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