English

Flexible Qubit Allocation of Network Resource States

Quantum Physics 2025-10-20 v1 Networking and Internet Architecture

Abstract

The Quantum Internet is still in its infancy, yet identifying scalable and resilient quantum network resource states is an essential task for realizing it. We explore the use of graph states with flexible, non-trivial qubit-to-node assignments. This flexibility enables adaptable engineering of the entanglement topology of an arbitrary quantum network. In particular, we focus on cluster states with arbitrary allocation as network resource states and as a promising candidate for a network core-level entangled resource, due to its intrinsic flexible connectivity properties and resilience to particle losses. We introduce a modeling framework for overlaying entanglement topologies on physical networks and demonstrate how optimized and even random qubit assignment, creates shortcuts and improves robustness and memory savings, while substantially reducing the average hop distance between remote network nodes, when compared to conventional approaches.

Keywords

Cite

@article{arxiv.2510.15776,
  title  = {Flexible Qubit Allocation of Network Resource States},
  author = {Francesco Mazza and Jorge Miguel-Ramiro and Jessica Illiano and Alexander Pirker and Marcello Caleffi and Angela Sara Cacciapuoti and Wolfgang Dür},
  journal= {arXiv preprint arXiv:2510.15776},
  year   = {2025}
}

Comments

This work has been funded by the European Union under the ERC grant QNattyNet, n. 101169850

R2 v1 2026-07-01T06:43:34.217Z