Entanglement Distribution Delay Optimization in Quantum Networks with Distillation
Mahdi Chehimi, Kenneth Goodenough, Walid Saad, Don Towsley, Tony X., Zhou

TL;DR
This paper presents a resource allocation framework for quantum networks that optimizes entanglement distribution delay and fidelity through distillation, considering realistic noise and hardware control, outperforming existing methods.
Contribution
It introduces a joint optimization framework for entanglement delay and distillation in quantum networks, incorporating realistic noise models and hardware control strategies.
Findings
Achieves 30-50% reduction in entanglement distribution delay.
Satisfies all user rate and fidelity requirements.
Outperforms existing frameworks in delay and fidelity metrics.
Abstract
Quantum networks (QNs) distribute entangled states to enable distributed quantum computing and sensing applications. However, in such QNs, quantum switches (QSs) have limited resources that are highly sensitive to noise and losses and must be carefully allocated to minimize entanglement distribution delay. In this paper, a QS resource allocation framework is proposed, which jointly optimizes the average entanglement distribution delay and entanglement distillation operations, to enhance the end-to-end (e2e) fidelity and satisfy minimum rate and fidelity requirements. The proposed framework considers realistic QN noise and includes the derivation of the analytical expressions for the average quantum memory decoherence noise parameter, and the resulting e2e fidelity after distillation. Finally, practical QN deployment aspects are considered, where QSs can control 1) nitrogen-vacancy (NV)…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Molecular Communication and Nanonetworks
