The Proportional Fair Scheduler in Wavelength-Multiplexed Quantum Networks
Sanidhay Bhambay, Siddarth Koduru Joshi, Thirupathaiah Vasantam, Neil Walton

TL;DR
This paper proposes a proportional fairness scheduling algorithm for quantum key distribution networks that optimally balances fairness and throughput in entangled photon distribution, supported by theoretical analysis and simulations.
Contribution
It introduces a novel proportional fairness pumping strategy for quantum networks, extending classical LTE/5G schedulers to quantum entanglement distribution.
Findings
PF-PS balances fairness and throughput effectively.
The algorithm is theoretically optimal for entangled state distribution.
Simulations confirm improved resource allocation in quantum networks.
Abstract
We address the problem of optimal pumping strategies in quantum networks. These networks enable secure communication by distributing entangled photon pairs to user (or node) pairs. Quantum Key Distribution (QKD) protocols, like BBM92, generate secret keys from entangled photons. While secure communication and error correction are essential for any quantum communication channel, resource contention, optimization, and fairness issues are critical for networks. In this article, we analyze the performance of quantum networks, proposing simple distributed algorithms for QKD networks generating secret keys. There are significant advantages of pumping entangled photons in QKD networks, but challenges arise in practical implementations. The underlying channels are inherently time-varying, and thus data rates fluctuate between nodes. Moreover, multiple edges (node pairs) can be pumped…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
