Opportunistic Scheduling for Single-downlink Satellite-based Quantum Key Distribution
Md Zakir Hossain, Nitish K. Panigrahy, Walter O. Krawec, Don Towsley, and Bing Wang

TL;DR
This paper introduces an opportunistic satellite scheduling method for single-downlink quantum key distribution, improving key rates and fairness while considering dynamic channels, seasonal effects, and cloud coverage.
Contribution
It proposes a novel scheduling approach for single-downlink satellite QKD that enhances system performance and fairness, addressing a previously understudied architecture.
Findings
The approach achieves better tradeoffs in total and minimum key rates.
Seasonal effects and cloud coverage significantly impact system performance.
Different tradeoffs are observed between global and regional QKD systems.
Abstract
Satellite-based quantum key distribution (QKD), leveraging low photon loss in free-space quantum communication, is widely regarded as one of the most promising directions to achieve global-scale QKD. With a constellation of satellites and a set of ground stations in a satellite-based QKD system, how to schedule satellites to achieve efficient QKD is an important problem. This problem has been studied in the dual-downlink architecture, where each satellite distributes pairs of entanglements to two ground stations simultaneously. However, it has not been studied in the single downlink architecture, where satellites create keys with each individual ground station, and then serve as trusted nodes to create keys between pairs of ground stations. While the single downlink architecture provides weaker security in that the satellites need to be trusted, it has many advantages, including the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Optical Wireless Communication Technologies
