4
collaborators
2021–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Finite key effects in satellite quantum key distribution | QCRYPT 2021 | regular | Jasminder S. Sidhu, Thomas Brougham, Roberto G. Pousa, Daniel K.L. Oi |
Global quantum communications will enable long-distance secure data transfer, networked distributed quantum information processing, and other entanglement-enabled technologies. Satellite quantum communication overcomes optical fibre range limitations, with the first realisations of satellite quantum key distribution (SatQKD) being rapidly developed. However, limited transmission times between satellite and ground station severely constrains the amount of secret key due to finite-block size effects. Here, we analyse these effects and the implications for system design and operation, utilising published results from the Micius satellite to construct an empirically-derived channel and system model for a trusted-node downlink employing efficient BB84 weak coherent pulse decoy states with optimised parameters. We quantify practical SatQKD performance limits and examine the effects of link efficiency, background light, source quality, and overpass geometries to estimate long-term key generation capacity. Our results provide a guide to the design and analysis of future SatQKD missions, and establishes performance benchmarks for both sources and detectors. |
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3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Finite key performance of satellite quantum key distribution under practical constraints | QCRYPT 2024 | Jasminder S. Sidhu, Thomas Brougham, Roberto G. Pousa, Daniel K.L. Oi |
Global-scale quantum communication networks will require efficient long-distance distribution of quantum signals. While optical fibre communications are range-limited due to exponential losses in the absence of quantum memories and repeaters, satellites enable intercontinental quantum communications. However, the design of satellite quantum key distribution (SatQKD) systems has unique challenges over terrestrial networks. The typical approach to modelling SatQKD has been to estimate performances with a fully optimised protocol parameter space and with few payload and platform resource limitations. Here, we analyse how practical constraints affect the performance of SatQKD for the Bennett-Brassard 1984 (BB84) weak coherent pulse decoy state protocol with finite key size effects. We consider engineering limitations and trade-offs in mission design including limited in-orbit tunability, quantum random number generation rates and storage, and source intensity uncertainty. We quantify practical SatQKD performance limits to determine the long-term key generation capacity and provide performance benchmarks to support the design of upcoming missions |
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| Finite key performance of satellite quantum key distribution under practical constraints | TQC 2024 | Jasminder S. Sidhu, Thomas Brougham, Roberto G. Pousa, Daniel K.L. Oi |
| Finite key performance of satellite quantum key distribution under practical constraints | QCRYPT 2023 | Jasminder S. Sidhu, Thomas Brougham, Roberto G. Pousa, Daniel K.L. Oi |
Global-scale quantum communication networks will require efficient long-distance distribution of quantum signals. Optical fibre communication channels have range constraints due to exponential losses in the absence of quantum memories and repeaters. Satellites enable intercontinental quantum communication by exploiting more benign inverse square free-space attenuation and long sight lines. However, the design and engineering of satellite quantum key distribution (QKD) systems are difficult and characteristic differences to terrestrial QKD networks and operations pose additional challenges. The typical approach to modelling satellite QKD (SatQKD) has been to estimate performances with a fully optimised protocol parameter space and with few payload and platform resource limitations. Here, we analyse how practical constraints affect the performance of SatQKD for the Bennett-Brassard 1984 (BB84) weak coherent pulse decoy state protocol with finite-key size effects. We consider engineering limitations and trade-offs in mission design including limited in-orbit tunability, quantum random number generation rates and storage, and source intensity uncertainty. We quantify practical SatQKD performance limits to determine the long-term key generation capacity and provide important performance benchmarks to support the design of upcoming missions. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Daniel K.L. Oi | 4 |
| Jasminder S. Sidhu | 4 |
| Roberto G. Pousa | 4 |
| Thomas Brougham | 4 |