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Large Scale Energy Efficient Sensor Network Routing Using a Quantum Processor Unit
Published on: September 8, 2023
Novel Support Routing Algorithm for Quantum Satellite Networks with Finite Quantum Memory
András Mihály1, László Bacsárdi1
1Department of Networked Systems and Services, Faculty of Electrical Engineering and Informatics, Budapest University of Technology and Economics, Műegyetem rkp. 3., H-1111 Budapest, Hungary.
This study introduces a new algorithm to improve quantum network efficiency by using leftover entanglement to overcome memory saturation. The
Area of Science:
- Quantum Information Science
- Quantum Networking
- Network Optimization
Background:
- Quantum memories are essential for quantum networks but suffer from low capacity, leading to memory saturation.
- Memory saturation is a major bottleneck hindering the scalability and efficiency of quantum networks, especially in dynamic satellite-based systems with limited link availability.
- Existing quantum memory capacities lag behind entanglement generation rates, impacting network performance.
Purpose of the Study:
- To present a novel support entanglement-swapping algorithm designed to alleviate memory saturation in quantum networks.
- To enhance network connectivity and efficiency by utilizing residual entanglement within quantum memories.
- To improve the scalability of quantum networks, particularly in dynamic satellite-based scenarios.
Main Methods:
- Developed a support entanglement-swapping algorithm combining line graphs and maximum-cardinality matching.
- The algorithm selects independent entanglement swap pairs, ensuring local and mutually independent network changes.
- Evaluated the algorithm's performance through simulations on static fiber-based and dynamic satellite quantum networks.
Main Results:
- The algorithm effectively alleviates quantum memory saturation by utilizing leftover entanglement.
- Simulations show increased mean and total shared entanglements between end nodes across various network configurations.
- Demonstrated enhanced long-range connectivity in both fiber and satellite quantum network simulations.
Conclusions:
- The proposed algorithm significantly improves quantum network efficiency and connectivity by addressing memory saturation.
- The 'SwapWithToUse' variant shows consistent and increasing performance gains with higher entanglement generation rates.
- The algorithm's local and independent nature facilitates easy integration with existing routing schemes without network-wide coordination.
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