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Quantum Annealing-Based Algorithm for Efficient Coalition Formation Among LEO Satellites

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arxiv 2408.06007 v1 pith:W2MW3FGJ submitted 2024-08-12 quant-ph cs.CCcs.DMcs.MA

classification quant-phcs.CCcs.DMcs.MA
keywords satellitesquantumalgorithmnumberannealerapproachclassicalclustering
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The increasing number of Low Earth Orbit (LEO) satellites, driven by lower manufacturing and launch costs, is proving invaluable for Earth observation missions and low-latency internet connectivity. However, as the number of satellites increases, the number of communication links to maintain also rises, making the management of this vast network increasingly challenging and highlighting the need for clustering satellites into efficient groups as a promising solution. This paper formulates the clustering of LEO satellites as a coalition structure generation (CSG) problem and leverages quantum annealing to solve it. We represent the satellite network as a graph and obtain the optimal partitions using a hybrid quantum-classical algorithm called GCS-Q. The algorithm follows a top-down approach by iteratively splitting the graph at each step using a quadratic unconstrained binary optimization (QUBO) formulation. To evaluate our approach, we utilize real-world three-line element set (TLE/3LE) data for Starlink satellites from Celestrak. Our experiments, conducted using the D-Wave Advantage annealer and the state-of-the-art solver Gurobi, demonstrate that the quantum annealer significantly outperforms classical methods in terms of runtime while maintaining the solution quality. The performance achieved with quantum annealers surpasses the capabilities of classical computers, highlighting the transformative potential of quantum computing in optimizing the management of large-scale satellite networks.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Strong Structural Bounds for MaxSAT: The Fine Details of Using Neuromorphic and Quantum Hardware Accelerators

    cs.LO 2024-12 conditional novelty 7.0 of 10

    MaxSAT, Max2SAT, and QUBO are mutually reducible in linear time with treewidth preserved up to small constants, giving ETH- and SETH-tight bounds and a 2^treewidth algorithm for QUBO.

  2. Quantum-enhanced unsupervised image segmentation for medical images analysis

    eess.IV 2024-11 reject novelty 4.0 of 10

    An unsupervised QUBO-based segmentation pipeline using quantum annealing and variational circuits performs comparably to supervised UNet on small mammography crops, with claimed speedups over Gurobi.

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