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Graph-theoretical optimization of fusion-based graph state generation
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Graph states are versatile resources for various quantum information processing tasks, including measurement-based quantum computing and quantum repeaters. Although the type-II fusion gate enables all-optical generation of graph states by combining small graph states, its non-deterministic nature hinders the efficient generation of large graph states. In this work, we present a graph-theoretical strategy to effectively optimize fusion-based generation of any given graph state, along with a Python package OptGraphState. Our strategy comprises three stages: simplifying the target graph state, building a fusion network, and determining the order of fusions. Utilizing this proposed method, we evaluate the resource overheads of random graphs and various well-known graphs. Additionally, we investigate the success probability of graph state generation given a restricted number of available resource states. We expect that our strategy and software will assist researchers in developing and assessing experimentally viable schemes that use photonic graph states.
Forward citations
Cited by 2 Pith papers
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Adaptive Framework for Failure-Aware Protocols in Fusion-Based Graph-State Generation
Adaptive reuse of partially built graph states after failed fusion measurements, combined with graph-theoretic ordering, can cut expected fusion overhead by orders of magnitude relative to repeat-until-success.
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A Comprehensive Protocol Stack for Quantum Networks with a Global Entanglement Module
A quantum network protocol stack with a Global Entanglement Module, where simulations show a scoring-based adaptive strategy improves entanglement generation rates by about 20% over fixed-tree baselines.
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