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Network-Aware Scheduling for Remote Gate Execution in Quantum Data Centers

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arxiv 2504.20176 v1 pith:G3WURHVO submitted 2025-04-28 quant-ph cs.DCcs.NIcs.PF

classification quant-phcs.DCcs.NIcs.PF
keywords quantumentanglementschedulingnetworkcenterscoherencecommunicationcomputing
verification ladder T0 review T1 audit T2 compute T3 formal
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Modular quantum computing provides a scalable approach to overcome the limitations of monolithic quantum architectures by interconnecting multiple Quantum Processing Units (QPUs) through a quantum network. In this work, we explore and evaluate two entanglement scheduling strategies-static and dynamic-and analyze their performance in terms of circuit execution delay and network resource utilization under realistic assumptions and practical limitations such as probabilistic entanglement generation, limited communication qubits, photonic switch reconfiguration delays, and topology-induced contention. We show that dynamic scheduling consistently outperforms static scheduling in scenarios with high entanglement parallelism, especially when network resources are scarce. Furthermore, we investigate the impact of communication qubit coherence time, modeled as a cutoff for holding EPR pairs, and demonstrate that aggressive lookahead strategies can degrade performance when coherence times are short, due to premature entanglement discarding and wasted resources. We also identify congestion-free BSM provisioning by profiling peak BSM usage per switch. Our results provide actionable insights for scheduler design and resource provisioning in realistic quantum data centers, bringing system-level considerations closer to practical quantum computing deployment.

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Cited by 1 Pith paper

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

  1. Architecture-Aware Reinforcement Learning for Communication-Efficient Distributed Quantum Circuit Compilation

    quant-ph 2026-08 conditional novelty 5.0 of 10

    A reinforcement-learning agent trained to schedule inter-QPU communication in distributed quantum circuits matches heuristic compilers on structured benchmarks, with small gains from lookahead rewards on random circuits.

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