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Resource Management for Distributed Quantum Computing in Quantum Data Centers

  • Zebo Yang*
  • , Chenliang Tian
  • , Raj Jain
  • , Ramana Kompella
  • , Reza Nejabati
  • , Mounir Hamdi
  • , Aiman Erbad
  • , Hassan Shapourian
  • , Lei Yang
  • *Corresponding author for this work
  • Department of Computer Engineering, Florida Atlantic University
  • Washington University St. Louis
  • Cisco Systems
  • Qatar University
  • Zyphra
  • George Mason University

Research output: Contribution to journalArticlepeer-review

Abstract

In recent years, advances in quantum computing have been driven by substantial improvements in both the number and quality of qubits. As the field progresses, there is growing interest in interconnecting quantum systems to enable scalable computation through Distributed Quantum Computing (DQC) architectures. Consider a distributed quantum application executed across multiple Quantum Processing Units (QPUs) within a quantum data center, where remote gates require establishing entanglement between different QPUs. The creation of such end-to-end entanglement can lead to network congestion and resource contention. To address these challenges, we propose a resource management framework that maximizes fidelity-guaranteed throughput while satisfying dependency constraints. We first formulate the problem as a Mixed-Integer Linear Programming (MILP) model to provide a performance benchmark. Building on this, we develop efficient approximate scheduling algorithms that achieve performance comparable to the optimization solver. Although a trade-off exists between execution time and network throughput, simulation results demonstrate that one of the proposed strategies, Weighted Group Least Resource First (WGLRF), closely approximates the solver’s performance across most scenarios. These findings suggest that the lightweight strategy is sufficient for current DQC settings, offering a practical solution for managing remote-gate resource contention in distributed quantum circuits and improving overall system performance.

Original languageEnglish
Pages (from-to)101381-101397
Number of pages17
JournalIEEE Access
Volume14
DOIs
Publication statusPublished - 2026

Keywords

  • Circuits
  • Data centers
  • Distributed quantum computing
  • Joining processes
  • Modeling
  • Optimization
  • Quantum computing
  • Quantum data centers
  • Quantum networks
  • Resource management
  • Schedules
  • Scheduling
  • Timing
  • Topology

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