Aug 2026· Proceedings of the 3rd ACM SIGCOMM Workshop on Quantum Networks and Distributed Quantum Computing· 0 citations· 26 references
TL;DR
It is demonstrated that traditional communication metrics are insufficient predictors of execution quality due to the strong interaction among path fidelity, hardware characteristics, and circuit structure, and a topology-aware fidelity proxy (TAFP) evaluation approach that approximates distributed execution fidelity is proposed.
Abstract
Distributed Quantum Computing (DQC) enables scalable quantum execution by interconnecting multiple quantum processing units (QPUs) through quantum networks. In DQC, end-to-end performance is jointly affected by circuit partitioning, entanglement routing, scheduling, and heterogeneous hardware characteristics. However, existing studies often optimize these components independently, providing limited understanding of their cross-layer interactions. In this paper, we present a cross-layer joint-optimization study for DQC using the previously developed SimDisQ-Net simulator. Through simulations, we find that circuit orchestration is one of the dominant factors affecting distributed execution quality, while network-layer mechanisms provide secondary but still meaningful improvements. We further demonstrate that traditional communication metrics, such as hop count or remote-gate count alone, are insufficient predictors of execution quality due to the strong interaction among path fidelity, hardware characteristics, and circuit structure. Motivated by these findings, we propose a topology-aware fidelity proxy (TAFP) evaluation approach that approximates distributed execution fidelity, enabling efficient evaluation of candidate circuit optimizations without time-consuming simulation. Our results highlight the importance of integrated circuit-network orchestration for scalable DQC.
It is shown that the best-performing compilation strategy varies across the tested circuits and network configurations, and that both network topology and intra-QPU connectivity substantially affect the entanglement cost of execution.
Luke Andreesen, Shobhit Gupta, Sean E. Sullivan et al.· 0 citations
The development of the NetQStack Simulator is described, a network-integrated simulation framework designed to evaluate distributed quantum computing (DQC) within data center environments and early results demonstrate that a network-integrated approach provides useful insights when assessing the performance and scalabi...
Charu Jain, Ezra Kissel, Se-young Yu et al.· Proceedings of the 3rd ACM S...· 0 citations
This study systematically assesses diverse partitioning algorithms across standardized workloads and quantum network topologies to quantify the performance impact of network constraints and demonstrates that comprehensive circuit-level metrics are essential for guiding the future design of DQC compilers.
Javier Vela-Tambo, Davud Azizov, Tian Guo· 0 citations
These quantitative findings demonstrate that tightly coupled hybrid co-processing, physically adjacent to the control electronics, is critical for extending the computational bound of Noisy Intermediate-Scale Quantum (NISQ) devices.
Akshay Joseph, R. Delhibabu· Frontiers of Computer Scienc...· 0 citations
The realization of practical quantum advantage requires executing large-scale circuits that far exceed the qubit capacity of any single quantum processor. To address this, two primary scaling strategies have emerged: circuit cutting, which utilizes classical resources to decompose circuits into smaller fragments, and m...
Ze-Fan Du, Wen-Rui Zhang, Jake Gesseck et al.· IEEE International Conferenc...· 0 citations
Distributing quantum states and entanglement between multiple pairs of nodes is a fundamental task in quantum communication and distributed quantum computing on large-scale quantum networks. In particular, the simultaneous distribution of quantum states or entanglement among multiple source-destination pairs (quant...
Shu-Ming Hu, Jun-Hao Wei, Nuo-Ya Yang et al.· Chinese Physics B· 0 citations
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