Optimizing Compilation for Distributed Quantum Computing via Clustering and Annealing

August 21, 2025 Β· Declared Dead Β· πŸ› International Conference on Quantum Computing and Engineering

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Authors Ruilin Zhou, Jinglei Cheng, Yuhang Gan, Junyu Liu, Chen Qian arXiv ID 2508.15267 Category quant-ph: Quantum Computing Cross-listed cs.DC Citations 0 Venue International Conference on Quantum Computing and Engineering Last Checked 5 months ago
Abstract
Efficiently mapping quantum programs onto Distributed quantum computing (DQC) are challenging, particularly when considering the heterogeneous quantum processing units (QPUs) with different structures. In this paper, we present a comprehensive compilation framework that addresses these challenges with three key insights: exploiting structural patterns within quantum circuits, using clustering for initial qubit placement, and adjusting qubit mapping with annealing algorithms. Experimental results demonstrate the effectiveness of our methods and the capability to handle complex heterogeneous distributed quantum systems. Our evaluation shows that our method reduces the objective value at most 88.40\% compared to the baseline.
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