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Spatial and temporal circuit cutting with hypergraphic partitioning

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arxiv 2504.09334 v1 pith:36M4EVDJ submitted 2025-04-12 quant-ph

Spatial and temporal circuit cutting with hypergraphic partitioning

classification quant-ph
keywords quantumcircuitpartitioningcuttingspatialtemporalapproachcircuits
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum computing promises to revolutionize problem-solving through quantum mechanics, but current NISQ devices face limitations in qubit count and error rates, hindering the execution of large-scale quantum circuits. To address these challenges and improve scalability, two main circuit cutting strategies have emerged: the gate-cut approach, which distributes circuit segments across multiple QPUs (spatial), and the qubit wire cut approach, which divides circuits for sequential execution (temporal). This paper presents a hypergraph-based circuit cutting methodology suitable for both spatial and temporal scenarios. By modeling quantum circuits as high-level hypergraphs, we apply partitioning heuristics such as Stoer-Wagner, Fiduccia-Mattheyses, and Kernighan-Lin to optimize the partitioning process. Our approach aims to reduce communication overhead in spatial cuts and minimize qubit initialization costs in temporal ones. To assess effectiveness, we propose a new evaluation metric called the coupling ratio, which quantifies the trade-offs between communication and initialization. Comparative analyses show that hypergraph partitioning improves the efficiency of distributed quantum architectures. Notably, the Fiduccia-Mattheyses heuristic offers superior performance and adaptability for real-time circuit cutting on multi-QPU systems. Overall, this work positions hypergraph partitioning as a foundational technique for scalable quantum computing in distributed environments.

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Cited by 1 Pith paper

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

  1. MOSAIQC: Mixed-topology-aware Optimization for Scalable Approximate noise-Informed Quantum circuit Cutting

    quant-ph 2026-07 conditional novelty 6.0

    A heuristic circuit-cutting framework combining METIS, tabu search, and quadratic assignment reports faster runtimes and fewer cuts than Qiskit's add-on on tested benchmarks.