Quantum Circuit Partitioning For Effective Utilization of Quantum Resources

Fuente: arXiv
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Main Authors: Howe, Connor, Radian, Cristina, Woodring, Justin, Sahgal, Vardaan, McDermott, Brian J.
Format: Preprint
Published: 2026
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author Howe, Connor
Radian, Cristina
Woodring, Justin
Sahgal, Vardaan
McDermott, Brian J.
author_facet Howe, Connor
Radian, Cristina
Woodring, Justin
Sahgal, Vardaan
McDermott, Brian J.
contents Near-term hardware is constrained by high error rates, small qubit counts, and relatively low output fidelity, making the execution of large, high performance quantum circuits difficult. Circuit partitioning (or circuit cutting) has emerged as a promising approach to circumvent these limitations by decomposing circuits into smaller subcircuits at two-qubit interaction points. However, it remains unclear which classes of circuits benefit the most from partitioning and under what hardware conditions it is most effective. In this work, we evaluate the suitability of quantum circuits for partitioning from three perspectives: improving fidelity, enabling distributed execution, and scaling to larger circuit sizes. Specifically, we compare uncut circuit execution against two circuit partitioning approaches: Qiskit's automatic cut finding technique and a custom performance optimized circuit cutting method. We also measure these across GHZ, QFT, brickwork, and random quantum circuits ranging from 4 to 14 qubits, using mean absolute error of expectation values and overall output fidelity. Our results show that partitioning benefits larger, highly interconnected circuits, with our custom method reducing error by up to 55\% and improve fidelity for GHZ circuits, but degrading performance for brickwork circuits at larger scales.
format Preprint
id arxiv_https___arxiv_org_abs_2604_22664
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum Circuit Partitioning For Effective Utilization of Quantum Resources
Howe, Connor
Radian, Cristina
Woodring, Justin
Sahgal, Vardaan
McDermott, Brian J.
Quantum Physics
Near-term hardware is constrained by high error rates, small qubit counts, and relatively low output fidelity, making the execution of large, high performance quantum circuits difficult. Circuit partitioning (or circuit cutting) has emerged as a promising approach to circumvent these limitations by decomposing circuits into smaller subcircuits at two-qubit interaction points. However, it remains unclear which classes of circuits benefit the most from partitioning and under what hardware conditions it is most effective. In this work, we evaluate the suitability of quantum circuits for partitioning from three perspectives: improving fidelity, enabling distributed execution, and scaling to larger circuit sizes. Specifically, we compare uncut circuit execution against two circuit partitioning approaches: Qiskit's automatic cut finding technique and a custom performance optimized circuit cutting method. We also measure these across GHZ, QFT, brickwork, and random quantum circuits ranging from 4 to 14 qubits, using mean absolute error of expectation values and overall output fidelity. Our results show that partitioning benefits larger, highly interconnected circuits, with our custom method reducing error by up to 55\% and improve fidelity for GHZ circuits, but degrading performance for brickwork circuits at larger scales.
title Quantum Circuit Partitioning For Effective Utilization of Quantum Resources
topic Quantum Physics
url https://arxiv.org/abs/2604.22664