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Understanding the Scalability of Circuit Cutting Techniques for Practical Quantum Applications

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arxiv 2411.17756 v1 pith:PURX6QQU submitted 2024-11-25 quant-ph

Understanding the Scalability of Circuit Cutting Techniques for Practical Quantum Applications

classification quant-ph
keywords quantumcuttingcircuittechniquesapplicationshardwareclassicalruntime
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Circuit cutting allows quantum circuits larger than the available hardware to be executed. Cutting techniques split circuits into smaller subcircuits, run them on the hardware, and recombine results through classical post-processing. Circuit cutting techniques have been extensively researched over the last five years and it been adopted by major quantum hardware vendors as part of their scaling roadmaps. We examine whether current circuit cutting techniques are practical for orchestrating executions on fault-tolerant quantum computers. We conduct a resource estimation-based benchmarking of important quantum applications and different types of circuit cutting techniques. Our applications include practically relevant algorithms, such as Hamiltonian simulation, kernels such as quantum Fourier transform and more. To cut these applications, we use IBM's Qiskit cutting tool. We estimate resources for subcircuits using Microsoft's Azure Quantum Resource Estimator and develop models to determine the qubit, quantum and classical runtime needs of circuit cutting. We demonstrate that while circuit cutting works for small-scale systems, the exponential growth of the quantum runtime and the classical post-processing overhead as the qubit count increases renders it impractical for larger quantum systems with current implementation strategies. As we transition from noisy quantum hardware to fault-tolerance, our work provides important guidance for the design of quantum software and runtime systems.

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Cited by 2 Pith papers

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

  1. Certifying Quantum Optimization and Circuit Cutting by Using Quantum-Classical Moment Duality

    quant-ph 2026-06 unverdicted novelty 7.0

    Quantum-classical moment duality shows that Pauli-Z correlations from any quantum state are feasible for the GW relaxation, providing certified cut values and circuit cutting bounds.

  2. 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.