Experimental Simulation of Larger Quantum Circuits with Fewer Superconducting Qubits

Journal Article (2023)
Author(s)

Chong Ying (University of Science and Technology of China)

Bin Cheng (Southern University of Science and Technology , University of Technology Sydney)

Youwei Zhao (University of Science and Technology of China)

He Liang Huang (University of Science and Technology of China, Henan Key Laboratory of Quantum Information and Cryptography, Zhengzhou )

Yu Ning Zhang (Southern University of Science and Technology , TU Delft - QID/Dobrovitski Group)

Ming Gong (University of Science and Technology of China)

Yulin Wu (University of Science and Technology of China)

Shiyu Wang (University of Science and Technology of China)

Futian Liang (University of Science and Technology of China)

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Research Group
QID/Dobrovitski Group
DOI related publication
https://doi.org/10.1103/PhysRevLett.130.110601 Final published version
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Publication Year
2023
Language
English
Research Group
QID/Dobrovitski Group
Issue number
11
Volume number
130
Article number
110601
Page Views
523
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Institutional Repository
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Abstract

Although near-term quantum computing devices are still limited by the quantity and quality of qubits in the so-called NISQ era, quantum computational advantage has been experimentally demonstrated. Moreover, hybrid architectures of quantum and classical computing have become the main paradigm for exhibiting NISQ applications, where low-depth quantum circuits are repeatedly applied. In order to further scale up the problem size solvable by the NISQ devices, it is also possible to reduce the number of physical qubits by "cutting"the quantum circuit into different pieces. In this work, we experimentally demonstrated a circuit-cutting method for simulating quantum circuits involving many logical qubits, using only a few physical superconducting qubits. By exploiting the symmetry of linear-cluster states, we can estimate the effectiveness of circuit-cutting for simulating up to 33-qubit linear-cluster states, using at most 4 physical qubits for each subcircuit. Specifically, for the 12-qubit linear-cluster state, we found that the experimental fidelity bound can reach as much as 0.734, which is about 19% higher than a direct implementation on the same 12-qubit superconducting processor. Our results indicate that circuit-cutting represents a feasible approach of simulating quantum circuits using much fewer qubits, while achieving a much higher circuit fidelity.

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