Simulation and Benchmarking of Real Quantum Hardware

Fuente: arXiv
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Hauptverfasser: Piskor, T., Schöndorf, M., Bauer, M., Smith, D., Ayral, T., Pogorzalek, S., Auer, A., Papič, M.
Format: Preprint
Veröffentlicht: 2025
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author Piskor, T.
Schöndorf, M.
Bauer, M.
Smith, D.
Ayral, T.
Pogorzalek, S.
Auer, A.
Papič, M.
author_facet Piskor, T.
Schöndorf, M.
Bauer, M.
Smith, D.
Ayral, T.
Pogorzalek, S.
Auer, A.
Papič, M.
contents The effects of noise are one of the most important factors to consider when it comes to quantum computing in the noisy intermediate-scale quantum computing (NISQ) era that we are currently in. Therefore, it is important not only to gain more knowledge about the noise sources appearing in current quantum computing hardware in order to suppress and mitigate their contributions, but also to evaluate whether a given quantum algorithm can achieve reasonable results on a given hardware. To accomplish this, we need noise models that can describe the real hardware with sufficient accuracy. Here, we present a noise model that has been evaluated on superconducting hardware platforms and could be adapted to other common architectures such as trapped-ion or neutral atom devices. We then benchmark our model by simulating a 20-qubit superconducting quantum computer, and compare the accuracy of our model to similar approaches from the literature and demonstrate an improvement in the overall prediction accuracy.
format Preprint
id arxiv_https___arxiv_org_abs_2508_04483
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Simulation and Benchmarking of Real Quantum Hardware
Piskor, T.
Schöndorf, M.
Bauer, M.
Smith, D.
Ayral, T.
Pogorzalek, S.
Auer, A.
Papič, M.
Quantum Physics
The effects of noise are one of the most important factors to consider when it comes to quantum computing in the noisy intermediate-scale quantum computing (NISQ) era that we are currently in. Therefore, it is important not only to gain more knowledge about the noise sources appearing in current quantum computing hardware in order to suppress and mitigate their contributions, but also to evaluate whether a given quantum algorithm can achieve reasonable results on a given hardware. To accomplish this, we need noise models that can describe the real hardware with sufficient accuracy. Here, we present a noise model that has been evaluated on superconducting hardware platforms and could be adapted to other common architectures such as trapped-ion or neutral atom devices. We then benchmark our model by simulating a 20-qubit superconducting quantum computer, and compare the accuracy of our model to similar approaches from the literature and demonstrate an improvement in the overall prediction accuracy.
title Simulation and Benchmarking of Real Quantum Hardware
topic Quantum Physics
url https://arxiv.org/abs/2508.04483