Zero-Noise Extrapolation via Cyclic Permutations of Quantum Circuit Layouts

Fuente: arXiv
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Autores principales: Sayapin, Zahar, Rabinovich, Daniil, Korolev, Nikita, Lakhmanskiy, Kirill
Formato: Preprint
Publicado: 2025
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author Sayapin, Zahar
Rabinovich, Daniil
Korolev, Nikita
Lakhmanskiy, Kirill
author_facet Sayapin, Zahar
Rabinovich, Daniil
Korolev, Nikita
Lakhmanskiy, Kirill
contents Increasing the utility of currently available Noisy Intermediate-Scale Quantum (NISQ) devices requires developing efficient methods to mitigate hardware errors. In this work we propose a novel Cyclic Layout Permutations based Zero Noise Extrapolation (CLP-ZNE) protocol for such a task. The method leverages the inherent non-uniformity of gate errors in NISQ hardware to extrapolate the expectation value, averaged over cyclic circuit layout permutations, to the level of zero noise. In contrast to the previous layout permutation based approaches, for $n$ qubit circuit CLP-ZNE requires execution of only $O(n)$ and at most $O(n^2)$ different circuit layouts for circuits of one-dimensional and arbitrary connectivity, respectively. When benchmarked against noise channels modeling the IBM Torino quantum computer, the method reduces a typical error in expectation values of $n=12$ qubit circuits by an order of magnitude, outperforming standard unitary folding ZNE. By demonstrating the ability to mitigate noise of real hardware specifications, including both depolarizing and $T_1/T_2$ relaxation processes, these results give evidence for the applicability of CLP-ZNE to present-day NISQ processors.
format Preprint
id arxiv_https___arxiv_org_abs_2511_02901
institution arXiv
publishDate 2025
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spellingShingle Zero-Noise Extrapolation via Cyclic Permutations of Quantum Circuit Layouts
Sayapin, Zahar
Rabinovich, Daniil
Korolev, Nikita
Lakhmanskiy, Kirill
Quantum Physics
Increasing the utility of currently available Noisy Intermediate-Scale Quantum (NISQ) devices requires developing efficient methods to mitigate hardware errors. In this work we propose a novel Cyclic Layout Permutations based Zero Noise Extrapolation (CLP-ZNE) protocol for such a task. The method leverages the inherent non-uniformity of gate errors in NISQ hardware to extrapolate the expectation value, averaged over cyclic circuit layout permutations, to the level of zero noise. In contrast to the previous layout permutation based approaches, for $n$ qubit circuit CLP-ZNE requires execution of only $O(n)$ and at most $O(n^2)$ different circuit layouts for circuits of one-dimensional and arbitrary connectivity, respectively. When benchmarked against noise channels modeling the IBM Torino quantum computer, the method reduces a typical error in expectation values of $n=12$ qubit circuits by an order of magnitude, outperforming standard unitary folding ZNE. By demonstrating the ability to mitigate noise of real hardware specifications, including both depolarizing and $T_1/T_2$ relaxation processes, these results give evidence for the applicability of CLP-ZNE to present-day NISQ processors.
title Zero-Noise Extrapolation via Cyclic Permutations of Quantum Circuit Layouts
topic Quantum Physics
url https://arxiv.org/abs/2511.02901