Application-Aware Benchmarking on NISQ Hardware using Expectation Value Fidelities

Fuente: arXiv
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Hauptverfasser: Harris, Joseph, Schuhmacher, Peter K.
Format: Preprint
Veröffentlicht: 2024
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author Harris, Joseph
Schuhmacher, Peter K.
author_facet Harris, Joseph
Schuhmacher, Peter K.
contents We present a low-cost protocol for benchmarking applications on generic quantum hardware in the circuit model. Using families of Clifford circuits which mimic the application circuit structure, we are able to predict how measured expectation value fidelities scale with circuit depth. We consider the specific example of simulating a kicked-Ising model on superconducting hardware, showing our benchmark to be more accurate than predictions which use the gate error data obtained through randomized benchmarking. We also demonstrate how our work can be used to benchmark the performance and limitations of quantum error mitigation techniques. Our method is targeted at applications which have a natural decomposition in terms of Pauli rotations, but can be applied to any input circuit with this decomposition.
format Preprint
id arxiv_https___arxiv_org_abs_2410_01505
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Application-Aware Benchmarking on NISQ Hardware using Expectation Value Fidelities
Harris, Joseph
Schuhmacher, Peter K.
Quantum Physics
We present a low-cost protocol for benchmarking applications on generic quantum hardware in the circuit model. Using families of Clifford circuits which mimic the application circuit structure, we are able to predict how measured expectation value fidelities scale with circuit depth. We consider the specific example of simulating a kicked-Ising model on superconducting hardware, showing our benchmark to be more accurate than predictions which use the gate error data obtained through randomized benchmarking. We also demonstrate how our work can be used to benchmark the performance and limitations of quantum error mitigation techniques. Our method is targeted at applications which have a natural decomposition in terms of Pauli rotations, but can be applied to any input circuit with this decomposition.
title Application-Aware Benchmarking on NISQ Hardware using Expectation Value Fidelities
topic Quantum Physics
url https://arxiv.org/abs/2410.01505