Runtime Reduction in Linear Quantum Charge-Coupled Devices using the Parity Flow Formalism

Fuente: arXiv
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Main Authors: Domínguez, Federico, Fellner, Michael, Klaver, Berend, Rombouts, Stefan, Ertler, Christian, Lechner, Wolfgang
Format: Preprint
Published: 2024
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author Domínguez, Federico
Fellner, Michael
Klaver, Berend
Rombouts, Stefan
Ertler, Christian
Lechner, Wolfgang
author_facet Domínguez, Federico
Fellner, Michael
Klaver, Berend
Rombouts, Stefan
Ertler, Christian
Lechner, Wolfgang
contents Using the Parity Flow formalism, we show that physical SWAP gates can be eliminated in linear hardware architectures, without increasing the total number of two-qubit operations. This has a significant impact on the execution time of quantum circuits in linear Quantum Charge-Coupled Devices (QCCDs), where SWAP gates are implemented by physically changing the position of the ions. Because SWAP gates are one of the most time-consuming operations in QCCDs, our scheme considerably reduces the runtime of the quantum Fourier transform and the quantum approximate optimization algorithm on all-to-all spin models, compared to circuits generated with standard compilers (TKET and Qiskit). While increasing the problem size (and therefore the number of qubits) typically demands longer runtimes, which are constrained by coherence time, our runtime reduction enables a significant increase in the number of qubits at a given coherence time.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16382
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Runtime Reduction in Linear Quantum Charge-Coupled Devices using the Parity Flow Formalism
Domínguez, Federico
Fellner, Michael
Klaver, Berend
Rombouts, Stefan
Ertler, Christian
Lechner, Wolfgang
Quantum Physics
Using the Parity Flow formalism, we show that physical SWAP gates can be eliminated in linear hardware architectures, without increasing the total number of two-qubit operations. This has a significant impact on the execution time of quantum circuits in linear Quantum Charge-Coupled Devices (QCCDs), where SWAP gates are implemented by physically changing the position of the ions. Because SWAP gates are one of the most time-consuming operations in QCCDs, our scheme considerably reduces the runtime of the quantum Fourier transform and the quantum approximate optimization algorithm on all-to-all spin models, compared to circuits generated with standard compilers (TKET and Qiskit). While increasing the problem size (and therefore the number of qubits) typically demands longer runtimes, which are constrained by coherence time, our runtime reduction enables a significant increase in the number of qubits at a given coherence time.
title Runtime Reduction in Linear Quantum Charge-Coupled Devices using the Parity Flow Formalism
topic Quantum Physics
url https://arxiv.org/abs/2410.16382