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Auteurs principaux: Chung, Joaquin, Hajdušek, Michal, Benchasattabuse, Naphan, Kolar, Alexander, Singal, Ansh, Soon, Kento Samuel, Teramoto, Kentaro, Zang, Allen, Kettimuthu, Raj, Van Meter, Rodney
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2504.01290
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author Chung, Joaquin
Hajdušek, Michal
Benchasattabuse, Naphan
Kolar, Alexander
Singal, Ansh
Soon, Kento Samuel
Teramoto, Kentaro
Zang, Allen
Kettimuthu, Raj
Van Meter, Rodney
author_facet Chung, Joaquin
Hajdušek, Michal
Benchasattabuse, Naphan
Kolar, Alexander
Singal, Ansh
Soon, Kento Samuel
Teramoto, Kentaro
Zang, Allen
Kettimuthu, Raj
Van Meter, Rodney
contents We present a first cross-validation of two open-source quantum network simulators, QuISP and SeQUeNCe, focusing on basic networking tasks to ensure consistency and accuracy in simulation outputs. Despite very similar design objectives of both simulators, their differing underlying assumptions can lead to variations in simulation results. We highlight the discrepancies in how the two simulators handle connections, internal network node processing time, and classical communication, resulting in significant differences in the time required to perform basic network tasks such as elementary link generation and entanglement swapping. We devise common ground scenarios to compare both the time to complete resource distribution and the fidelity of the distributed resources. Our findings indicate that while the simulators differ in the time required to complete network tasks, a constant factor difference attributable to their respective connection models, they agree on the fidelity of the distributed resources under identical error parameters. This work demonstrates a crucial first step towards enhancing the reliability and reproducibility of quantum network simulations, as well as leading to full protocol development. Furthermore, our benchmarking methodology establishes a foundational set of tasks for the cross-validation of simulators to study future quantum networks.
format Preprint
id arxiv_https___arxiv_org_abs_2504_01290
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Cross-Validating Quantum Network Simulators
Chung, Joaquin
Hajdušek, Michal
Benchasattabuse, Naphan
Kolar, Alexander
Singal, Ansh
Soon, Kento Samuel
Teramoto, Kentaro
Zang, Allen
Kettimuthu, Raj
Van Meter, Rodney
Quantum Physics
We present a first cross-validation of two open-source quantum network simulators, QuISP and SeQUeNCe, focusing on basic networking tasks to ensure consistency and accuracy in simulation outputs. Despite very similar design objectives of both simulators, their differing underlying assumptions can lead to variations in simulation results. We highlight the discrepancies in how the two simulators handle connections, internal network node processing time, and classical communication, resulting in significant differences in the time required to perform basic network tasks such as elementary link generation and entanglement swapping. We devise common ground scenarios to compare both the time to complete resource distribution and the fidelity of the distributed resources. Our findings indicate that while the simulators differ in the time required to complete network tasks, a constant factor difference attributable to their respective connection models, they agree on the fidelity of the distributed resources under identical error parameters. This work demonstrates a crucial first step towards enhancing the reliability and reproducibility of quantum network simulations, as well as leading to full protocol development. Furthermore, our benchmarking methodology establishes a foundational set of tasks for the cross-validation of simulators to study future quantum networks.
title Cross-Validating Quantum Network Simulators
topic Quantum Physics
url https://arxiv.org/abs/2504.01290