SeQUeNCe: A Customizable Discrete-Event Simulator of Quantum Networks

Fuente: arXiv
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Main Authors: Wu, Xiaoliang, Kolar, Alexander, Chung, Joaquin, Jin, Dong, Zhong, Tian, Kettimuthu, Rajkumar, Suchara, Martin
Format: Preprint
Published: 2020
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author Wu, Xiaoliang
Kolar, Alexander
Chung, Joaquin
Jin, Dong
Zhong, Tian
Kettimuthu, Rajkumar
Suchara, Martin
author_facet Wu, Xiaoliang
Kolar, Alexander
Chung, Joaquin
Jin, Dong
Zhong, Tian
Kettimuthu, Rajkumar
Suchara, Martin
contents Recent advances in quantum information science enabled the development of quantum communication network prototypes and created an opportunity to study full-stack quantum network architectures. This work develops SeQUeNCe, a comprehensive, customizable quantum network simulator. Our simulator consists of five modules: Hardware models, Entanglement Management protocols, Resource Management, Network Management, and Application. This framework is suitable for simulation of quantum network prototypes that capture the breadth of current and future hardware technologies and protocols. We implement a comprehensive suite of network protocols and demonstrate the use of SeQUeNCe by simulating a photonic quantum network with nine routers equipped with quantum memories. The simulation capabilities are illustrated in three use cases. We show the dependence of quantum network throughput on several key hardware parameters and study the impact of classical control message latency. We also investigate quantum memory usage efficiency in routers and demonstrate that redistributing memory according to anticipated load increases network capacity by 69.1% and throughput by 6.8%. We design SeQUeNCe to enable comparisons of alternative quantum network technologies, experiment planning, and validation and to aid with new protocol design. We are releasing SeQUeNCe as an open source tool and aim to generate community interest in extending it.
format Preprint
id arxiv_https___arxiv_org_abs_2009_12000
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle SeQUeNCe: A Customizable Discrete-Event Simulator of Quantum Networks
Wu, Xiaoliang
Kolar, Alexander
Chung, Joaquin
Jin, Dong
Zhong, Tian
Kettimuthu, Rajkumar
Suchara, Martin
Quantum Physics
Recent advances in quantum information science enabled the development of quantum communication network prototypes and created an opportunity to study full-stack quantum network architectures. This work develops SeQUeNCe, a comprehensive, customizable quantum network simulator. Our simulator consists of five modules: Hardware models, Entanglement Management protocols, Resource Management, Network Management, and Application. This framework is suitable for simulation of quantum network prototypes that capture the breadth of current and future hardware technologies and protocols. We implement a comprehensive suite of network protocols and demonstrate the use of SeQUeNCe by simulating a photonic quantum network with nine routers equipped with quantum memories. The simulation capabilities are illustrated in three use cases. We show the dependence of quantum network throughput on several key hardware parameters and study the impact of classical control message latency. We also investigate quantum memory usage efficiency in routers and demonstrate that redistributing memory according to anticipated load increases network capacity by 69.1% and throughput by 6.8%. We design SeQUeNCe to enable comparisons of alternative quantum network technologies, experiment planning, and validation and to aid with new protocol design. We are releasing SeQUeNCe as an open source tool and aim to generate community interest in extending it.
title SeQUeNCe: A Customizable Discrete-Event Simulator of Quantum Networks
topic Quantum Physics
url https://arxiv.org/abs/2009.12000