Modeling Quantum Links for the Exploration of Distributed Quantum Computing Systems

Fuente: arXiv
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Autori principali: Rached, Sahar Ben, Sun, Zezhou, Khan, Junaid, Long, Guilu, Rodrigo, Santiago, Almudéver, Carmen G., Alarcón, Eduard, Abadal, Sergi
Natura: Preprint
Pubblicazione: 2025
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author Rached, Sahar Ben
Sun, Zezhou
Khan, Junaid
Long, Guilu
Rodrigo, Santiago
Almudéver, Carmen G.
Alarcón, Eduard
Abadal, Sergi
author_facet Rached, Sahar Ben
Sun, Zezhou
Khan, Junaid
Long, Guilu
Rodrigo, Santiago
Almudéver, Carmen G.
Alarcón, Eduard
Abadal, Sergi
contents Quantum computing offers the potential to solve certain complex problems, yet, scaling monolithic processors remains a major challenge. Modular and distributed architectures are proposed to build large-scale quantum systems while bringing the security advantages of quantum communication. At present, this requires accurate and computationally efficient models of quantum links across different scales to advance system design and guide experimental prototyping. In this work, we review protocols and models for estimating latency, losses, and fidelity in quantum communication primitives relying on quantum state distribution via microwave photons. We also propose a scalable simulation framework to support the design and evaluation of future distributed quantum computing systems.
format Preprint
id arxiv_https___arxiv_org_abs_2505_08577
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Modeling Quantum Links for the Exploration of Distributed Quantum Computing Systems
Rached, Sahar Ben
Sun, Zezhou
Khan, Junaid
Long, Guilu
Rodrigo, Santiago
Almudéver, Carmen G.
Alarcón, Eduard
Abadal, Sergi
Quantum Physics
Computational Physics
Quantum computing offers the potential to solve certain complex problems, yet, scaling monolithic processors remains a major challenge. Modular and distributed architectures are proposed to build large-scale quantum systems while bringing the security advantages of quantum communication. At present, this requires accurate and computationally efficient models of quantum links across different scales to advance system design and guide experimental prototyping. In this work, we review protocols and models for estimating latency, losses, and fidelity in quantum communication primitives relying on quantum state distribution via microwave photons. We also propose a scalable simulation framework to support the design and evaluation of future distributed quantum computing systems.
title Modeling Quantum Links for the Exploration of Distributed Quantum Computing Systems
topic Quantum Physics
Computational Physics
url https://arxiv.org/abs/2505.08577