Simulation of Quantum Repeater Networks under Decoherence and Purification Constraints

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Hauptverfasser: Li, Wenhan, Zhang, Shiyu
Format: Preprint
Veröffentlicht: 2025
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author Li, Wenhan
Zhang, Shiyu
author_facet Li, Wenhan
Zhang, Shiyu
contents Long-distance quantum communication requires reliable entanglement distribution, but direct generation with protocols such as Barrett--Kok suffers from exponentially decreasing success probability with distance, making it impractical over hundreds of kilometers. Quantum repeaters address this by segmenting the channel and combining entanglement generation, swapping, and purification. In this work, we present a simulation framework for chain-based repeaters under continuous-time depolarizing noise. Our model implements heralded entanglement generation, Bell-state swapping, and multi-round purification, with configurable chain length, noise levels, and purification depth. Numerical results highlight how memory decoherence constrains performance, how purification mitigates fidelity loss, and how time and entanglement costs scale with distance. While simplified, the framework offers a flexible tool for exploring trade-offs in repeater design and provides a basis for extensions toward more complex network scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2510_07471
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Simulation of Quantum Repeater Networks under Decoherence and Purification Constraints
Li, Wenhan
Zhang, Shiyu
Quantum Physics
Information Theory
Long-distance quantum communication requires reliable entanglement distribution, but direct generation with protocols such as Barrett--Kok suffers from exponentially decreasing success probability with distance, making it impractical over hundreds of kilometers. Quantum repeaters address this by segmenting the channel and combining entanglement generation, swapping, and purification. In this work, we present a simulation framework for chain-based repeaters under continuous-time depolarizing noise. Our model implements heralded entanglement generation, Bell-state swapping, and multi-round purification, with configurable chain length, noise levels, and purification depth. Numerical results highlight how memory decoherence constrains performance, how purification mitigates fidelity loss, and how time and entanglement costs scale with distance. While simplified, the framework offers a flexible tool for exploring trade-offs in repeater design and provides a basis for extensions toward more complex network scenarios.
title Simulation of Quantum Repeater Networks under Decoherence and Purification Constraints
topic Quantum Physics
Information Theory
url https://arxiv.org/abs/2510.07471