Quantum-enhanced Network Tomography

Fuente: arXiv
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Autores principales: Zheng, Yufei, Gong, Zihao, Guha, Saikat, Towsley, Don
Formato: Preprint
Publicado: 2026
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author Zheng, Yufei
Gong, Zihao
Guha, Saikat
Towsley, Don
author_facet Zheng, Yufei
Gong, Zihao
Guha, Saikat
Towsley, Don
contents Network tomography refers to the use of inference techniques for inferring internal network states from end-to-end probes. Quantum probes, implemented by sending blocks of $n$ coherent-state pulses augmented with continuous-variable (CV) squeezing ($n=1$) or weak temporal-mode entanglement ($n>1$) over a lossy channel to a receiver with homodyne detection capabilities, are known to carry information about the channel transmissivity. Assuming a subset of nodes in an optical network is capable of sending and receiving such probes through intermediate nodes with all-optical switching capabilities, we leverage these quantum probes to estimate link transmissivities. To determine how to route the probes in a network, we propose a probe construction algorithm that guarantees link identifiability, while maximizing the number of information orthogonal sets of transmissivities. A set of probes induces a Fisher information matrix (FIM). We then derive two metrics, the determinant of the FIM and the trace of its inverse, to evaluate the performance of the probes. In particular, our results can be used to characterize the quantum improvement in estimating link transmissivities in a general optical network.
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id arxiv_https___arxiv_org_abs_2604_25194
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum-enhanced Network Tomography
Zheng, Yufei
Gong, Zihao
Guha, Saikat
Towsley, Don
Quantum Physics
Networking and Internet Architecture
Network tomography refers to the use of inference techniques for inferring internal network states from end-to-end probes. Quantum probes, implemented by sending blocks of $n$ coherent-state pulses augmented with continuous-variable (CV) squeezing ($n=1$) or weak temporal-mode entanglement ($n>1$) over a lossy channel to a receiver with homodyne detection capabilities, are known to carry information about the channel transmissivity. Assuming a subset of nodes in an optical network is capable of sending and receiving such probes through intermediate nodes with all-optical switching capabilities, we leverage these quantum probes to estimate link transmissivities. To determine how to route the probes in a network, we propose a probe construction algorithm that guarantees link identifiability, while maximizing the number of information orthogonal sets of transmissivities. A set of probes induces a Fisher information matrix (FIM). We then derive two metrics, the determinant of the FIM and the trace of its inverse, to evaluate the performance of the probes. In particular, our results can be used to characterize the quantum improvement in estimating link transmissivities in a general optical network.
title Quantum-enhanced Network Tomography
topic Quantum Physics
Networking and Internet Architecture
url https://arxiv.org/abs/2604.25194