Abstract
Graphs have become a commonly used model to study technological, biological, and social systems. Various methods have been proposed to measure graphs’ structural and dynamical properties, providing insights into the fundamental processes and interactions that govern the behavior of these systems. Matrix functions are powerful mathematical tools for assessing vertex centrality, communicability, and diffusion processes. Let M be the adjacency matrix of a weighted undirected graph. Then, the trace of matrix functions, tr(f(M)), provides insights into global network structural and dynamical properties. Although tr(f(M)) can be computed using the diagonalization method for graphs with a few thousand vertices, this approach is impractical for large-scale networks due to its computational complexity. Here, we present a message-passing method to approximate tr(f(M)) for graphs with short cycles that runs in linear time up to logarithmic terms. We compare our proposal with the state-of-the-art approach through simulations and real-world network applications, achieving comparable accuracy in less time.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 455-476 |
| Seitenumfang | 22 |
| Fachzeitschrift | Numerical Algorithms |
| Jahrgang | 101 |
| Ausgabenummer | 1 |
| Frühes Online-Datum | 2025 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - Jan. 2026 |
Fördermittel
This work has been supported by FAPESP grants 2013/07699-0, 2018/21934-5, 2019/22845-9, and 2020/08343-8, CNPq grant 306811/2022-7, CAPES (finance code 001), Alexander von Humboldt Foundation, the Academy of Medical Sciences - Newton Fund, Wellcome Leap, and the German Academic Exchange Service (DAAD grant no. 57598588).
ÖFOS 2012
- 101028 Mathematische Modellierung
- 106005 Bioinformatik
- 104022 Theoretische Chemie
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