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Time series characterization via horizontal visibility graph and Information theory

Gonçalves, Bruna Amin et al · RI ITBA · 2023

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"Complex networks theory have gained wider applicability since methods for transformation of time series to networks were proposed and successfully tested. In the last few years, horizontal visibility graph has become a popular method due to its simplicity and good results when applied to natural and artificially generated data. In this work, we explore different ways of extracting information from the network constructed from the horizontal visibility graph and evaluated by Information Theory quantifiers. Most works use the degree distribution of the network, however, we found alternative probability distributions, more efficient than the degree distribution in characterizing dynamical systems. In particular, we find that, when using distributions based on distances and amplitude values, significant shorter time series are required. We analyze fractional Brownian motion time series, and a paleoclimatic proxy record of ENSO from the Pallcacocha Lake to study dynamical changes during the Holocene."

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APA 7

Gonçalves, B. A. E. A. (2023). Time series characterization via horizontal visibility graph and Information theory. https://ri.itba.edu.ar/handle/20.500.14769/4158

MLA

Gonçalves, Bruna Amin et al. "Time series characterization via horizontal visibility graph and Information theory." 2023. https://ri.itba.edu.ar/handle/20.500.14769/4158.

Chicago

Gonçalves, Bruna Amin et al. 2023. "Time series characterization via horizontal visibility graph and Information theory.". https://ri.itba.edu.ar/handle/20.500.14769/4158.

Harvard

Gonçalves, B. A. E. A. 2023, Time series characterization via horizontal visibility graph and Information theory, RI ITBA, available at: https://ri.itba.edu.ar/handle/20.500.14769/4158 [Accessed 7 Aug. 2026].

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Title
Time series characterization via horizontal visibility graph and Information theory
Author / contributors
Gonçalves, Bruna Amin et al
Publisher
RI ITBA
Publication year
2023
ISSN
0378-4371
ISSN
0378-4371
Language
English

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