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Autori principali: Antonacci, Yuri, Bara', Chiara, Sparacino, Laura, Mijatovic, Gorana, Minati, Ludovico, Faes, Luca
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2503.12421
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author Antonacci, Yuri
Bara', Chiara
Sparacino, Laura
Mijatovic, Gorana
Minati, Ludovico
Faes, Luca
author_facet Antonacci, Yuri
Bara', Chiara
Sparacino, Laura
Mijatovic, Gorana
Minati, Ludovico
Faes, Luca
contents Several data-driven approaches based on information theory have been proposed for analyzing high-order interactions involving three or more components of a network system. Most of these methods are defined only in the time domain and rely on the assumption of stationarity in the underlying dynamics, making them inherently unable to detect frequency-specific behaviors and track transient functional links in physiological networks. This study introduces a new framework which enables the time-varying and time-frequency analysis of high-order interactions in network of random processes through the spectral representation of vector autoregressive models. The time- and frequency-resolved analysis of synergistic and redundant interactions among groups of processes is ensured by a robust identification procedure based on a recursive least squares estimator with a forgetting factor. Validation on simulated networks illustrates how the time-frequency analysis is able to highlight transient synergistic behaviors emerging in specific frequency bands which cannot be detected by time-domain stationary analyses. The application on brain evoked potentials in rats elicits the presence of redundant information timed with whisker stimulation and mostly occurring in the contralateral hemisphere. The proposed framework enables a comprehensive time-varying and time-frequency analysis of the hierarchical organization of dynamic networks. As our approach goes beyond pairwise interactions, it is well suited for the study of transient high-order behaviors arising during state transitions in many network systems commonly studied in physiology, neuroscience and other fields.
format Preprint
id arxiv_https___arxiv_org_abs_2503_12421
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Method for the Time-Frequency Analysis of High-Order Interactions in Non-Stationary Physiological Networks
Antonacci, Yuri
Bara', Chiara
Sparacino, Laura
Mijatovic, Gorana
Minati, Ludovico
Faes, Luca
Applications
Several data-driven approaches based on information theory have been proposed for analyzing high-order interactions involving three or more components of a network system. Most of these methods are defined only in the time domain and rely on the assumption of stationarity in the underlying dynamics, making them inherently unable to detect frequency-specific behaviors and track transient functional links in physiological networks. This study introduces a new framework which enables the time-varying and time-frequency analysis of high-order interactions in network of random processes through the spectral representation of vector autoregressive models. The time- and frequency-resolved analysis of synergistic and redundant interactions among groups of processes is ensured by a robust identification procedure based on a recursive least squares estimator with a forgetting factor. Validation on simulated networks illustrates how the time-frequency analysis is able to highlight transient synergistic behaviors emerging in specific frequency bands which cannot be detected by time-domain stationary analyses. The application on brain evoked potentials in rats elicits the presence of redundant information timed with whisker stimulation and mostly occurring in the contralateral hemisphere. The proposed framework enables a comprehensive time-varying and time-frequency analysis of the hierarchical organization of dynamic networks. As our approach goes beyond pairwise interactions, it is well suited for the study of transient high-order behaviors arising during state transitions in many network systems commonly studied in physiology, neuroscience and other fields.
title A Method for the Time-Frequency Analysis of High-Order Interactions in Non-Stationary Physiological Networks
topic Applications
url https://arxiv.org/abs/2503.12421