Dissecting Spectral Granger Causality through Partial Information Decomposition

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Faes, Luca, Mijatovic, Gorana, Pernice, Riccardo, Marinazzo, Daniele, Stramaglia, Sebastiano, Antonacci, Yuri
Format: Preprint
Publié: 2026
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866917322786078720
author Faes, Luca
Mijatovic, Gorana
Pernice, Riccardo
Marinazzo, Daniele
Stramaglia, Sebastiano
Antonacci, Yuri
author_facet Faes, Luca
Mijatovic, Gorana
Pernice, Riccardo
Marinazzo, Daniele
Stramaglia, Sebastiano
Antonacci, Yuri
contents Granger causality (GC), a popular statistical method for the inference of directional influences between time series measured from a complex network, is sensitive to high-order (non-pairwise) interactions which fundamentally shape the collective network dynamics. This work introduces Partial Decomposition of Granger Causality (PDGC), a tool eliciting redundant and synergistic causal interactions in the pattern of information flow between the subsystems of physiological networks. The tool exploits the framework of partial information decomposition to dissect the multivariate GC from a set of driver random processes to a target process into unique effects carried exclusively by each driver, redundant effects carried identically by more drivers, and synergistic effects carried jointly by some drivers but not by any of them individually. Computation is based on multivariate state-space models expanded in the frequency domain to assess PDGC both in specific bands of physiological interest and in the time domain after whole-band integration. The spectral PDGC was tested in physiological networks probed by measuring the variability series of arterial pressure, heart period, respiration and cerebral blood velocity in patients prone to neurally-mediated syncope compared to healthy controls. This application revealed unprecedented modes of physiological interaction, related to the sympathetic control of low-frequency cardiovascular and cerebrovascular oscillations, characterizing distinctive patterns of autonomic dysfunction. The extraction of high-order causality patterns from the spectral GC favors dissecting the mechanisms of causal influence underlying multivariate interactions among oscillatory processes in many data-driven applications of network science.
format Preprint
id arxiv_https___arxiv_org_abs_2603_07634
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Dissecting Spectral Granger Causality through Partial Information Decomposition
Faes, Luca
Mijatovic, Gorana
Pernice, Riccardo
Marinazzo, Daniele
Stramaglia, Sebastiano
Antonacci, Yuri
Methodology
Data Analysis, Statistics and Probability
Granger causality (GC), a popular statistical method for the inference of directional influences between time series measured from a complex network, is sensitive to high-order (non-pairwise) interactions which fundamentally shape the collective network dynamics. This work introduces Partial Decomposition of Granger Causality (PDGC), a tool eliciting redundant and synergistic causal interactions in the pattern of information flow between the subsystems of physiological networks. The tool exploits the framework of partial information decomposition to dissect the multivariate GC from a set of driver random processes to a target process into unique effects carried exclusively by each driver, redundant effects carried identically by more drivers, and synergistic effects carried jointly by some drivers but not by any of them individually. Computation is based on multivariate state-space models expanded in the frequency domain to assess PDGC both in specific bands of physiological interest and in the time domain after whole-band integration. The spectral PDGC was tested in physiological networks probed by measuring the variability series of arterial pressure, heart period, respiration and cerebral blood velocity in patients prone to neurally-mediated syncope compared to healthy controls. This application revealed unprecedented modes of physiological interaction, related to the sympathetic control of low-frequency cardiovascular and cerebrovascular oscillations, characterizing distinctive patterns of autonomic dysfunction. The extraction of high-order causality patterns from the spectral GC favors dissecting the mechanisms of causal influence underlying multivariate interactions among oscillatory processes in many data-driven applications of network science.
title Dissecting Spectral Granger Causality through Partial Information Decomposition
topic Methodology
Data Analysis, Statistics and Probability
url https://arxiv.org/abs/2603.07634