
Abstract Flexible information routing fundamentally underlies the function of many biological and artificial networks. Yet, how such systems may specifically communicate and dynamically route information is not well understood. Here we identify a generic mechanism to route information on top of collective dynamical reference states in complex networks. Switching between collective dynamics induces flexible reorganization of information sharing and routing patterns, as quantified by delayed mutual information and transfer entropy measures between activities of a network's units. We demonstrate the power of this generic mechanism specifically for oscillatory dynamics and analyze how individual unit properties, the network topology and external inputs coact to systematically organize information routing. For multi-scale, modular architectures, we resolve routing patterns at all levels. Interestingly, local interventions within one sub-network may remotely determine non-local network-wide communication. These results help understanding and designing information routing patterns across systems where collective dynamics co-occurs with a communication function.
Science, Molecular Networks (q-bio.MN), [SCCO.NEUR] Cognitive science/Neuroscience, Q, FOS: Physical sciences, 94A05, 92B20, 92B25, 92B20, 92C42, Dynamical Systems (math.DS), Nonlinear Sciences - Adaptation and Self-Organizing Systems, Article, Biological Physics (physics.bio-ph), Quantitative Biology - Neurons and Cognition, FOS: Biological sciences, FOS: Mathematics, Quantitative Biology - Molecular Networks, Neurons and Cognition (q-bio.NC), Physics - Biological Physics, Mathematics - Dynamical Systems, Adaptation and Self-Organizing Systems (nlin.AO)
Science, Molecular Networks (q-bio.MN), [SCCO.NEUR] Cognitive science/Neuroscience, Q, FOS: Physical sciences, 94A05, 92B20, 92B25, 92B20, 92C42, Dynamical Systems (math.DS), Nonlinear Sciences - Adaptation and Self-Organizing Systems, Article, Biological Physics (physics.bio-ph), Quantitative Biology - Neurons and Cognition, FOS: Biological sciences, FOS: Mathematics, Quantitative Biology - Molecular Networks, Neurons and Cognition (q-bio.NC), Physics - Biological Physics, Mathematics - Dynamical Systems, Adaptation and Self-Organizing Systems (nlin.AO)
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