Albert Díaz-Guilera

@anduviera.bsky.social

Network scientist

https://onlinelibrary.wiley.com/doi/10.1002/andp.70288

Coupled Dynamics Between Networks and Fields in Physical Space: A Theoretical Perspective

Alex Arenas, Oriol Artime, Albert Díaz-Guilera, Sergio Gómez, Clara Granell Annalen der PhysikAnnalen der Physik Volume 538, Issue 9, September 2026, e70288 Many complex systems cannot be understood from network structure alone, nor from continuum descriptions in isolation, because their dynamics emerge from the reciprocal coupling between discrete interaction architectures and spatially extended physical fields. This perspective article surveys mathematical and computational frameworks for such network–field systems, focusing on models in which a graph is either itself the spatial substrate of a field or is embedded in a surrounding medium that mediates transport, signaling, forcing, or spatially distributed hazards. We first introduce a unified formalism for bidirectionally coupled network–field dynamics, emphasizing observation and injection operators that link node variables to continuum processes while preserving balance laws. We then examine two major modeling classes: fields evolving directly on metric graphs, where partial differential equations are posed on network geometries with vertex matching conditions; and hybrid discrete–continuous systems, where node dynamics are coupled to fields in the ambient domain, with particular attention to port-Hamiltonian formulations that provide energy-consistent interconnection principles. Within this common framework, we discuss representative modeling applications in neurobiology, including diffusion-mediated cellular communication and extracellular neural signaling, and in infrastructure systems, where network functionality depends on spatially distributed flows, loads, and hazards. Across these examples, a common picture emerges: the field is not merely an external environment, but an active dynamical layer that reshapes effective interactions, timescales, and collective behavior. By synthesizing concepts that are often developed separately across disciplines, this perspective article aims to clarify the mathematical structure, physical interpretation, and numerical challenges of coupled network–field models, and to highlight their role as a unifying language for spatially embedded complex systems.Many complex systems cannot be understood from network structure alone, nor from continuum descriptions in isolation, because their dynamics emerge from the reciprocal coupling between discrete interaction architectures and spatially extended physical fields. This perspective article surveys mathematical and computational frameworks for such network–field systems, focusing on models in which a graph is either itself the spatial substrate of a field or is embedded in a surrounding medium that mediates transport, signaling, forcing, or spatially distributed hazards. We first introduce a unified formalism for bidirectionally coupled network–field dynamics, emphasizing observation and injection operators that link node variables to continuum processes while preserving balance laws. We then examine two major modeling classes: fields evolving directly on metric graphs, where partial differential equations are posed on network geometries with vertex matching conditions; and hybrid discrete–continuous systems, where node dynamics are coupled to fields in the ambient domain, with particular attention to port-Hamiltonian formulations that provide energy-consistent interconnection principles. Within this common framework, we discuss representative modeling applications in neurobiology, including diffusion-mediated cellular communication and extracellular neural signaling, and in infrastructure systems, where network functionality depends on spatially distributed flows, loads, and hazards. Across these examples, a common picture emerges: the field is not merely an external environment, but an active dynamical layer that reshapes effective interactions, timescales, and collective behavior. By synthesizing concepts that are often developed separately across disciplines, this perspective article aims to clarify the mathematical structure, physical interpretation, and numerical challenges of coupled network–field models, and to highlight their role as a unifying language for spatially embedded complex systems. Read the full article at: onlinelibrary.wiley.com

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El Dr. Gaspar Rosselló ha estat sempre un home d'universitat i serà sempre part de la @ub.edu. Ha marxat de forma tan sobtada que encara ressona en el meu cervell el seu riure intens del darrer dia que ens vam veure. I no sé com ho farem per mantenir aquest seu somriure per sempre més.

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From power grids to social media and global supply chains, our world runs on complex networks. Raissa D’Souza is leading federally-funded research to predict how these systems respond to disruptions—whether from intentional attacks, natural disasters or unexpected failures.

Headshot of Raissa D'Souza against a dark blue background with white text that reads, "From labs to Lives: How Research Funding Solves Real World Problems" and her quote, "Academia is the birthplace of AI, and it’s the place where all the needed voices can come together to keep the values of humans front and center as we roll out new AI technologies. It is where we train our tech workforce. Without federal funding, we hand over AI dominance to foreign nations."

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Excited to share a working paper version of our latest work: "Using Gamified Experiments to Tame Complexity: the case of the Schelling Model of Segregation." How can gamification bridge the gap between abstract models and real-world social phenomena? 👇

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Els humans no som els únics animals que intentem reanimar als nostres congèneres. Els ratolins també tenen un circuit neuronal innat depenent d'oxitocina que s'activa per intentar revifar a altres que estan inconscients, amb mossegades i llepades a la zona rostral. Llegiu-ho a 👇

ElNacional.cat@elnacionalcat.bsky.social · 2y ago

✍️ OPINIÓ | Intentant salvar vides. Per @GMarfanyN Saber que no som els únics animals que de manera deliberada intentem salvar la vida dels nostres companys, fa pensar

While Roman engineers and architects were building cities, termites in Brazil excavated a massive network of galleries, creating millions of mounds that persisted until today and can be seen from space phys.org/news/2018-11... … A good reminder of the power and scale of collective intelligence.

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