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Prakash R

Publications and source records attributed to Prakash R.

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Complexity Condensation Through Adaptive Information Exchange

An emergent complexity field governing information exchange is the central theme of this work. To explore this idea, we propose a model of an adaptive dynamical network in which both the interaction weights and the adaptive coupling strengths are determined by finite-time information production rates that quantify the dynamical complexity of individual subsystems. Collective organization in complexity space emerges through a feedback mechanism between the microscopic dynamics and the resulting complexity-dependent interactions. Using numerical simulations, we demonstrate the emergence of a phenomenon that we term \emph{complexity condensation}, in which subsystem complexities become strongly localized despite the absence of complete state synchronization. The degree of condensation is found to be maximal at an intermediate adaptation strength, reflecting a balance between selective information exchange and network fragmentation. These results reveal a mechanism for complexity-mediated self-organization in nonlinear systems driven by adaptive information exchange.

nlin.AO

From Disorder to Design: Entropy-Driven Self-Organization in an Agent Based Swarming Model and Pattern Formation

This letter seeks to illuminate the profound connection between complexity, self-organization, emergent behaviour, pattern formation, and entropy concepts that are foundational to understanding our universe. By examining these ideas through the lenses of physics, information theory, and nonlinear dynamics, we uncover a fascinating narrative. Starting with a random cluster of particles possessing distinct internal properties, we activate their interactions and observe the emergence of intricate patterns over time. This journey reveals a transition from unlikely to more probable states. At extreme parameter values, the system showcases stunning patterns and turbulent motions remarkable emergent behaviour propelled by entropy and the dynamic exchange of mutual information. Engaging with probability theory helps us to unveil this intricate connectivity, demonstrating not only its significance but also its potential to reshape our understanding of complex systems.

nlin.AO