Criticality of a dissipative self-organizing process in a dynamic population

dc.creatorJuanico, D. E.
dc.creatorMonterola, C.
dc.creatorSaloma, C.
dc.date2006-04-24
dc.date2006-04-24
dc.date.accessioned2026-07-07T07:11:25Z
dc.date.available2026-07-07T07:11:25Z
dc.descriptionWe derive a general formulation of the self-organized branching process by considering sandpile dynamics in an evolving population characterized by "birth" (excitation) and "death" (de-excitation) of active sites ($z=1$). New active sites are born in empty sites ($z=0$) with a probability of $η$, whereas active sites die, thus becoming empty, with a probability $λ$. Subsequently, when an active site becomes unstable ($z=2$), it topples by transferring two grains to two randomly chosen sites with probability $α$ or, by transferring only one grain to a randomly selected site (while retaining the other) with probability $β=1+\fracλη-2α$, thus remaining active after toppling. We show that when sandpile dynamics occurs in an evolving population, self-organized criticality, characterized by a power-law avalanche size distribution with exponent $τ_s=3/2$ and power-law avalanche duration distribution with exponent $τ_T=2$ at very high dimension $n >> 1$, is achieved even in the presence of dissipation ($ε= 1-α- β> 0$), contrary to previous claims.
dc.description5 pages, 4 figures
dc.identifierhttps://arxiv.org/abs/nlin/0604058
dc.identifierhttp://arxiv.org/abs/nlin/0604058
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/111752
dc.subjectAdaptation and Self-Organizing Systems
dc.titleCriticality of a dissipative self-organizing process in a dynamic population
dc.typetext

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