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Dynamical maximum entropy approach to flocking

Academic Article
Publication Date:
2014
abstract:
We derive a new method to infer from data the out-of-equilibrium alignment dynamics of collectively moving animal groups, by considering the maximum entropy model distribution consistent with temporal and spatial correlations of flight direction. When bird neighborhoods evolve rapidly, this dynamical inference correctly learns the parameters of the model, while a static one relying only on the spatial correlations fails. When neighbors change slowly and the detailed balance is satisfied, we recover the static procedure. We demonstrate the validity of the method on simulated data. The approach is applicable to other systems of active matter.
Iris type:
Articolo su Rivista
List of contributors:
Cavagna, A; Giardina, I; Ginelli, F; Mora, T; Piovani, D; Tavarone, R; Walczak, Am
Authors of the University:
GINELLI FRANCESCO GIULIO
Handle:
https://irinsubria.uninsubria.it/handle/11383/2081562
Published in:
PHYSICAL REVIEW E, STATISTICAL, NONLINEAR, AND SOFT MATTER PHYSICS
Journal
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