Nonlinear Sciences – Adaptation and Self-Organizing Systems
Scientific paper
2000-10-03
Eur. Phys. J. B 22, 223 (2001)
Nonlinear Sciences
Adaptation and Self-Organizing Systems
Scientific paper
10.1007/s100510170130
We study the dynamics of an ensemble of globally coupled chaotic logistic maps under the action of a learning algorithm aimed at driving the system from incoherent collective evolution to a state of spontaneous full synchronization. Numerical calculations reveal a sharp transition between regimes of unsuccessful and successful learning as the algorithm stiffness grows. In the regime of successful learning, an optimal value of the stiffness is found for which the learning time is minimal.
Abramson Guillermo
Moyano Luis G.
Zanette Damian H.
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