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2007

Spike-timing-dependent plasticity for neurons with recurrent connections

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Spike-timing-dependent plasticity for neurons with recurrent connections
The dynamics of the learning equation, which describes the evolution of the synaptic weights, is derived in the situation where the network contains recurrent connections. The derivation is carried out for the Poisson neuron model. The spiking-rates of the recurrently connected neurons and their cross-correlations are determined selfconsistently as a function of the external synaptic inputs. The solution of the learning equation is illustrated by the analysis of the particular case in which there is no external synaptic input. The general learning equation and the fixed-point structure of its solutions is discussed.
Anthony N. Burkitt, Matthieu Gilson, J. Leo van He
Added 08 Dec 2010
Updated 08 Dec 2010
Type Journal
Year 2007
Where BC
Authors Anthony N. Burkitt, Matthieu Gilson, J. Leo van Hemmen
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