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Adaptation Reduces Variability of the Neuronal Population Code (1007.3490v2)
Published 20 Jul 2010 in physics.bio-ph, math.PR, q-bio.NC, and stat.AP
Abstract: Sequences of events in noise-driven excitable systems with slow variables often show serial correlations among their intervals of events. Here, we employ a master equation for general non-renewal processes to calculate the interval and count statistics of superimposed processes governed by a slow adaptation variable. For an ensemble of spike-frequency adapting neurons this results in the regularization of the population activity and an enhanced post-synaptic signal decoding. We confirm our theoretical results in a population of cortical neurons.