At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-pattern codes that utilize the relative timing between consecutive spikes. There has been little experimental support for the hypothesis that such temporal patterns contribute substantially to information transmission. By using grasshopper auditory receptors as a model system, we show that correlations between spikes can be used to represent behaviorally relevant stimuli. The correlations reflect the inner structure of the spike train: a succession of burst-like patterns. We demonstrate that bursts with different spike counts encode different stimulus features, such that about 20% of the transmitted information corresponds to discriminating b...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Acoustic communication often involves complex sound motifs in which the relative durations of indivi...
Neurons compute and communicate by transforming synaptic input patterns into output spike trains. Th...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
Copyright: © 2009 Eyherabide, Rokem, Herz and Samengo. This is an open-access article subject to an ...
Copyright: © 2009 Eyherabide, Rokem, Herz and Samengo. This is an open-access article subject to an ...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Acoustic communication often involves complex sound motifs in which the relative durations of indivi...
Neurons compute and communicate by transforming synaptic input patterns into output spike trains. Th...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
At the single-neuron level, precisely timed spikes can either constitute firing-rate codes or spike-...
Copyright: © 2009 Eyherabide, Rokem, Herz and Samengo. This is an open-access article subject to an ...
Copyright: © 2009 Eyherabide, Rokem, Herz and Samengo. This is an open-access article subject to an ...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Various classes of neurons alternate between high-frequency discharges and silent intervals. This ph...
Acoustic communication often involves complex sound motifs in which the relative durations of indivi...
Neurons compute and communicate by transforming synaptic input patterns into output spike trains. Th...