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The Influence of Synaptic Weight Distribution on Neuronal Population Dynamics

Overview of attention for article published in PLoS Computational Biology, October 2013
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Title
The Influence of Synaptic Weight Distribution on Neuronal Population Dynamics
Published in
PLoS Computational Biology, October 2013
DOI 10.1371/journal.pcbi.1003248
Pubmed ID
Authors

Ramakrishnan Iyer, Vilas Menon, Michael Buice, Christof Koch, Stefan Mihalas

Abstract

The manner in which different distributions of synaptic weights onto cortical neurons shape their spiking activity remains open. To characterize a homogeneous neuronal population, we use the master equation for generalized leaky integrate-and-fire neurons with shot-noise synapses. We develop fast semi-analytic numerical methods to solve this equation for either current or conductance synapses, with and without synaptic depression. We show that its solutions match simulations of equivalent neuronal networks better than those of the Fokker-Planck equation and we compute bounds on the network response to non-instantaneous synapses. We apply these methods to study different synaptic weight distributions in feed-forward networks. We characterize the synaptic amplitude distributions using a set of measures, called tail weight numbers, designed to quantify the preponderance of very strong synapses. Even if synaptic amplitude distributions are equated for both the total current and average synaptic weight, distributions with sparse but strong synapses produce higher responses for small inputs, leading to a larger operating range. Furthermore, despite their small number, such synapses enable the network to respond faster and with more stability in the face of external fluctuations.

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Mendeley readers

The data shown below were compiled from readership statistics for 162 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United Kingdom 3 2%
United States 3 2%
Switzerland 2 1%
Chile 1 <1%
Israel 1 <1%
Portugal 1 <1%
Greece 1 <1%
France 1 <1%
Unknown 149 92%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 40 25%
Researcher 40 25%
Student > Bachelor 16 10%
Student > Master 11 7%
Professor > Associate Professor 10 6%
Other 24 15%
Unknown 21 13%
Readers by discipline Count As %
Neuroscience 37 23%
Agricultural and Biological Sciences 33 20%
Physics and Astronomy 20 12%
Engineering 16 10%
Computer Science 12 7%
Other 18 11%
Unknown 26 16%