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Journal Article

Recurrence-mediated suprathreshold stochastic resonance

Gregory Knoll; Benjamin Lindner
Journal of Computational Neuroscience · Vol. 49, Issue 4 · pp. 407-418 · 2021

Abstract

It has previously been shown that the encoding of time-dependent signals by feedforward networks (FFNs) of processing units exhibits suprathreshold stochastic resonance (SSR), which is an optimal signal transmission for a finite level of independent, individual stochasticity in the single units. In this study, a recurrent spiking network is simulated to demonstrate that SSR can be also caused by network noise in place of intrinsic noise. The level of autonomously generated fluctuations in the network can be controlled by the strength of synapses, and hence the coding fraction (our measure of information transmission) exhibits a maximum as a function of the synaptic coupling strength. The presence of a coding peak at an optimal coupling strength is robust over a wide range of individual, network, and signal parameters, although the optimal strength and peak magnitude depend on the parameter being varied. We also perform control experiments with an FFN illustrating that the optimized coding fraction is due to the change in noise level and not from other effects entailed when changing the coupling strength. These results also indicate that the non-white (temporally correlated) network noise in general provides an extra boost to encoding performance compared to the FFN driven by intrinsic white noise fluctuations.

Bibliographic Information

JournalJournal of Computational Neuroscience
PublisherSpringer
Publication Date2021-11-01
Publication Year2021
Volume49
Issue4
Pages407-418
Document TypeJournal Article
Print ISSN0929-5313
eISSN1573-6873
DOI10.1007/s10827-021-00788-3

Access Information

NARA Access Coverage1994-01-01~Current
Journal Homepagehttps://www.springer.com/journal/10827
Publisher PageOpen Publisher Page
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