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Quorum percolation in living neural networks

Author(s)
Cohen, O.Keselman, A.Moses, E.Martinez, M. RodriguezSoriano, J.Tlusty, T.
Issued Date
2010-01
DOI
10.1209/0295-5075/89/18008
URI
https://scholarworks.unist.ac.kr/handle/201301/31187
Fulltext
https://iopscience.iop.org/article/10.1209/0295-5075/89/18008
Citation
EPL, v.89, no.1, pp.18008
Abstract
Cooperative effects in neural networks appear because a neuron. res only if a minimal number m>1 of its inputs are excited. The multiple inputs requirement leads to a percolation model termed quorum percolation. The connectivity undergoes a phase transition as m grows, from a network-spanning cluster at low m to a set of disconnected clusters above a critical m. Both numerical simulations and the model reproduce the experimental results well. This allows a robust quanti. cation of biologically relevant quantities such as the average connectivity (k) over bar and the distribution of connections p(k) from different neural densities.
Publisher
EDP Sciences
ISSN
1286-4854

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