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The corresponding page is
https://modeldb.science/154770
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Input strength and time-varying oscillation peak frequency (Cohen MX 2014)
 
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Model Information
Model File
Citations
Accession:
154770
The purpose of this paper is to argue that a single neural functional principle—temporal fluctuations in oscillation peak frequency (“frequency sliding”)—can be used as a common analysis approach to bridge multiple scales within neuroscience. The code provided here recreates the network models used to demonstrate changes in peak oscillation frequency as a function of static and time-varying input strength, and also shows how correlated frequency sliding can be used to identify functional connectivity between two networks.
Reference:
1 .
Cohen MX (2014) Fluctuations in oscillation frequency control spike timing and coordinate neural networks.
J Neurosci
34
:8988-98
[
PubMed
]
Model Information
(Click on a link to find other models with that property)
Model Type:
Connectionist Network;
Brain Region(s)/Organism:
Cell Type(s):
Abstract Izhikevich neuron;
Abstract integrate-and-fire adaptive exponential (AdEx) neuron;
Channel(s):
Gap Junctions:
Receptor(s):
Gene(s):
Transmitter(s):
Simulation Environment:
MATLAB;
Brian;
Python;
Model Concept(s):
Implementer(s):
Cohen, Michael X [mikexcohen at gmail.com];
Download the displayed file
/
Cohen_freqslide
readme.html
adex_network2column.py
adex_network2column_sineinput.py
adex_static_basic_analysis.m
eegfilt.m
eqs4bursting.py
eqs4fastspiking.py
eqs4reguspiking.py
izh_freqslide_static.m
izh_freqslide_timevaryinginput.m
izh_freqslide_timevaryinginput3networks.m
screenshot2c.png
screenshot2e.png
screenshotAPraster.png
screenshotLFPpower.png
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