DocumentCode
807633
Title
A large-scale simulation of the piriform cortex by a cell automaton-based network model
Author
Claverol, Enric T. ; Brown, Andrew David ; Chad, John Edward
Author_Institution
Dept. of Biol., California Inst. of Technol., Pasadena, CA, USA
Volume
49
Issue
9
fYear
2002
Firstpage
921
Lastpage
935
Abstract
An event-driven framework is used to construct a physiologically motivated large-scale model of the piriform cortex containing in the order of 10 5 neuron-like computing units. This approach is based on a hierarchically defined highly abstract neuron model consisting of finite-state machines. It provides computational efficiency while incorporating components which have identifiable counterparts in the neurophysiological domain. The network model incorporates four neuron types, and glutamatergic excitatory and GABA A and GABA B inhibitory synapses. The spatio-temporal patterns of cortical activity and the temporal and spectral characteristics of simulated electroencephalograms (EEGs) are studied. In line with previous experimental and compartmental work, 1) shock stimuli elicit EEG profiles with either isolated peaks or damped oscillations, the response type being determined by the intensity of the stimuli, and 2) temporally unpatterned input generates EEG oscillations supported by model-wide waves of excitation.
Keywords
automata theory; brain models; chemioception; electroencephalography; neural nets; EEG oscillations generation; GABA/sub A/; GABA/sub B/ inhibitory synapses; cell automaton-based network model; compartmental work; damped oscillations; finite-state machines; glutamatergic excitatory; isolated peaks; model-wide excitation waves; neuron-like computing units; neurophysiological domain; piriform olfactory cortex simulation; shock stimuli; simulated electroencephalograms characteristics; stimuli intensity; Aggregates; Artificial neural networks; Automata; Biological system modeling; Brain modeling; Computational efficiency; Computational modeling; Electroencephalography; Large-scale systems; Neurons; Action Potentials; Cerebral Cortex; Computer Simulation; Electric Stimulation; Electroencephalography; Electromagnetic Fields; Electrophysiology; Humans; Interneurons; Models, Neurological; Nerve Net; Neural Networks (Computer); Neurons; Olfactory Pathways; Pyramidal Cells; Reproducibility of Results; Sensitivity and Specificity;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2002.801986
Filename
1028416
Link To Document