12.07.2015 Views

Dynamical Systems in Neuroscience:

Dynamical Systems in Neuroscience:

Dynamical Systems in Neuroscience:

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290 Simple Models(A) tonic spik<strong>in</strong>g(B) phasic spik<strong>in</strong>g (C) tonic burst<strong>in</strong>g (D) phasic burst<strong>in</strong>g<strong>in</strong>put dc-current20 ms(E) mixed mode (F) spike frequency (G) Class 1 excitable (H) Class 2 excitableadaptation(I) spike latency (J) subthreshold (K) resonator (L) <strong>in</strong>tegratoroscillations(M) rebound spike (N) rebound burst (O) threshold (P) bistabilityvariability(Q) depolariz<strong>in</strong>g (R) accommodation (S) <strong>in</strong>hibition-<strong>in</strong>duced (T) <strong>in</strong>hibition-<strong>in</strong>ducedafter-potential spik<strong>in</strong>g burst<strong>in</strong>gDAPFigure 8.8: Summary of neuro-computational properties exhibited by the simple model;see Ex. 11. The figure is reproduced with permission from www.izhikevich.com.(electronic version of the figure and reproduction permissions are freely available atwww.izhikevich.com)

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