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Updated: Mar 30, 2026

Perspectives on Neuroscience
Published on: July 31, 2007
Causal information quantification of prominent dynamical features of biological neurons
Fernando Montani1, Roman Baravalle2, Lisandro Montangie2
1Instituto de Física de Líquidos y Sistemas Biológicos (IFLYSIB), CONICET, and Universidad Nacional de La Plata, Calle 59-789, La Plata 1900, Argentina fmontani@gmail.com.
Abstract:
Neurons tend to fire a spike when they are near a bifurcation from the resting state to spiking activity. It is a delicate balance between noise, dynamic currents and initial condition that determines the phase diagram of neural activity. Many possible ionic mechanisms can be accounted for as the source of spike generation. Moreover, the biophysics and the dynamics behind it can usually be described through a phase diagram that involves membrane voltage versus the activation variable of the ionic channel. In this paper, we present a novel methodology to characterize the dynamics of this system, which takes into account the fine temporal 'structures' of the complex neuronal signals. This allows us to accurately distinguish the most fundamental properties of neurophysiological neurons that were previously described by Izhikevich considering the phase-space trajectory, using a time causal space: statistical complexity versus Fisher information versus Shannon entropy.
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