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Updated: Jun 20, 2026

Microstate and Omega Complexity Analyses of the Resting-state Electroencephalography
Published on: June 15, 2018
Stability criteria for the contextual emergence of macrostates in neural networks
Peter beim Graben1, Adam Barrett, Harald Atmanspacher
1School of Psychology and Clinical Language Sciences, University of Reading, Reading, RG6 6AH, UK. p.r.beimgraben@reading.ac.uk
Abstract:
More than thirty years ago, Amari and colleagues proposed a statistical framework for identifying structurally stable macrostates of neural networks from observations of their microstates. We compare their stochastic stability criterion with a deterministic stability criterion based on the ergodic theory of dynamical systems, recently proposed for the scheme of contextual emergence and applied to particular inter-level relations in neuroscience. Stochastic and deterministic stability criteria for macrostates rely on macro-level contexts, which make them sensitive to differences between different macro-levels.
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