Signatures of criticality arise in simple neural population models with correlations
arXiv:1603.00097 · doi:10.1371/journal.pcbi.1005718
Abstract
Large-scale recordings of neuronal activity make it possible to gain insights into the collective activity of neural ensembles. It has been hypothesized that neural populations might be optimized to operate at a 'thermodynamic critical point', and that this property has implications for information processing. Support for this notion has come from a series of studies which identified statistical signatures of criticality in the ensemble activity of retinal ganglion cells. What are the underlying mechanisms that give rise to these observations? Here we show that signatures of criticality arise even in simple feed-forward models of retinal population activity. In particular, they occur whenever neural population data exhibits correlations, and is randomly sub-sampled during data analysis. These results show that signatures of criticality are not necessarily indicative of an optimized coding strategy, and challenge the utility of analysis approaches based on equilibrium thermodynamics for understanding partially observed biological systems.
36 pages, LaTeX; added journal reference on page 1, added link to code repository
References in corpus (10)
- Dynamical synapses causing self-organized criticality in neural networks
- Power-law statistics and universal scaling in the absence of criticality
- Subsampling scaling: a theory about inference from partly observed systems
- Ising models for networks of real neurons
- Dynamical criticality in the collective activity of a population of retinal neurons
- Faster solutions of the inverse pairwise Ising problem
- Deep Information Propagation
- The Structured `Low Temperature' Phase of the Retinal Population Code
- Zipf's law arises naturally in structured, high-dimensional data
- Universal Organization of Resting Brain Activity at the Thermodynamic Critical Point
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