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Coarse--graining and hints of scaling in a population of 1000+ neurons

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arxiv 1812.11904 v1 pith:JX6IPCED submitted 2018-12-31 physics.bio-ph q-bio.NC

classification physics.bio-phq-bio.NC
keywords coarse-grainingfixedneuronssystemsactivityapplyapproachbehavior
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In many systems we can describe emergent macroscopic behaviors, quantitatively, using models that are much simpler than the underlying microscopic interactions; we understand the success of this simplification through the renormalization group. Could similar simplifications succeed in complex biological systems? We develop explicit coarse-graining procedures that we apply to experimental data on the electrical activity in large populations of neurons in the mouse hippocampus. Probability distributions of coarse-grained variables seem to approach a fixed non-Gaussian form, and we see evidence of power-law dependencies in both static and dynamic quantities as we vary the coarse-graining scale over two decades. Taken together, these results suggest that the collective behavior of the network is described by a non-trivial fixed point.

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  1. Place-cell heterogeneity underlies power-laws in hippocampal activity

    q-bio.NC 2025-07 conditional novelty 7.0 of 10

    Apparent power-law scaling under the PRG arises from heterogeneity of independent place fields, not from critical dynamics.

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