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[HTML][HTML] Networks beyond pairwise interactions: Structure and dynamics
The complexity of many biological, social and technological systems stems from the richness
of the interactions among their units. Over the past decades, a variety of complex systems …
of the interactions among their units. Over the past decades, a variety of complex systems …
Computational neuroscience: Mathematical and statistical perspectives
Mathematical and statistical models have played important roles in neuroscience, especially
by describing the electrical activity of neurons recorded individually, or collectively across …
by describing the electrical activity of neurons recorded individually, or collectively across …
The quality and complexity of pairwise maximum entropy models for large cortical populations
VK Olsen, JR Whitlock, Y Roudi - PLOS Computational Biology, 2024 - journals.plos.org
We investigate the ability of the pairwise maximum entropy (PME) model to describe the
spiking activity of large populations of neurons recorded from the visual, auditory, motor, and …
spiking activity of large populations of neurons recorded from the visual, auditory, motor, and …
Action potential-coupled Rho GTPase signaling drives presynaptic plasticity
In contrast to their postsynaptic counterparts, the contributions of activity-dependent
cytoskeletal signaling to presynaptic plasticity remain controversial and poorly understood …
cytoskeletal signaling to presynaptic plasticity remain controversial and poorly understood …
Maximum entropy models as a tool for building precise neural controls
Neural responses are highly structured, with population activity restricted to a small subset of
the astronomical range of possible activity patterns. Characterizing these statistical …
the astronomical range of possible activity patterns. Characterizing these statistical …
Probabilistic models for neural populations that naturally capture global coupling and criticality
Advances in multi-unit recordings pave the way for statistical modeling of activity patterns in
large neural populations. Recent studies have shown that the summed activity of all neurons …
large neural populations. Recent studies have shown that the summed activity of all neurons …
Functional reducibility of higher-order networks
Empirical complex systems are widely assumed to be characterized not only by pairwise
interactions, but also by higher-order (group) interactions that affect collective phenomena …
interactions, but also by higher-order (group) interactions that affect collective phenomena …
Uncovering hidden network architecture from spiking activities using an exact statistical input-output relation of neurons
Identifying network architecture from observed neural activities is crucial in neuroscience
studies. A key requirement is knowledge of the statistical input-output relation of single …
studies. A key requirement is knowledge of the statistical input-output relation of single …
Approximate inference for time-varying interactions and macroscopic dynamics of neural populations
C Donner, K Obermayer… - PLoS computational …, 2017 - journals.plos.org
The models in statistical physics such as an Ising model offer a convenient way to
characterize stationary activity of neural populations. Such stationary activity of neurons may …
characterize stationary activity of neural populations. Such stationary activity of neurons may …
Clustering of neural activity: A design principle for population codes
We propose that correlations among neurons are generically strong enough to organize
neural activity patterns into a discrete set of clusters, which can each be viewed as a …
neural activity patterns into a discrete set of clusters, which can each be viewed as a …