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Directed Spectral Measures Improve Latent Network Models Of Neural Populations.

Publication ,  Journal Article
Gallagher, NM; Dzirasa, K; Carlson, D
Published in: Adv Neural Inf Process Syst
December 2021

Systems neuroscience aims to understand how networks of neurons distributed throughout the brain mediate computational tasks. One popular approach to identify those networks is to first calculate measures of neural activity (e.g. power spectra) from multiple brain regions, and then apply a linear factor model to those measures. Critically, despite the established role of directed communication between brain regions in neural computation, measures of directed communication have been rarely utilized in network estimation because they are incompatible with the implicit assumptions of the linear factor model approach. Here, we develop a novel spectral measure of directed communication called the Directed Spectrum (DS). We prove that it is compatible with the implicit assumptions of linear factor models, and we provide a method to estimate the DS. We demonstrate that latent linear factor models of DS measures better capture underlying brain networks in both simulated and real neural recording data compared to available alternatives. Thus, linear factor models of the Directed Spectrum offer neuroscientists a simple and effective way to explicitly model directed communication in networks of neural populations.

Duke Scholars

Published In

Adv Neural Inf Process Syst

ISSN

1049-5258

Publication Date

December 2021

Volume

34

Start / End Page

7421 / 7435

Location

United States

Related Subject Headings

  • 4611 Machine learning
  • 1702 Cognitive Sciences
  • 1701 Psychology
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Gallagher, N. M., Dzirasa, K., & Carlson, D. (2021). Directed Spectral Measures Improve Latent Network Models Of Neural Populations. Adv Neural Inf Process Syst, 34, 7421–7435.
Gallagher, Neil M., Kafui Dzirasa, and David Carlson. “Directed Spectral Measures Improve Latent Network Models Of Neural Populations.Adv Neural Inf Process Syst 34 (December 2021): 7421–35.
Gallagher NM, Dzirasa K, Carlson D. Directed Spectral Measures Improve Latent Network Models Of Neural Populations. Adv Neural Inf Process Syst. 2021 Dec;34:7421–35.
Gallagher, Neil M., et al. “Directed Spectral Measures Improve Latent Network Models Of Neural Populations.Adv Neural Inf Process Syst, vol. 34, Dec. 2021, pp. 7421–35.
Gallagher NM, Dzirasa K, Carlson D. Directed Spectral Measures Improve Latent Network Models Of Neural Populations. Adv Neural Inf Process Syst. 2021 Dec;34:7421–7435.

Published In

Adv Neural Inf Process Syst

ISSN

1049-5258

Publication Date

December 2021

Volume

34

Start / End Page

7421 / 7435

Location

United States

Related Subject Headings

  • 4611 Machine learning
  • 1702 Cognitive Sciences
  • 1701 Psychology