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SeminarPast EventNeuroscience

Spatially-embedded recurrent neural networks reveal widespread links between structural and functional neuroscience findings

Jascha Achterberg

University of Cambridge

Schedule
Wednesday, February 1, 2023

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Schedule

Wednesday, February 1, 2023

3:00 PM Europe/Berlin

Host: SNUFA

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Meeting Password

$Em4HF

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Event Information

Domain

Neuroscience

Original Event

View source

Host

SNUFA

Duration

30 minutes

Abstract

Brain networks exist within the confines of resource limitations. As a result, a brain network must overcome metabolic costs of growing and sustaining the network within its physical space, while simultaneously implementing its required information processing. To observe the effect of these processes, we introduce the spatially-embedded recurrent neural network (seRNN). seRNNs learn basic task-related inferences while existing within a 3D Euclidean space, where the communication of constituent neurons is constrained by a sparse connectome. We find that seRNNs, similar to primate cerebral cortices, naturally converge on solving inferences using modular small-world networks, in which functionally similar units spatially configure themselves to utilize an energetically-efficient mixed-selective code. As all these features emerge in unison, seRNNs reveal how many common structural and functional brain motifs are strongly intertwined and can be attributed to basic biological optimization processes. seRNNs can serve as model systems to bridge between structural and functional research communities to move neuroscientific understanding forward.

Topics

biological optimizationbrain networksconstraintsenergetic efficiencyfunctional motifsinferenceinformation processingmodular small-world networksnetwork communicationrecurrent neural networksseRNNsparse connectomesparsityspatial-embedding

About the Speaker

Jascha Achterberg

University of Cambridge

Contact & Resources

Personal Website

www.jachterberg.com

@achterbrain

Follow on Twitter/X

twitter.com/achterbrain

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