Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.

Using the most recent data on the connectivity of the C. elegans neural network, we find optimal two-dimensional positions of interneurons that minimize the total wiring length provided that the positions of motor and sensory neurons are fixed. The rationale behind fixing motor and sensory neurons i...

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Main Authors: Andrey Gushchin, Ao Tang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4682822?pdf=render
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spelling doaj-c292f5ea22da4100a159b079708ce9582020-11-24T21:33:07ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-011012e014502910.1371/journal.pone.0145029Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.Andrey GushchinAo TangUsing the most recent data on the connectivity of the C. elegans neural network, we find optimal two-dimensional positions of interneurons that minimize the total wiring length provided that the positions of motor and sensory neurons are fixed. The rationale behind fixing motor and sensory neurons is the following: while positions of motor and sensory neurons can be influenced by the locations of muscles and sensory organs they are attached to, the main function of interneurons is to connect other neurons, and their placement could try to minimize the wiring length. Solutions for l1, l2 and squared l2-norm were obtained. For the Euclidean norm l2, the relative and absolute difference between the real and optimal total wiring lengths is minimal among these functions of distance. Additional network constraints were discussed such as assignment of different weights to electrical or chemical connections, fixation of "tail" interneurons, minimal interneural distance limitation, and others. These constraints were compared by their influence on the optimal positions of interneurons.http://europepmc.org/articles/PMC4682822?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Andrey Gushchin
Ao Tang
spellingShingle Andrey Gushchin
Ao Tang
Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
PLoS ONE
author_facet Andrey Gushchin
Ao Tang
author_sort Andrey Gushchin
title Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
title_short Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
title_full Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
title_fullStr Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
title_full_unstemmed Total Wiring Length Minimization of C. elegans Neural Network: A Constrained Optimization Approach.
title_sort total wiring length minimization of c. elegans neural network: a constrained optimization approach.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Using the most recent data on the connectivity of the C. elegans neural network, we find optimal two-dimensional positions of interneurons that minimize the total wiring length provided that the positions of motor and sensory neurons are fixed. The rationale behind fixing motor and sensory neurons is the following: while positions of motor and sensory neurons can be influenced by the locations of muscles and sensory organs they are attached to, the main function of interneurons is to connect other neurons, and their placement could try to minimize the wiring length. Solutions for l1, l2 and squared l2-norm were obtained. For the Euclidean norm l2, the relative and absolute difference between the real and optimal total wiring lengths is minimal among these functions of distance. Additional network constraints were discussed such as assignment of different weights to electrical or chemical connections, fixation of "tail" interneurons, minimal interneural distance limitation, and others. These constraints were compared by their influence on the optimal positions of interneurons.
url http://europepmc.org/articles/PMC4682822?pdf=render
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AT aotang totalwiringlengthminimizationofcelegansneuralnetworkaconstrainedoptimizationapproach
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