Traveling pulse emerges from coupled intermittent walks: A case study in sheep.
Monitoring small groups of sheep in spontaneous evolution in the field, we decipher behavioural rules that sheep follow at the individual scale in order to sustain collective motion. Individuals alternate grazing mode at null speed and moving mode at walking speed, so cohesive motion stems from sync...
Main Authors: | , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2018-01-01
|
Series: | PLoS ONE |
Online Access: | https://doi.org/10.1371/journal.pone.0206817 |
id |
doaj-44c4c8048abf4497977fc3327175c22b |
---|---|
record_format |
Article |
spelling |
doaj-44c4c8048abf4497977fc3327175c22b2021-03-03T21:04:19ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-011312e020681710.1371/journal.pone.0206817Traveling pulse emerges from coupled intermittent walks: A case study in sheep.Manon AzaïsStéphane BlancoRichard BonRichard FournierMarie-Hélène PillotJacques GautraisMonitoring small groups of sheep in spontaneous evolution in the field, we decipher behavioural rules that sheep follow at the individual scale in order to sustain collective motion. Individuals alternate grazing mode at null speed and moving mode at walking speed, so cohesive motion stems from synchronising when they decide to switch between the two modes. We propose a model for the individual decision making process, based on switching rates between stopped / walking states that depend on behind / ahead locations and states of the others. We parametrize this model from data. Next, we translate this (microscopic) individual-based model into its density-flow (macroscopic) equations counterpart. Numerical solving these equations display a traveling pulse propagating at constant speed even though each individual is at any moment either stopped or walking. Considering the minimal model embedded in these equations, we derive analytically the steady shape of the pulse (sech square). The parameters of the pulse (shape and speed) are expressed as functions of individual parameters. This pulse emerges from the non linear coupling of start/stop individual decisions which compensate exactly for diffusion and promotes a steady ratio of walking / stopped individuals, which in turn determines the traveling speed of the pulse. The system seems to converge to this pulse from any initial condition, and to recover the pulse after perturbation. This gives a high robustness to this coordination mechanism.https://doi.org/10.1371/journal.pone.0206817 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Manon Azaïs Stéphane Blanco Richard Bon Richard Fournier Marie-Hélène Pillot Jacques Gautrais |
spellingShingle |
Manon Azaïs Stéphane Blanco Richard Bon Richard Fournier Marie-Hélène Pillot Jacques Gautrais Traveling pulse emerges from coupled intermittent walks: A case study in sheep. PLoS ONE |
author_facet |
Manon Azaïs Stéphane Blanco Richard Bon Richard Fournier Marie-Hélène Pillot Jacques Gautrais |
author_sort |
Manon Azaïs |
title |
Traveling pulse emerges from coupled intermittent walks: A case study in sheep. |
title_short |
Traveling pulse emerges from coupled intermittent walks: A case study in sheep. |
title_full |
Traveling pulse emerges from coupled intermittent walks: A case study in sheep. |
title_fullStr |
Traveling pulse emerges from coupled intermittent walks: A case study in sheep. |
title_full_unstemmed |
Traveling pulse emerges from coupled intermittent walks: A case study in sheep. |
title_sort |
traveling pulse emerges from coupled intermittent walks: a case study in sheep. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2018-01-01 |
description |
Monitoring small groups of sheep in spontaneous evolution in the field, we decipher behavioural rules that sheep follow at the individual scale in order to sustain collective motion. Individuals alternate grazing mode at null speed and moving mode at walking speed, so cohesive motion stems from synchronising when they decide to switch between the two modes. We propose a model for the individual decision making process, based on switching rates between stopped / walking states that depend on behind / ahead locations and states of the others. We parametrize this model from data. Next, we translate this (microscopic) individual-based model into its density-flow (macroscopic) equations counterpart. Numerical solving these equations display a traveling pulse propagating at constant speed even though each individual is at any moment either stopped or walking. Considering the minimal model embedded in these equations, we derive analytically the steady shape of the pulse (sech square). The parameters of the pulse (shape and speed) are expressed as functions of individual parameters. This pulse emerges from the non linear coupling of start/stop individual decisions which compensate exactly for diffusion and promotes a steady ratio of walking / stopped individuals, which in turn determines the traveling speed of the pulse. The system seems to converge to this pulse from any initial condition, and to recover the pulse after perturbation. This gives a high robustness to this coordination mechanism. |
url |
https://doi.org/10.1371/journal.pone.0206817 |
work_keys_str_mv |
AT manonazais travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep AT stephaneblanco travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep AT richardbon travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep AT richardfournier travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep AT mariehelenepillot travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep AT jacquesgautrais travelingpulseemergesfromcoupledintermittentwalksacasestudyinsheep |
_version_ |
1714818893348864000 |