The regulation of ant colony foraging activity without spatial information.

Many dynamical networks, such as the ones that produce the collective behavior of social insects, operate without any central control, instead arising from local interactions among individuals. A well-studied example is the formation of recruitment trails in ant colonies, but many ant species do not...

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Main Authors: Balaji Prabhakar, Katherine N Dektar, Deborah M Gordon
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS Computational Biology
Online Access:https://journals.plos.org/ploscompbiol/article/file?id=10.1371/journal.pcbi.1002670&type=printable
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author Balaji Prabhakar
Katherine N Dektar
Deborah M Gordon
author_facet Balaji Prabhakar
Katherine N Dektar
Deborah M Gordon
author_sort Balaji Prabhakar
collection DOAJ
description Many dynamical networks, such as the ones that produce the collective behavior of social insects, operate without any central control, instead arising from local interactions among individuals. A well-studied example is the formation of recruitment trails in ant colonies, but many ant species do not use pheromone trails. We present a model of the regulation of foraging by harvester ant (Pogonomyrmex barbatus) colonies. This species forages for scattered seeds that one ant can retrieve on its own, so there is no need for spatial information such as pheromone trails that lead ants to specific locations. Previous work shows that colony foraging activity, the rate at which ants go out to search individually for seeds, is regulated in response to current food availability throughout the colony's foraging area. Ants use the rate of brief antennal contacts inside the nest between foragers returning with food and outgoing foragers available to leave the nest on the next foraging trip. Here we present a feedback-based algorithm that captures the main features of data from field experiments in which the rate of returning foragers was manipulated. The algorithm draws on our finding that the distribution of intervals between successive ants returning to the nest is a Poisson process. We fitted the parameter that estimates the effect of each returning forager on the rate at which outgoing foragers leave the nest. We found that correlations between observed rates of returning foragers and simulated rates of outgoing foragers, using our model, were similar to those in the data. Our simple stochastic model shows how the regulation of ant colony foraging can operate without spatial information, describing a process at the level of individual ants that predicts the overall foraging activity of the colony.
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spelling doaj-art-d90b7eebe8b04706ab40c82ac8658ca02025-08-20T02:15:20ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582012-01-0188e100267010.1371/journal.pcbi.1002670The regulation of ant colony foraging activity without spatial information.Balaji PrabhakarKatherine N DektarDeborah M GordonMany dynamical networks, such as the ones that produce the collective behavior of social insects, operate without any central control, instead arising from local interactions among individuals. A well-studied example is the formation of recruitment trails in ant colonies, but many ant species do not use pheromone trails. We present a model of the regulation of foraging by harvester ant (Pogonomyrmex barbatus) colonies. This species forages for scattered seeds that one ant can retrieve on its own, so there is no need for spatial information such as pheromone trails that lead ants to specific locations. Previous work shows that colony foraging activity, the rate at which ants go out to search individually for seeds, is regulated in response to current food availability throughout the colony's foraging area. Ants use the rate of brief antennal contacts inside the nest between foragers returning with food and outgoing foragers available to leave the nest on the next foraging trip. Here we present a feedback-based algorithm that captures the main features of data from field experiments in which the rate of returning foragers was manipulated. The algorithm draws on our finding that the distribution of intervals between successive ants returning to the nest is a Poisson process. We fitted the parameter that estimates the effect of each returning forager on the rate at which outgoing foragers leave the nest. We found that correlations between observed rates of returning foragers and simulated rates of outgoing foragers, using our model, were similar to those in the data. Our simple stochastic model shows how the regulation of ant colony foraging can operate without spatial information, describing a process at the level of individual ants that predicts the overall foraging activity of the colony.https://journals.plos.org/ploscompbiol/article/file?id=10.1371/journal.pcbi.1002670&type=printable
spellingShingle Balaji Prabhakar
Katherine N Dektar
Deborah M Gordon
The regulation of ant colony foraging activity without spatial information.
PLoS Computational Biology
title The regulation of ant colony foraging activity without spatial information.
title_full The regulation of ant colony foraging activity without spatial information.
title_fullStr The regulation of ant colony foraging activity without spatial information.
title_full_unstemmed The regulation of ant colony foraging activity without spatial information.
title_short The regulation of ant colony foraging activity without spatial information.
title_sort regulation of ant colony foraging activity without spatial information
url https://journals.plos.org/ploscompbiol/article/file?id=10.1371/journal.pcbi.1002670&type=printable
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