sözaltı news Science
Science
EN AZ
Scientists simulating ant swarms find a 'first mover' can set the colony in motion

Scientists simulating ant swarms find a 'first mover' can set the colony in motion

phys.org 15.08.2026 13:00 11 baxış
In ant colonies, a single ant can be the catalyst for a wave of mob activity, launching brief bursts of coordinated movement involving hundreds or even thousands of swarming workers, according to new simulations from New

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: In ant colonies, a single ant can be the catalyst for a wave of mob activity, launching brief bursts of coordinated movement involving hundreds or even thousands of swarming workers, according to new simulations from New Jersey Institute of Technology. About three decades ago, biologists discovered that acorn ants of the species Leptothorax acervorum, Temnothorax allardycei, T. rugatulus and T. rudis would periodically move together as one.

Masses of insects in the colony suddenly surged into action and then subsided, seemingly at random intervals. Collective spikes of activity aren't exclusive to ants or other animals; schooling fish, fireflies' signals, chemical reactions and firing neurons do this, too. But not all complex systems, or even all types of ants, produce short bursts of synchronized motion.

To better understand what launches and shapes patterns of collective movement and rest, researchers built a mathematical model inspired by waves of ant activity. Their findings, published Aug. 5 in the journal PRX Life, show how just one ant in a colony—a "first mover"—activates a group. Moving from ant to ant, motion then ripples through the colony, activating a significant portion before the wave eventually runs its course.

"In many collective systems, such cascades typically appear only if enough individuals are already active themselves—a quorum of sorts," said study co-author Simon Garnier, an NJIT professor of biological sciences. "The most surprising result is that a single ant is able to trigger an entire cascade of activity." Garnier and two co-authors at New York University's Tandon School of Engineering—doctoral student Michael Napoli and Maurizio Porfiri, a professor and director of the Center for Urban Science + Progress—created a model that represented each ant as it moved independently through a virtual nest. Every ant could switch between three states: active, inactive or temporarily unresponsive.

"These switches could occur spontaneously or be triggered by encounters with active nestmates," Garnier said. The researchers then varied movements and interactions between ants to see when individual activity would not affect other ants and when it would launch coordinated movement within the colony. Using data from prior research on actual ant colonies, the scientists weighed variables such as the density of ants, ant movement speed and sensing distance between nestmates.

According to the simulation, when ant density, speed and distance were just right, one ant's movement was all that was needed to nudge a large portion of the group into motion. Synchronized activity bursts among ants reflect a delicate equilibrium, balancing the transmission of a single ant's actions with the colony's ability to "deactivate" the cascade, the researchers found. Allowing that deactivation creates a rest period before the next wave of movement, which is a key part of these activity patterns.

Extract — continue reading at the source.

Read full story