Run-and-Tumble Particles Learning Chemotaxis

Fuente: arXiv
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Main Authors: Tovazzi, Nicholas, Muñoz-Gil, Gorka, Caraglio, Michele
Format: Preprint
Published: 2025
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author Tovazzi, Nicholas
Muñoz-Gil, Gorka
Caraglio, Michele
author_facet Tovazzi, Nicholas
Muñoz-Gil, Gorka
Caraglio, Michele
contents Through evolution, bacteria have developed the ability to perform chemotactic motion in order to find nourishment. By adopting a machine learning approach, we aim to understand how this behavior arises. We consider run-and-tumble agents able to tune the instantaneous probability of switching between the run and the tumble phase. When such agents are navigating in an environment characterized by a concentration field pointing towards a circular target, we investigate how a chemotactic strategy may be learned starting from unbiased run-and-tumble dynamics. We compare the learning performances of agents that sense only the instantaneous concentration with those of agents having a short-term memory that allows them to perform temporal comparisons. While both types of learning agents develop successful target-search policies, we demonstrate that those achieved by agents endowed with temporal comparison abilities are significantly more efficient, particularly when the initial distance from the target is large. Finally, we also show that when an additional length scale is imposed, for example by fixing the initial distance to the target, the learning agents can leverage this information to further improve their efficiency in locating the target.
format Preprint
id arxiv_https___arxiv_org_abs_2507_23519
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Run-and-Tumble Particles Learning Chemotaxis
Tovazzi, Nicholas
Muñoz-Gil, Gorka
Caraglio, Michele
Soft Condensed Matter
Statistical Mechanics
Through evolution, bacteria have developed the ability to perform chemotactic motion in order to find nourishment. By adopting a machine learning approach, we aim to understand how this behavior arises. We consider run-and-tumble agents able to tune the instantaneous probability of switching between the run and the tumble phase. When such agents are navigating in an environment characterized by a concentration field pointing towards a circular target, we investigate how a chemotactic strategy may be learned starting from unbiased run-and-tumble dynamics. We compare the learning performances of agents that sense only the instantaneous concentration with those of agents having a short-term memory that allows them to perform temporal comparisons. While both types of learning agents develop successful target-search policies, we demonstrate that those achieved by agents endowed with temporal comparison abilities are significantly more efficient, particularly when the initial distance from the target is large. Finally, we also show that when an additional length scale is imposed, for example by fixing the initial distance to the target, the learning agents can leverage this information to further improve their efficiency in locating the target.
title Run-and-Tumble Particles Learning Chemotaxis
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2507.23519