The role of asymmetric time delay and its structure in 1D swarmalators

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Hauptverfasser: Djeudjo, Rommel Tchinda, Sar, Gourab Kumar, Carletti, Timoteo
Format: Preprint
Veröffentlicht: 2026
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author Djeudjo, Rommel Tchinda
Sar, Gourab Kumar
Carletti, Timoteo
author_facet Djeudjo, Rommel Tchinda
Sar, Gourab Kumar
Carletti, Timoteo
contents Swarmalators are a class of coupled oscillators that simultaneously synchronize in both space and phase, providing a minimal model for systems ranging from biological microswimmers to robotic swarms. Time delay is ubiquitous in such systems, arising from finite signal propagation speeds and sensory processing lags, yet its structural form, whether symmetric or asymmetric, has received little attention. Here, we study a one-dimensional swarmalator model with asymmetric time delay, in which the delay enters only the self-interaction terms of the spatial and phase dynamics, breaking the symmetry assumed in prior work. We identify various collective states such as async, static phase wave, static π, and active π, and derive analytical stability boundaries for each as a function of the coupling parameters and delay. Our analysis reveals that the asymmetric delay structure fundamentally reshapes the collective phase diagram: in particular, for the asymmetric delay models, increasing the delay systematically expands the active π state at the expense of other ordered states, in contrast to the symmetric delay model, which more strongly promotes the presence of unsteady states that are generally not well ordered. By providing closed-form stability conditions validated against numerical simulations, our work establishes that the internal structure of the delay, not merely its magnitude, is a decisive factor in determining the emergent collective behavior of swarmalator populations.
format Preprint
id arxiv_https___arxiv_org_abs_2605_11713
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The role of asymmetric time delay and its structure in 1D swarmalators
Djeudjo, Rommel Tchinda
Sar, Gourab Kumar
Carletti, Timoteo
Adaptation and Self-Organizing Systems
Statistical Mechanics
Mathematical Physics
Swarmalators are a class of coupled oscillators that simultaneously synchronize in both space and phase, providing a minimal model for systems ranging from biological microswimmers to robotic swarms. Time delay is ubiquitous in such systems, arising from finite signal propagation speeds and sensory processing lags, yet its structural form, whether symmetric or asymmetric, has received little attention. Here, we study a one-dimensional swarmalator model with asymmetric time delay, in which the delay enters only the self-interaction terms of the spatial and phase dynamics, breaking the symmetry assumed in prior work. We identify various collective states such as async, static phase wave, static π, and active π, and derive analytical stability boundaries for each as a function of the coupling parameters and delay. Our analysis reveals that the asymmetric delay structure fundamentally reshapes the collective phase diagram: in particular, for the asymmetric delay models, increasing the delay systematically expands the active π state at the expense of other ordered states, in contrast to the symmetric delay model, which more strongly promotes the presence of unsteady states that are generally not well ordered. By providing closed-form stability conditions validated against numerical simulations, our work establishes that the internal structure of the delay, not merely its magnitude, is a decisive factor in determining the emergent collective behavior of swarmalator populations.
title The role of asymmetric time delay and its structure in 1D swarmalators
topic Adaptation and Self-Organizing Systems
Statistical Mechanics
Mathematical Physics
url https://arxiv.org/abs/2605.11713