Estimation of spatial and time scales of collective behaviors of active matters through learning hydrodynamic equations from particle dynamics

Fuente: arXiv
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Main Authors: Roy, Bappaditya, Yoshinaga, Natsuhiko
Format: Preprint
Published: 2024
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author Roy, Bappaditya
Yoshinaga, Natsuhiko
author_facet Roy, Bappaditya
Yoshinaga, Natsuhiko
contents We present a data-driven framework for learning hydrodynamic equations from particle-based simulations of active matter. Our method leverages coarse-graining in both space and time to bridge microscopic particle dynamics with macroscopic continuum models. By employing spectral representations and sparse regression, we efficiently estimate partial differential equations (PDEs) that capture collective behaviors such as flocking and phase separation. This approach, validated using hydrodynamic descriptions of the Vicsek model and Active Brownian particles, demonstrates the potential of data-driven strategies to uncover the universal features of collective dynamics in active matter systems.
format Preprint
id arxiv_https___arxiv_org_abs_2411_03783
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Estimation of spatial and time scales of collective behaviors of active matters through learning hydrodynamic equations from particle dynamics
Roy, Bappaditya
Yoshinaga, Natsuhiko
Soft Condensed Matter
We present a data-driven framework for learning hydrodynamic equations from particle-based simulations of active matter. Our method leverages coarse-graining in both space and time to bridge microscopic particle dynamics with macroscopic continuum models. By employing spectral representations and sparse regression, we efficiently estimate partial differential equations (PDEs) that capture collective behaviors such as flocking and phase separation. This approach, validated using hydrodynamic descriptions of the Vicsek model and Active Brownian particles, demonstrates the potential of data-driven strategies to uncover the universal features of collective dynamics in active matter systems.
title Estimation of spatial and time scales of collective behaviors of active matters through learning hydrodynamic equations from particle dynamics
topic Soft Condensed Matter
url https://arxiv.org/abs/2411.03783