paper-with-me

홈 › Papers

A Reaction-Diffusion-Chemotaxis Model for Human Population Dynamics over Fractal Terrains

2023-10-11 · Benjamin M. Alessio, Ankur Gupta

Advection of entities induced by gradients in attractant concentration fields is observed via diffusiophoresis in colloids and via chemotaxis in microorganisms. Mathematically, both diffusiophoresis and chemotaxis follow similar mathematical descriptions and display a variety of interesting behaviors that are not observed through other transport mechanisms. However, the application of such a mathematical framework has largely been restricted to soft matter research. In this article, we argue that this framework is more general and can be expanded to study human population dynamics. We assert that human populations also migrate chemotactically, but by sensing concentrations gradients in attractants such as resource availability, social connections, and safety indices. Therefore, we extend the Fisher-KPP reaction-diffusion model, foundational to human population dynamics, to incorporate chemotactic advection. Furthermore, we introduce a fractal terrain to better mimic the human dispersal phenomena. Simulations demonstrate that, by including chemotaxis of a population toward attractants which are dispersed heterogenously over fractal terrains, population hotspots can appear from from initially uniformly dispersed states whereas Fisher-KPP without chemotaxis predicts a persistent tendency toward population uniformity. Varying the chemotactic migration yields fine control over inter- or intra-population segregation and thus the population growth rates may be substantially altered by considering the population-attractant coupling. This framework may be useful for characterizing historical population separations, and furthermore is particularly pertinent for predicting emergence of new population hotspots as climate change is expected to cause large-scale human displacement, which may be dictated by chemotactic movement of humans due to evolving concentration gradients in safety indices.

📄 PDF Abstract BibTeX arXiv:2310.07185

Code (0)

등록된 구현이 없습니다.

Similar Papers 제목 키워드 기반

A reaction-diffusion model for Mycobacterium tuberculosis infection

2024-10-14 · C. Accarino, R. Accarino, F. Capone, R. De Luca 외

This paper aims to investigate a reaction-diffusion model which describes in-host infection for Mycobacterium tuberculosis (Mtb) allowing random motion (i.e. linear diffusion) and chemotaxis (i.e. non-linear diffusion) o…

model

Chemotaxis-inspired PDE model for airborne infectious disease transmission: analysis and simulations

2024-04-26 · Pierluigi Colli, Gabriela Marinoschi, Elisabetta Rocca, Alex Viguerie

Partial differential equation (PDE) models for infectious disease have received renewed interest in recent years. Most models of this type extend classical compartmental formulations with additional terms accounting for …

DLCM: a versatile multi-level solver for heterogeneous multicellular systems

2025-04-29 · Erik Blom, Stefan Engblom

Computational modeling of multicellular systems may aid in untangling cellular dynamics and emergent properties of biological cell populations. A key challenge is to balance the level of model detail and the computationa…

Computational Efficiency

Mathematical Modeling of Chemotaxis Guided Amoeboid Cell Swimming

2021-04-07 · Qixuan Wang, Hao Wu

Cells and microorganisms adopt various strategies to migrate in response to different environmental stimuli. To date, many modeling research has focused on the crawling-based Dictyostelium discoideum (Dd) cells migration…

Spatiotemporal Behaviour of SIR Models with Cross-Diffusion and Vital Dynamics

2024-09-28 · Maryam Ahmadpoortorkamani, Alexei Cheviakov

Contemporary epidemiological models often involve spatial variation, providing an avenue to investigate the averaged dynamics of individual movements. In this work, we extend a recent model by Vaziry, Kolokolnikov, and K…