揭示影响收割蚁群体觅食动态的力量:招募效率和环境变异

IF 1.9 4区 数学 Q2 BIOLOGY Mathematical Biosciences Pub Date : 2024-03-22 DOI:10.1016/j.mbs.2024.109182
Chenbo Liu, Tao Feng
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引用次数: 0

摘要

蚂蚁群落的集体觅食行为是行为生态学的一个核心焦点。本文通过引入非线性招募率和考虑环境变异性,改进了收割蚁群觅食动态的经典模型。首先,我们分析了确定性模型中稳态的存在性和稳定性。结果表明,平均招募时间的增加会降低觅食阈值,导致向前和向后分叉。此外,平均招募时间和招募者的干扰强度都会影响每个子群中的工蚁数量。随后,我们对随机环境中集体觅食的长期和瞬时动态进行了分析,为蜂群维持觅食活动提供了充分条件。研究结果强调了环境随机性对觅食动态的场景依赖性影响。当蚂蚁群落确定性地停止觅食时,环境随机性可能会意外地延长觅食状态。相反,当蚁群确定性地持续觅食时,环境随机性可能会破坏这种持续性。此外,环境随机性对觅食状态的影响随初始工蚁大小的变化而变化。在非觅食状态和觅食状态之间的吸引盆地边界附近的工蜂大小对环境随机性表现出更大的敏感性,而足够大的随机性会在更大的初始工蜂大小范围内影响觅食动态。这些发现强调了内在因素(如招募效率和干扰强度)和外在因素(如环境随机性)在塑造蚁群集体觅食动态方面错综复杂的相互作用。
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Unraveling the forces shaping foraging dynamics in harvester ant colonies: Recruitment efficiency and environmental variability

The collective foraging behavior of ant colonies is a central focus in behavioral ecology. This paper enhances the classical model of foraging dynamics in harvester ant colonies by introducing a nonlinear recruitment rate and considering environmental variability. Initially, we analyze the existence and stability of steady states in the deterministic model. The results suggest that an increase in mean recruitment time can reduce the foraging threshold, leading to both forward and backward bifurcations. Furthermore, both average recruitment time and the interference intensity of recruiters impact the number of workers in each subgroup. Subsequently, we conduct an analysis of the long-term and transient dynamics of collective foraging in random environments, providing sufficient conditions for the colony to sustain foraging activity. The findings emphasize the scene-dependent impact of environmental stochasticity on foraging dynamics. When ant colonies deterministically cease foraging, environmental stochasticity may unexpectedly prolong the foraging state. Conversely, when colonies deterministically persist in foraging, environmental stochasticity may disrupt this continuity. Additionally, the effect of environmental stochasticity on foraging status varies with the initial worker size. Sizes near the boundary of the basin of attraction between non-foraging and foraging states exhibit greater sensitivity to environmental stochasticity, and sufficiently large stochasticity can impact foraging dynamics across a broader range of initial worker sizes. These findings underscore the intricate interplay between intrinsic factors (e.g., recruitment efficiency and interference intensity) and extrinsic factors (e.g., environmental stochasticity) in shaping the collective foraging dynamics of ant colonies.

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来源期刊
Mathematical Biosciences
Mathematical Biosciences 生物-生物学
CiteScore
7.50
自引率
2.30%
发文量
67
审稿时长
18 days
期刊介绍: Mathematical Biosciences publishes work providing new concepts or new understanding of biological systems using mathematical models, or methodological articles likely to find application to multiple biological systems. Papers are expected to present a major research finding of broad significance for the biological sciences, or mathematical biology. Mathematical Biosciences welcomes original research articles, letters, reviews and perspectives.
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