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The Mechanisms of Water Exchange: The Regulatory Roles of Multiple Interactions in Social Wasps

机译:水分交换的机制:社会黄蜂中多种相互作用的调节作用

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摘要

Evolutionary benefits of task fidelity and improving information acquisition via multiple transfers of materials between individuals in a task partitioned system have been shown before, but in this paper we provide a mechanistic explanation of these phenomena. Using a simple mathematical model describing the individual interactions of the wasps, we explain the functioning of the common stomach, an information center, which governs construction behavior and task change. Our central hypothesis is a symmetry between foragers who deposit water and foragers who withdraw water into and out of the common stomach. We combine this with a trade-off between acceptance and resistance to water transfer. We ultimately derive a mathematical function that relates the number of interactions that foragers complete with common stomach wasps during a foraging cycle. We use field data and additional model assumptions to calculate values of our model parameters, and we use these to explain why the fullness of the common stomach stabilizes just below 50 percent, why the average number of successful interactions between foragers and the wasps forming the common stomach is between 5 and 7, and why there is a variation in this number of interactions over time. Our explanation is that our proposed water exchange mechanism places natural bounds on the number of successful interactions possible, water exchange is set to optimize mediation of water through the common stomach, and the chance that foragers abort their task prematurely is very low.
机译:以前已经展示了任务保真度和通过​​在任务分区系统中的个人之间进行多次材料转移来改善信息获取的进化优势,但是在本文中,我们提供了对这些现象的机械解释。使用描述黄蜂个体相互作用的简单数学模型,我们解释了共同的胃,一个信息中心的功能,该中心控制建筑行为和任务变更。我们的中心假设是存水的觅食者和将水进出普通胃的觅食者之间的对称性。我们将其与接受和抗水转移之间的权衡相结合。我们最终得出一个数学函数,该函数关联了觅食者在觅食周期中与普通胃黄蜂完成的相互作用的数量。我们使用现场数据和其他模型假设来计算模型参数的值,并使用它们来解释为什么普通胃的饱满度稳定在略低于50%的水平,为什么觅食者与形成普通蜂的黄蜂之间成功交互的平均次数胃在5到7之间,以及为什么互动次数随时间变化。我们的解释是,我们提出的水交换机制为成功相互作用的数量设置了自然界限,水交换可以优化水通过普通胃的调解,并且觅食者过早中止其任务的机会非常低。

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