从景观诱导的空间模式中解码互动媒介

E. H. Colombo, L. Defaveri, C. Anteneodo
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引用次数: 0

摘要

生物体之间的相互作用是由物理化学物质和其他生物体组成的错综复杂的网络介导的。了解媒介的动态以及它们如何影响种群的空间分布,是预测生态结果以及环境制约因素的变化将如何改变生态结果的关键。在本文中,我们在解决这一核心问题方面取得了进展,建立了一座桥梁,在底层介质集合的特征与景观缺陷(或空间扰动)引起的种群密度皱褶之间提供了双向联系。这座桥梁是通过应用费曼-弗农分解法构建的,它以一种紧凑的方式将焦点种群和介质之间的影响分开。这是通过相互作用内核来实现的,它有效地纳入了中介者的自由度,解释了个体间非局部影响的出现,而这是种群动力学建模中的一个特别假设。具体实例的计算揭示了可能的自上而下推论程序背后的复杂性。
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Decoding the interaction mediators from landscape-induced spatial patterns
Interactions between organisms are mediated by an intricate network of physico-chemical substances and other organisms. Understanding the dynamics of mediators and how they shape the population spatial distribution is key to predict ecological outcomes and how they would be transformed by changes in environmental constraints. However, due to the inherent complexity involved, this task is often unfeasible, from the empirical and theoretical perspectives. In this paper, we make progress in addressing this central issue, creating a bridge that provides a two-way connection between the features of the ensemble of underlying mediators and the wrinkles in the population density induced by a landscape defect (or spatial perturbation). The bridge is constructed by applying the Feynman-Vernon decomposition, which disentangles the influences among the focal population and the mediators in a compact way. This is achieved though an interaction kernel, which effectively incorporates the mediators' degrees of freedom, explaining the emergence of nonlocal influence between individuals, an ad hoc assumption in modeling population dynamics. Concrete examples are worked out and reveal the complexity behind a possible top-down inference procedure.
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