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Optimal design of compact and connected nature reserves for multiple species

机译:针对多个物种的紧凑型互联自然保护区的优化设计

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When designing a conservation reserve system for multiple species, spatial attributes of the reserves must be taken into account at species level. The existing optimal reserve design literature considers either one spatial attribute or when multiple attributes are considered the analysis is restricted only to one species. We built a linear integer programing model that incorporates compactness and connectivity of the landscape reserved for multiple species. The model identifies multiple reserves that each serve a subset of target species with a specified coverage probability threshold to ensure the species' long-term survival in the reserve, and each target species is covered (protected) with another probability threshold at the reserve system level. We modeled compactness by minimizing the total distance between selected sites and central sites, and we modeled connectivity of a selected site to its designated central site by selecting at least one of its adjacent sites that has a nearer distance to the central site. We considered structural distance and functional distances that incorporated site quality between sites. We tested the model using randomly generated data on 2 species, one ground species that required structural connectivity and the other an avian species that required functional connectivity. We applied the model to 10 bird species listed as endangered by the state of Illinois (U.S.A.). Spatial coherence and selection cost of the reserves differed substantially depending on the weights assigned to these 2 criteria. The model can be used to design a reserve system for multiple species, especially species whose habitats are far apart in which case multiple disjunct but compact and connected reserves are advantageous. The model can be modified to increase or decrease the distance between reserves to reduce or promote population connectivity.
机译:在为多个物种设计保护区系统时,必须在物种级别上考虑保护区的空间属性。现有的最佳保护区设计文献只考虑一种空间属性,或者考虑多种属性时,分析只限于一种物种。我们建立了一个线性整数编程模型,该模型整合了保留给多个物种的景观的紧凑性和连通性。该模型可识别多个保护区,每个保护区均以指定的覆盖概率阈值为目标物种的一个子集提供服务,以确保该物种在保护区中的长期生存,并且在保护区系统级别,每个目标物种都被另一个概率阈值所覆盖(保护) 。我们通过最小化所选站点与中心站点之间的总距离来对紧凑性进行建模,并通过选择距中心站点较近距离的至少一个相邻站点来对所选站点与其指定的中心站点之间的连通性进行建模。我们考虑了结合站点之间站点质量的结构距离和功能距离。我们使用2种物种的随机生成数据对模型进行了测试,一种需要结构连通性的地面物种,另一种需要功能连通性的鸟类物种。我们将该模型应用于列为受伊利诺伊州(美国)威胁的10种鸟类。储备的空间连贯性和选择成本根据分配给这两个标准的权重而有很大不同。该模型可用于设计多种物种的保护系统,尤其是其栖息地相距甚远的物种,在这种情况下,多种分离但紧凑而相连的保护区是有利的。可以修改该模型以增加或减少储备之间的距离,以减少或促进人口连通性。

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