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Validation of functional connectivity modeling: The Achilles' heel of landscape connectivity mapping

机译:验证功能连通性建模:Achilles的横向连接映射脚跟

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Modeling functional connectivity in altered landscapes is one of the growing fields of expertise in landscape ecology, and many research teams have proposed different methods to evaluate it for a wide range of species. However, very few have empirically validated the efficiency of such models in discriminating real corridors from theoretical ones. Models that are not validated or those only based on structural connectivity could result in inefficient management decisions. Moreover, validation could potentially reveal that functional connectivity differs between focal species and spatial scales. Here we empirically compared different validation methods for two commonly used connectivity models applied to two cervid species (i.e. moose Alces americanus and white-tailed deer Odocoileus virginianus) during a road enlargement project. For both species, we built functional connectivity maps using CircuitScape (circuit-based model) and LinkageMapper (least-cost path model). We then validated them empirically using four different metrics: density of cervid-vehicle collisions, distance to the nearest wintering ground and detection rate calculated with automated cameras and with sand traps. Validation was carried out at various spatial scales (150, 500, 1000, 1500, 2000 and 2500 m). The circuit-based models performed better at identifying functional corridors of connectivity for moose. Validation strength differed greatly between the four metrics used, and the spatial scale at which the correlation between connectivity and data was assessed had little effect. Our study emphasizes the importance of validating functional connectivity models to provide the best decision-making tools.
机译:改变景观中的功能连接模型是景观生态学中不断增长的专业领域之一,许多研究团队都提出了不同的方法来评估广泛的物种。然而,很少有经验验证了这些模型的效率,以鉴别理论上的真实走廊。未经验证的模型或仅基于结构连接的模型可能导致管理决策效率低下。此外,验证可能透露焦点物种和空间尺度之间的功能连接不同。在这里,我们在道路扩大工程期间,我们经验与应用于两种CervID物种的两个常用连接模型(即驼鹿Alces Americanus和白尾鹿Odocoileus virginianus)的不同验证方法进行了比较。对于这两个物种,我们使用电路(基于电路的模型)和LinkageMapper(最低成本路径模型)构建了功能连接图。然后,我们使用四种不同的度量验证了它们:颈椎碰撞密度,与最近的越冬接地的距离和用自动摄像机和沙阱计算的检测率。验证在各种空间尺度(150,500,000,1500,2000和2500米)进行。基于电路的模型在识别驼鹿的连接功能走廊时更好地执行。验证强度在所使用的四个指标之间有很大差异,并且评估了连接性和数据之间相关性之间的空间尺度几乎没有效果。我们的研究强调了验证功能连接模型以提供最佳决策工具的重要性。

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