首页> 外文期刊>International Journal of Geographical Information Science >Scale dependence in habitat selection: the case of the endangered brown bear (Ursus arctos) in the Cantabrian Range (NW Spain)
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Scale dependence in habitat selection: the case of the endangered brown bear (Ursus arctos) in the Cantabrian Range (NW Spain)

机译:栖息地选择中的尺度依赖性:坎塔布连山脉(西班牙西北部)濒临灭绝的棕熊(熊)

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摘要

Animals select habitat resources at multiple spatial scales. Thus, explicit attention to scale dependency in species-habitat relationships is critical to understand the habitat suitability patterns as perceived by organisms in complex landscapes. Identification of the scales at which particular environmental variables influence habitat selection may be as important as the selection of variables themselves. In this study, we combined bivariate scaling and Maximum entropy (Maxent) modeling to investigate multiscale habitat selection of endangered brown bear (Ursus arctos) populations in northwest Spain. Bivariate scaling showed that the strength of apparent habitat relationships was highly sensitive to the scale at which predictor variables are evaluated. Maxent models on the optimal scale for each variable suggested that landscape composition together with human disturbances was dominant drivers of bear habitat selection, while habitat configuration and edge effects were substantially less influential. We found that explicitly optimizing the scale of habitat suitability models considerably improved single-scale modeling in terms of model performance and spatial prediction. We found that patterns of brown bear habitat suitability represent the cumulative influence of habitat selection across a broad range of scales, from local resources within habitat patches to the landscape composition at broader spatial scales.
机译:动物在多个空间尺度上选择栖息地资源。因此,明确关注物种-栖息地关系中的尺度依赖性对于理解生物在复杂景观中感知的栖息地适宜性模式至关重要。确定特定环境变量影响生境选择的尺度可能与变量本身的选择一样重要。在这项研究中,我们结合了双变量标度和最大熵(Maxent)模型来研究西班牙西北部濒危棕熊(Ursus arctos)种群的多尺度生境选择。双变量标度表明,表观栖息地关系的强度对评估预测变量的标度高度敏感。针对每个变量的最佳规模的Maxent模型表明,景观构成和人为干扰是熊栖息地选择的主要驱动因素,而栖息地配置和边缘效应的影响则较小。我们发现,显着优化栖息地适应性模型的规模在模型性能和空间预测方面大大改善了单尺度模型。我们发现棕熊栖息地的适宜性模式代表了广泛选择范围内的栖息地选择的累积影响,从栖息地斑块内的本地资源到更广泛的空间尺度上的景观组成。

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