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Linking animal movement and remote sensing - mapping resource suitability from a remote sensing perspective

机译:链接动物运动和遥感-从遥感角度映射资源的适用性

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摘要

Optical remote sensing is an important tool in the study of animal behavior providing ecologists with the means to understand species–environment interactions in combination with animal movement data. However, differences in spatial and temporal resolution between movement and remote sensing data limit their direct assimilation. In this context, we built a data-driven framework to map resource suitability that addresses these differences as well as the limitations of satellite imagery. It combines seasonal composites of multiyear surface reflectances and optimized presence and absence samples acquired with animal movement data within a cross-validation modeling scheme. Moreover, it responds to dynamic, site-specific environmental conditions making it applicable to contrasting landscapes. We tested this framework using five populations of White Storks (Ciconia ciconia) to model resource suitability related to foraging achieving accuracies from 0.40 to 0.94 for presences and 0.66 to 0.93 for absences. These results were influenced by the temporal composition of the seasonal reflectances indicated by the lower accuracies associated with higher day differences in relation to the target dates. Additionally, population differences in resource selection influenced our results marked by the negative relationship between the model accuracies and the variability of the surface reflectances associated with the presence samples. Our modeling approach spatially splits presences between training and validation. As a result, when these represent different and unique resources, we face a negative bias during validation. Despite these inaccuracies, our framework offers an important basis to analyze species–environment interactions. As it standardizes site-dependent behavioral and environmental characteristics, it can be used in the comparison of intra- and interspecies environmental requirements and improves the analysis of resource selection along migratory paths. Moreover, due to its sensitivity to differences in resource selection, our approach can contribute toward a better understanding of species requirements.
机译:光学遥感技术是研究动物行为的重要工具,可为生态学家提供结合动物运动数据了解物种与环境相互作用的手段。但是,运动和遥感数据之间在空间和时间分辨率上的差异限制了它们的直接同化。在这种情况下,我们建立了一个数据驱动框架来映射资源适用性,以解决这些差异以及卫星图像的局限性。它在交叉验证建模方案中结合了多年表面反射率的季节性复合材料以及通过动物运动数据获取的最佳存在和不存在样本。此外,它对动态的,针对特定地点的环境条件做出响应,使其适用于对比鲜明的景观。我们使用五个种群的白鹳(Ciconia ciconia)测试了该框架,以模拟与觅食有关的资源适宜性,对于有感者实现0.40至0.94的精确度,对于不存在者达到0.66至0.93的准确度。这些结果受到季节反射的时间组成的影响,这些季节反射的时间精度相对于目标日期而言具有较高的日差,而精度较低。此外,资源选择中的总体差异影响了我们的结果,这些结果的特征在于模型准确性与与存在样本相关的表面反射率之间的负相关。我们的建模方法在空间上将训练和验证之间的存在分开。结果,当这些资源代表不同且独特的资源时,我们在验证过程中会面临负面偏见。尽管存在这些不准确之处,我们的框架仍为分析物种与环境之间的相互作用提供了重要的基础。由于它标准化了与地点有关的行为和环境特征,因此可用于种内和种间环境要求的比较,并改善了沿迁徙路径进行资源选择的分析。此外,由于其对资源选择差异的敏感性,我们的方法可以有助于更好地理解物种需求。

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