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Spatial modelling and landscape-level approaches for visualizing intra-specific variation

机译:用于可视化种内变异的空间建模和景观水平方法

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摘要

Spatial analytical methods have been used by biologists for decades, but with new modelling approaches and data availability their application is accelerating. While early approaches were purely spatial in nature, it is now possible to explore the underlying causes of spatial heterogeneity of biological variation using a wealth of environmental data, especially from satellite remote sensing. Recent methods can not only make inferences regarding spatial relationships and the causes of spatial heterogeneity, but also create predictive maps of patterns of biological variation under changing environmental conditions. Here, we review the methods involved in making continuous spatial predictions from biological variation using spatial and environmental predictor variables, provide examples of their use and critically evaluate the advantages and limitations. In the final section, we discuss some of the key challenges and opportunities for future work.
机译:空间分析方法已被生物学家使用了数十年,但是随着新的建模方法和数据可用性的发展,它们的应用正在加速。尽管早期方法本质上纯粹是空间方法,但现在可以使用大量环境数据(尤其是来自卫星遥感的数据)来探究生物变异空间异质性的根本原因。最近的方法不仅可以推断出空间关系和空间异质性的原因,而且还可以在变化的环境条件下创建生物变异模式的预测图。在这里,我们回顾了使用空间和环境预测变量从生物学变异进行连续空间预测所涉及的方法,提供了其使用示例并严格评估了其优势和局限性。在最后一节中,我们讨论了未来工作的一些关键挑战和机遇。

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