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Scaling up functional traits for ecosystem services with remote sensing: concepts and methods

机译:通过遥感扩大生态系统服务的功能特征:概念和方法

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摘要

Ecosystem service‐based management requires an accurate understanding of how human modification influences ecosystem processes and these relationships are most accurate when based on functional traits. Although trait variation is typically sampled at local scales, remote sensing methods can facilitate scaling up trait variation to regional scales needed for ecosystem service management. We review concepts and methods for scaling up plant and animal functional traits from local to regional spatial scales with the goal of assessing impacts of human modification on ecosystem processes and services. We focus our objectives on considerations and approaches for (1) conducting local plot‐level sampling of trait variation and (2) scaling up trait variation to regional spatial scales using remotely sensed data. We show that sampling methods for scaling up traits need to account for the modification of trait variation due to land cover change and species introductions. Sampling intraspecific variation, stratification by land cover type or landscape context, or inference of traits from published sources may be necessary depending on the traits of interest. Passive and active remote sensing are useful for mapping plant phenological, chemical, and structural traits. Combining these methods can significantly improve their capacity for mapping plant trait variation. These methods can also be used to map landscape and vegetation structure in order to infer animal trait variation. Due to high context dependency, relationships between trait variation and remotely sensed data are not directly transferable across regions. We end our review with a brief synthesis of issues to consider and outlook for the development of these approaches. Research that relates typical functional trait metrics, such as the community‐weighted mean, with remote sensing data and that relates variation in traits that cannot be remotely sensed to other proxies is needed. Our review narrows the gap between functional trait and remote sensing methods for ecosystem service management.
机译:基于生态系统服务的管理需要对人类的改造如何影响生态系统过程有准确的了解,并且根据功能特征,这些关系最准确。尽管特征变化通常是在地方尺度上采样的,但是遥感方法可以促进将特征变化扩大到生态系统服务管理所需的区域尺度。我们评估了从局部空间尺度到区域空间尺度扩大动植物功能性状的概念和方法,目的是评估人类改造对生态系统过程和服务的影响。我们将目标集中在考虑和方法上,这些考虑和方法是(1)在局部情节水平上对特征变化进行抽样,以及(2)使用遥感数据将特征变化扩大到区域空间尺度。我们表明,用于扩大性状的采样方法需要考虑由于土地覆盖变化和物种引进而导致的性状变异的修正。根据所关注的特性,可能需要对种内变异进行采样,按土地覆盖类型或景观背景进行分层或从公开来源推断出特性。被动和主动遥感对于绘制植物物候,化学和结构性状很有用。组合使用这些方法可以显着提高其绘制植物性状变异的能力。这些方法还可以用于绘制景观和植被结构图,以推断动物性状的变化。由于高度的上下文相关性,性状变异与遥感数据之间的关系无法在区域之间直接传递。我们以对这些问题的简要概述和对这些方法发展的展望结束我们的审查。需要进行研究,以将典型的功能特征量度(例如,社区加权平均值)与遥感数据相关联,并将无法远程感知的特征变异与其他代理相关联。我们的审查缩小了生态系统服务管理的功能特征和遥感方法之间的差距。

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