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从 3D 信息源标准化生态系统形态特征。

Standardizing Ecosystem Morphological Traits from 3D Information Sources.

机构信息

United Nations Environment Programme World Conservation Monitoring Centre (UNEP-WCMC), 219 Huntington Road, CB3 0DL Cambridge, UK; Department of Plant Sciences in the Conservation Research Institute, University of Cambridge, Downing Street, CB2 3EA Cambridge, UK; School of Natural Sciences, Bangor University, Thoday Building, Bangor LL57 2UW, UK.

United Nations Environment Programme World Conservation Monitoring Centre (UNEP-WCMC), 219 Huntington Road, CB3 0DL Cambridge, UK.

出版信息

Trends Ecol Evol. 2020 Aug;35(8):656-667. doi: 10.1016/j.tree.2020.03.006. Epub 2020 May 15.

Abstract

3D-imaging technologies provide measurements of terrestrial and aquatic ecosystems' structure, key for biodiversity studies. However, the practical use of these observations globally faces practical challenges. First, available 3D data are geographically biased, with significant gaps in the tropics. Second, no data source provides, by itself, global coverage at a suitable temporal recurrence. Thus, global monitoring initiatives, such as assessment of essential biodiversity variables (EBVs), will necessarily have to involve the combination of disparate data sets. We propose a standardized framework of ecosystem morphological traits - height, cover, and structural complexity - that could enable monitoring of globally consistent EBVs at regional scales, by flexibly integrating different information sources - satellites, aircrafts, drones, or ground data - allowing global biodiversity targets relating to ecosystem structure to be monitored and regularly reported.

摘要

3D 成像技术为陆地和水生生态系统结构的测量提供了支持,这对生物多样性研究至关重要。然而,这些观测结果在全球范围内的实际应用面临着实际挑战。首先,现有的 3D 数据在地理上存在偏差,在热带地区存在很大的空白。其次,没有任何数据源本身能够以合适的时间重复率提供全球覆盖。因此,全球监测倡议,如评估基本生物多样性变量(EBVs),将不可避免地涉及到不同数据集的组合。我们提出了一个生态系统形态特征的标准化框架——高度、覆盖和结构复杂性——这可以通过灵活地整合不同的信息源——卫星、飞机、无人机或地面数据——来实现,从而在区域尺度上监测具有全球一致性的 EBVs,使与生态系统结构相关的全球生物多样性目标能够得到监测和定期报告。

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