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A global 1-km consensus land-cover product for biodiversity and ecosystem modelling

机译:用于生物多样性和生态系统建模的全球1公里共识土地覆盖产品

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Aim For many applications in biodiversity and ecology, existing remote sensing-derived land-cover products have limitations due to among-product inconsistency and their typically non-continuous nature. Here we aim to help address these shortcomings by generating a 1-km resolution global product that provides scale-integrated and accuracy-weighted consensus land-cover information on an approximately continuous scale.Location Global.Methods Using a generalized classification scheme and an accuracy-based integration approach, we integrated four global land-cover products. We evaluated the performance of this product compared with inputs for estimating subpixel 30-m resolution land cover. We also compared the accuracy of deductive and inductive species distribution models built with the different products for modelling the continental distributions of six avian habitat specialists.Results Our product offers accuracy-weighted consensus information on the prevalence of 12 land-cover classes within every nominal 1-km pixel across the globe (except for Antarctica). Compared with the four base products, it better captures the land-cover information contained in the fine-grain validation data for all classes combined and for most individual classes. It also has the highest sensitivity and overall accuracy for detecting the presence of every fine-grain land-cover class. Both deductive and inductive models built with the consensus dataset have the highest or second highest accuracy for modelling bird species distributions.Main conclusions Our consensus product integrates the four base products and successfully maximizes accuracy and reduces errors of omission. Specifically, the consensus product reduces limitations caused by misclassifications, false absence rates and the categorical format of existing land-cover products. Consequently, it surpasses single base products in the ability to capture subpixel land-cover information and the utility for modelling species distributions. Both the presented methodology and the consensus product have multiple applications in biodiversity research and for understanding and modelling of global terrestrial ecosystems
机译:目的对于生物多样性和生态学中的许多应用,现有的遥感土地覆盖产品由于产品间的不一致性及其典型的非连续性而受到限制。在这里,我们旨在通过生成一个1公里分辨率的全球产品来帮助解决这些缺陷,该产品可以在近似连续的规模上提供规模综合和精度加权的共识性土地覆盖信息。位置全球方法使用广义分类方案和精度基于集成方法,我们集成了四个全球土地覆盖产品。我们与输入的产品进行了比较,评估了该产品的性能,以估计30微米分辨率的亚像素土地覆盖。我们还比较了使用不同产品构建的演绎和归纳物种分布模型的准确性,以对六位鸟类栖息地专家的大陆分布进行建模。结果我们的产品针对每个名义1内12种土地覆盖类别的流行程度提供了准确度加权的共识信息。 -km像素(南极洲除外)。与四种基本产品相比,它可以更好地捕获所有组合类别和大多数单个类别的细粒度验证数据中包含的土地覆盖信息。它还具有最高的灵敏度和整体精度,可检测每种细粒度的土地覆盖类型。使用共识数据集构建的演绎模型和归纳模型都具有对鸟类分布进行建模的最高或第二高的准确性。主要结论我们的共识产品整合了四个基本产品,成功地使准确性最大化并减少了遗漏误差。具体而言,共识产品减少了因错误分类,错误缺席率和现有土地覆盖产品的分类格式而造成的限制。因此,它在捕获亚像素土地覆盖信息的能力以及对物种分布建模的实用性方面都超过了单一基础产品。所提出的方法和共识产品在生物多样性研究以及对全球陆地生态系统的理解和建模中都有多种应用

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