Department of Biological Sciences, University of Bergen, Bergen, Norway.
Bjerknes Centre for Climate Research, University of Bergen, Bergen, Norway.
Sci Data. 2023 Sep 4;10(1):578. doi: 10.1038/s41597-023-02467-7.
The Arctic is warming at a rate four times the global average, while also being exposed to other global environmental changes, resulting in widespread vegetation and ecosystem change. Integrating functional trait-based approaches with multi-level vegetation, ecosystem, and landscape data enables a holistic understanding of the drivers and consequences of these changes. In two High Arctic study systems near Longyearbyen, Svalbard, a 20-year ITEX warming experiment and elevational gradients with and without nutrient input from nesting seabirds, we collected data on vegetation composition and structure, plant functional traits, ecosystem fluxes, multispectral remote sensing, and microclimate. The dataset contains 1,962 plant records and 16,160 trait measurements from 34 vascular plant taxa, for 9 of which these are the first published trait data. By integrating these comprehensive data, we bridge knowledge gaps and expand trait data coverage, including on intraspecific trait variation. These data can offer insights into ecosystem functioning and provide baselines to assess climate and environmental change impacts. Such knowledge is crucial for effective conservation and management in these vulnerable regions.
北极地区的升温速度是全球平均水平的四倍,同时还受到其他全球环境变化的影响,导致广泛的植被和生态系统变化。将基于功能性状的方法与多层次的植被、生态系统和景观数据相结合,可以全面了解这些变化的驱动因素和后果。在斯瓦尔巴群岛朗伊尔城附近的两个北极研究系统中,进行了为期 20 年的 ITEX 增温实验以及有无海鸟筑巢带来的养分输入的海拔梯度实验,我们收集了植被组成和结构、植物功能性状、生态系统通量、多光谱遥感和小气候的数据。该数据集包含 1962 份植物记录和 34 种维管植物类群的 16160 个性状测量值,其中有 9 种是首次公布的性状数据。通过整合这些全面的数据,我们弥合了知识差距并扩展了性状数据的覆盖范围,包括种内性状变异。这些数据可以提供对生态系统功能的深入了解,并为评估气候和环境变化的影响提供基准。这种知识对于这些脆弱地区的有效保护和管理至关重要。