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Mapping uncertainty of ICP-Forest biodiversity data: From standard treatment of diffusion to density-equalizing cartograms

机译:映射ICP-森林生物多样性数据的不确定性:从标准处理扩散到密度平衡的车图

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Data uncertainty due to spatial gaps and heterogeneity is a fundamental problem in conservation and environmental planning. Thus, investigation of issues related to data uncertainty contributes to more efficient conservation plans. We evaluated the uncertainty of data related to forest diversity descriptors using a diffusion-based cartogram approach that visually displays how data information change in function with respect to degree of uncertainty. We used ground vegetation data for 3093 plots collected as part of the BioSoil project through the ICP Forests Level I network and stored in the LI-BioDiv database. For each plot, we assigned an uncertainty value based on the survey season and the mean monthly temperature for the survey period. The density-equalizing map or cartogram highlights that data collected in Spain, the United Kingdom and the German federal states of Berlin and Brandenburg have smaller values of species richness corresponding to larger values of uncertainty. We found that an awareness of the negative relationship between the survey period and species richness can lead to improved data handling and analysis. We demonstrated that cartograms are efficient tools for evaluating and managing uncertainty and can strengthen the results of data analysis by providing alternative perspectives and interpretations of spatial phenomena.
机译:由于空间间隙和异质性导致的数据不确定性是保护和环境规划的基本问题。因此,调查与数据不确定性有关的问题有助于更有效的保护计划。我们使用基于扩散的语法方法评估与森林多样性描述符相关的数据的不确定性,该方法可视地显示数据信息如何改变在不确定性程度的函数中。我们通过ICP林级I网络作为生物油项目的一部分收集的地面植被数据,以便通过ICP林级别网络网络并存储在Li-Biodiv数据库中。对于每种情节,我们基于调查季节和调查期间的平均月度温度分配了不确定性值。均衡的地图或卡图突出显示西班牙,英国和德国柏林和勃兰登堡德国联邦国家收集的数据具有较小的物种丰富的价值,对应于更大的不确定性值。我们发现,对调查期和物种丰富性之间的负面关系的认识可能导致改进的数据处理和分析。我们证明,通过提供替代视角和空间现象的替代视角和解释,制图标记是评估和管理不确定性的有效工具,可以加强数据分析的结果。

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