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Improving knowledge of urban vegetation by applying GIS technology to existing databases

机译:通过将GIS技术应用于现有数据库来提高城市植被知识

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Question: Can we improve the knowledge of urban vegetation using data from ongoing floristic and management projects with a data mining approach? We have two questions: 1. How strong is the relationship between land cover pattern and the species composition of vegetation? 2. What is the relationship between land cover pattern and species richness? Location: Trieste, northeastern Italy.Methods: Using land cover maps and GIS we characterized the cells of a floristic project grid by percentage cover ofland cover types. We applied Canonical Correlation Analysis to test the correlation between floristic composition of the cells and land cover. We classified the cells by clustering methods, based on land cover description. With these clusters, we analysed the variation of species composition of urban vegetation along a gradient of urban density. We used Jaccard's similarity index to compare floristic composition of the clusters with the floristic composition of the homogeneous cells with respect to theland cover types. To answer question 2, we calculated land cover heterogeneity with the Shannon index and correlated the nurftber of species in clusters with land cover heterogeneity and urban density. Results: Each land cover type contributes to speciesrichness and species composition of the clusters. Species richness decreases significantly and linearly as urban density increases and land cover heterogeneity decreases in the clusters. Conclusions: A data mining approach can combine different existingprojects to improve knowledge of the urban vegetation system. The methods we have applied offer tools to answer the specific questions mentioned above.
机译:问题:我们是否可以使用正在进行的植物区系和管理项目中的数据以及数据挖掘方法来提高城市植被知识?我们有两个问题:1.土地覆盖格局与植被物种组成之间的关系有多强? 2.土地覆盖格局与物种丰富度之间有什么关系?位置:意大利东北部的里雅斯特。方法:使用土地覆盖图和GIS,我们通过土地覆盖类型的覆盖率来表征植物项目网格的单元。我们应用规范相关分析来测试细胞的植物组成与土地覆盖之间的相关性。我们基于土地覆被描述,通过聚类方法对单元进行了分类。利用这些簇,我们分析了城市植被沿城市密度梯度的物种组成变化。我们使用Jaccard的相似性指数来比较簇的植物组成与同地覆盖类型的同质细胞的植物组成。为了回答问题2,我们用Shannon指数计算了土地覆盖的异质性,并将集群中物种的多样性与土地覆盖的异质性和城市密度相关联。结果:每种土地覆盖类型都有助于集群的物种丰富度和物种组成。随着城市密度的增加和集群中土地覆盖异质性的降低,物种丰富度显着线性下降。结论:数据挖掘方法可以结合现有的不同项目,以提高对城市植被系统的了解。我们采用的方法提供了工具来回答上述特定问题。

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