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首页> 外文期刊>Ecological engineering: The Journal of Ecotechnology >Forest restoration assessment in Brazilian Amazonia: A new clustering-based methodology considering the reference ecosystem
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Forest restoration assessment in Brazilian Amazonia: A new clustering-based methodology considering the reference ecosystem

机译:巴西亚马逊森林恢复评估:考虑参考生态系统的新集群基础方法

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摘要

Techniques for forest restoration have been widely developed over the past decades, allowing the reestablishment of vegetation in extreme cases such as surface mining. However, there are still issues related to management and monitoring that require further understanding, especially concerning comparisons with reference ecosystems. In this study, hierarchical agglomerative clustering (HAC) with uncertainty estimation is proposed as a methodology for forest restoration assessment. For this purpose, analysis was made of phytosociological variables for 27 plots located in reforested closed mines and in the Amazon forest reference ecosystem. The technique grouped the reference ecosystem separately from the reclamation sites. The HAC was affected by dependency among the analyzed variables, and heterogeneity was observed for all the phytosociological parameters in the cluster groups formed by the mining locations. However, each group showed specific characteristics related to the different environmental conditions and the forest restoration performance. The results demonstrated that HAC with uncertainty estimation was more suitable for defining groups, compared to the classical approach, offering a promising methodology for evaluation of the outcomes of forest restoration and for guiding management actions in disturbed tropical forests.
机译:在过去的几十年里,森林恢复技术已被广泛发展,允许在诸如表面挖掘等极端情况下重建植被。但是,仍有与管理和监控有关的问题,需要进一步了解,特别是关于参考生态系统的比较。在本研究中,提出了具有不确定性估计的分层凝聚聚类(HAC)作为森林恢复评估的方法。为此目的,分析是由植物病变变量进行的27个地块,位于Reforested封闭矿山和亚马逊森林参考生态系统中。该技术分开与填海地点分开参考生态系统。 HAC在分析的变量中受到依赖性的影响,并且对于由采矿位置形成的簇组中的所有植物病变学参数观察到异质性。然而,每组显示与不同的环境条件和森林恢复性能有关的具体特征。结果表明,与经典方法相比,HAC具有不确定度估计更适合于定义组,为评估森林恢复的结果以及在干扰的热带森林中提供有前途的方法。

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