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基于划分的文本聚类算法在标准文献中的试验与对比研究 被引量:5
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作者 甘克勤 丛超 +1 位作者 张宝林 孙旭凯 《标准科学》 2013年第10期47-50,共4页
本文分析了文本聚类的概念和分类,然后着重描述基于划分的文本聚类方法并描述其算法核心,将其在应用标准文献题录数据中进行聚类试验,并分析最终的试验结果,得出结论。
关键词 文本聚类 标准文献 K-MEANS fuzzy-c-means
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Identification of characteristic plant co-occurrences in neotropical secondary montane forests
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作者 Miguel D.Mahecha Alfredo Martı´nez +2 位作者 Holger Lange Markus Reichstein Erwin Beck 《Journal of Plant Ecology》 SCIE 2009年第1期31-41,共11页
Aims Inferring environmental conditions from characteristic patterns of plant co-occurrences can be crucial for the development of conservation strategies concerning secondary neotropical forests.However,nomethodologi... Aims Inferring environmental conditions from characteristic patterns of plant co-occurrences can be crucial for the development of conservation strategies concerning secondary neotropical forests.However,nomethodological agreement has been achieved so far regarding the identification and classification of characteristic groups of vascular plant species in the tropics.This study examines botanical and,in particular,statistical aspects to beconsidered in such analyses.Based on these,we propose a novel data-driven approach for the identification of characteristic plantco-oc currences in neotropical secondary mountain forests.Methods Floristic inventory data were gathered in secondary tropical mountain forests in Ecuador.Vegetation classification was performed by coupling locally adaptive isometric feature mapping,a non-linear ordination method and fuzzy-c-means clustering.This approach was designed for dealing with underlying non-linearities and uncertainties in the inventory data.Important Findings The results indicate that the applied non-linear mapping in combination with fuzzy classification of species occurrence allows an effective identification of characteristic groups of co-occurring species as fuzzy-defined clusters.The selected species indicated groups representing characteristic life-form distributions,as they correspond to various stages of forest regeneration.Combining the identified‘characteristic species groups’with meta-information derived from accompanying studies indicated that the clusters can also be related to habitat conditions.In conclusion,we identified species groups either characteristic of different stages of forest succession after clear-cutting or of impact by fire or a landslide.We expect that the proposed data-mining method will be useful for vegetation classification where no a priori knowledge is available. 展开更多
关键词 secondary tropical mountain forests characteristic species groups non-linear ordination fuzzy-c-means clustering Ecuador
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