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遥感学报  2006 

An Application Research of Cluster Analysis on Sample Plot Classification in Monitoring Area
聚类分析在监测区域样地分类中的应用研究

Keywords: cluster analysis,resemble extent statistical,correlation coefficient
聚类分析
,亲疏统计量,相关系数

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Abstract:

In order to establish the forest canopy density and stock volume estimation equation based on remote sensing and GIS in the monitoring area,it's needed to sample certain amounts of representative sample plots.How to rationally select certain amounts of representative sample plots belongs to the problem of multi-objective optimization.It's hard to do in practical work because of the heavy calculation workload from the selecting by certain optimizing standards with all the combination method according to the known amounts of sample plots in monitoring area.Therefore,to classify the sample plots firstly and then select certain representative ones is needed.Because of the manifold of statistic measuring distance between sample plots and concrete clustering method,different categorized results appeared in the same monitoring area result in different statistic and clustering methods.Designing different factors of remote sensing and GIS that influencing the estimation of canopy density and stock volume, there will be a large difference in classifying results.To a specific monitoring area,the influencing law of different factors to classifying is studied systematically by means of computer simulation.Meanwhile how to choose the statistic measuring distance between sample plots and clustering methods in practical work is also studied in this paper.The results can be useful to real work.

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