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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >A comparison of sampling designs for estimating deforestation from Landsat imagery: A case study of the Brazilian Legal Amazon
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A comparison of sampling designs for estimating deforestation from Landsat imagery: A case study of the Brazilian Legal Amazon

机译:从Landsat影像估算森林砍伐的抽样设计比较:以巴西法律亚马逊为例

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摘要

Three sampling designs - simple random, stratified random, and systematic sampling - are compared on the basis of precision of estimated loss of intact humid tropical forest area in the Brazilian Legal Amazon from 2000 to 2005. MODIS-derived deforestation is used to partition the study area into strata to intensify sampling within forest clearing hotspots. The precision of the estimator of deforestation area for each design is calculated from a population of wall-to-wall PRODES deforestation data available for the study area. Both systematic and stratified sampling yield smaller standard errors than simple random sampling, and the stratified design has smaller standard errors than the systematic design at each sample size evaluated. The results of this case study demonstrate the utility of a stratified design based on MODIS-derived deforestation data to improve precision of the estimated loss of intact forest area as estimated from sampling Landsat imagery.
机译:根据2000年至2005年巴西法律亚马逊完整湿润热带森林面积估计损失的精度,比较了三种抽样设计(简单随机抽样,分层随机抽样和系统抽样)。采用MODIS来源的森林砍伐法对研究进行划分区域分层,以加强森林砍伐热点地区的采样。每种设计的毁林面积估算器的精度是根据可用于研究区域的逐墙PRODES毁林数据计算得出的。与简单随机抽样相比,系统抽样和分层抽样均产生较小的标准误差,并且在评估的每个样本大小下,分层设计均具有比系统设计小的标准误差。该案例研究的结果证明了基于MODIS的毁林数据进行分层设计的实用性,可以提高从Landsat影像采样中估算的完整林面积估计损失的精度。

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