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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Adapting a global stratified random sample for regional estimation of forest cover change derived from satellite imagery
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Adapting a global stratified random sample for regional estimation of forest cover change derived from satellite imagery

机译:调整全局分层随机样本,以根据卫星图像得出的森林覆盖变化的区域估计值

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A desirable feature of a global sampling design for estimating forest cover change based on satellite imagery is the ability to adapt the design to obtain precise regional estimates, where a region may be a country, state, province, or conservation area. A sampling design stratified by an auxiliary variable correlated with forest cover change has this adaptability. A global stratified random sample can be augmented by additional sample units within a region selected by the same stratified protocol and the resulting sample constitutes a stratified random sample of the region. Stratified sampling allows increasing the sample size in a region by a few to many additional sample units. The additional sample units can be effectively allocated to strata to reduce the standard errors of the regional estimates, even though these strata were not initially constructed for the objective of regional estimation. A complete coverage map of deforestation within the Brazilian Legal Amazon (BLA) is used as a population to evaluate precision of regional estimates obtained by augmenting a global stratified random sample. The standard errors of the regional estimates for the BLA and states within the BLA obtained from the augmented stratified design were generally smaller than those attained by simple random sampling and systematic sampling.
机译:用于基于卫星图像估算森林覆盖率变化的全局采样设计的一个理想功能是能够使设计适应以获得精确的区域估算值的能力,其中区域可以是国家,州,省或保护区。通过与森林覆盖变化相关的辅助变量进行分层的抽样设计具有这种适应性。全局分层随机样本可以在通过相同分层协议选择的区域内增加其他样本单位,并且所得样本构成该区域的分层随机样本。分层采样允许将区域中的样本大小增加几到许多其他样本单位。即使最初并非为区域估计的目的而构造这些分层,也可以将额外的样本单位有效地分配给各层,以减少区域估计的标准误。使用巴西法律亚马逊(BLA)内完整的森林砍伐覆盖图来评估通过增加全球分层随机样本获得的区域估计的准确性。从扩展分层设计获得的BLA和BLA内各州的区域估计值的标准误差通常小于通过简单随机抽样和系统抽样获得的误差。

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