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Spatially-balanced sampling versus unbalanced stratified sampling for assessing forest change: evidences in favour of spatial balance

机译:用于评估森林变革的空间平衡采样与不平衡分层采样:有利于空间平衡的证据

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摘要

AbstractLarge-scale remote sensing-based inventories of forest cover are usually carried out by combining unsupervised classifications of satellite pixels into forest/non forest classes (map data) with subsequent time-consuming visual on-screen imagery classification of a probabilistic sample of pixels taken as the ground truth (reference data). In this paper the estimation of forest change from a sample of reference data is approached by: (i) exploiting map data to construct strata in which changes are occurred, and then adopting the stratified sampling joined with the HT estimator with most sampling effort devoted to strata where changes are occurred irrespective of their size, as suggested in most remote sensing literature regarding land change assessments; (ii) adopting a spatial scheme ensuring spatially balanced samples, as suggested in most recent statistical literature regarding spatial surveys, and exploiting the map data in the difference estimator. The results of a comparison performed on an artificial population of reference data generated from a real population of map data recorded in Sardinia (Italy) discourage the use of unbalanced stratified samples that achieve the worst precision. The best results are obtained by means of spatially balanced samples or stratification with nearly proportional allocation to strata.]]>
机译:<![cdata [ <标题>抽象 ara id =“par4”>大型遥感的森林覆盖存货通常通过将卫星像素的无监督分类与森林/非林类(MAP数据)组合,随后耗时的视觉上屏幕图像分类作为作为地面真理(参考数据)的概率样本的概率样本分类。在本文中,从参考数据样本估计来自参考数据的样本:(i)利用地图数据来构建发生变化的地层,然后采用与HT估计器加入的分层采样,其中包含大多数采样措施在与土地变革评估的大多数遥感文献中提出的情况,情况而不管其大小如何发生变化的地层; (ii)采用空间方案,确保空间平衡样本,如关于空间调查的最新统计文献中的建议,并利用差分估计器中的地图数据。对从撒丁岛(意大利记录的地图数据的真实地图数据(意大利)的真实地图数据(意大利)产生的参考数据进行了比较结果,劝阻使用实现最差精度的不平衡分层样本。通过空间平衡的样品或分层获得最佳结果,几乎比例分配到地层。 ]]>

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