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A new sampling strategy for forest inventories applied to the temporary clusters of the Swedish national forest inventory

机译:一种新的森林清单采样策略,适用于瑞典国家森林库存临时集群

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摘要

A new sampling strategy for forest inventories is presented. The most important difference from the traditional sampling strategies is that auxiliary variables from remote sensing are incorporated into the sampling design. The sample is selected to match population distributions of the auxiliary variables as well as possible. This is achieved by a double sampling approach, where auxiliary variables are extracted for a large first-phase sample. The second selection is done by the local pivotal method and produces an even thinning of the first-phase sample. Thus, we make sure that the selected second-phase sample becomes much more representative of the population than what is possible by the use of traditional designs. The potential of implementing the new strategy for the temporary clusters within the Swedish national forest inventory is evaluated with five auxiliary variables: the geographical coordinates, elevation, predicted tree height, and predicted basal area. The increased representativity that we achieve with the new strategy induces up to 95% reduction of the variance of the sample means of the remote sensing auxiliary variables compared with traditional designs. For this reason, we conclude that the new strategy that will be implemented in the forthcoming Swedish national forest inventory has a great potential to achieve large improvements in estimation of many important forest attributes.
机译:提出了一种新的森林清单采样策略。传统采样策略中最重要的区别是遥感的辅助变量纳入采样设计。选择样本以匹配辅助变量的群体分布以及尽可能匹配。这是通过双重采样方法实现的,其中提取辅助变量用于大的第一相样本。第二选择由局部枢转法完成,并产生均匀变薄的第一相样品。因此,我们确保所选的第二相样本比使用传统设计的群体更加代表人口。利用五个辅助变量对瑞典国家森林库存内实施临时集群的新策略的潜力:地理坐标,高程,预测树高,预测基础区域。与新策略相比,我们通过新策略实现的增加的增加率降低了遥感辅助变量的样本手段的差异减少了95%。因此,我们得出结论,将在即将到来的瑞典国家森林库存中实施的新战略有可能在估计许多重要森林属性的估计方面具有巨大的改善。

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