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Impact of sample size allocation when using stratified random sampling to estimate accuracy and area of land-cover change

机译:使用分层随机抽样估算土地覆被变化的准确性和面积时,样本数量分配的影响

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摘要

The ground reference data obtained to assess map accuracy can be simultaneously used to estimate area (extent). This dual-purpose use of ground reference data is examined for the special case of a two-class map of'change' and 'no change'. To assess the accuracy of a change map, stratified sampling is often implemented with a disproportionately larger sample size allocated to the map change stratum. But this allocation targeting user's accuracy of change is not necessarily effective for the competing objective of estimating the area of change. Sampling theory provides the basis for deciding a sample size allocation to strata when multiple, but competing estimation objectives are of interest. Neyman optimal allocation is preferred for estimating the area of change as well as overall accuracy, whereas equal allocation is effective for estimating user's accuracy. The results and recommendations developed in this article extend to any dichotomous classification in which one class is relatively rare.
机译:获得的用于评估地图准确性的地面参考数据可以同时用于估算面积(范围)。对于“变化”和“不变”两类地图的特殊情况,研究了地面参考数据的这种双重用途。为了评估变更图的准确性,通常使用分配给地图变更层的不成比例的更大样本量来实施分层抽样。但是,这种以用户的更改准确性为目标的分配对于估算更改区域的竞争目标不一定有效。当有多个但相互竞争的估算目标受到关注时,抽样理论为确定分层的样本量分配提供了基础。 Neyman最佳分配是估算变化区域以及总体准确性的首选方法,而相等分配对于估算用户的准确性有效。本文开发的结果和建议扩展到其中一类相对罕见的任何二分类。

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  • 来源
    《Remote sensing letters》 |2012年第2期|p.111-120|共10页
  • 作者

    STEPHEN V. STEHMAN;

  • 作者单位

    Department of Forest and Natural Resources Management, State University of New York College of Environmental Science and Forestry, Syracuse, NY 13210, USA;

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  • 正文语种 eng
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