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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Comparing estimators of gross change derived from complete coverage mapping versus statistical sampling of remotely sensed data
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Comparing estimators of gross change derived from complete coverage mapping versus statistical sampling of remotely sensed data

机译:比较完整覆盖图和遥感数据的统计采样得出的总变化的估计量

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摘要

Area of gross change in land cover can be derived from a complete coverage land cover change map of a region of interest or estimated from a statistical sample of the region. Sampling may produce significant cost savings and more timely results because change is determined over a smaller total area than required by complete coverage mapping. Mean square error (MSE) defined in the context of a survey sampling measurement model is used to compare gross change estimators obtained from the two approaches. Measurement error bias attributable to error in classifying land cover change may occur with either the sampling or complete coverage mapping approach. An additional contribution to MSE attributable to sampling variability exists for the sampling-based estimator, but not the complete coverage estimator. If this sampling variability is small, the classification error bias of the sampling approach need not be reduced very far relative to the classification error bias of complete coverage to achieve similar MSE. Data from several published change accuracy error matrices are used to provide MSE comparisons for specific applications. (c) 2005 Elsevier Inc. All rights reserved.
机译:土地覆盖的总变化面积可以从感兴趣区域的完整覆盖土地覆盖变化图得出,也可以从该区域的统计样本估算得出。采样可以节省大量成本并获得更及时的结果,因为与总覆盖图相比,更改是在较小的总面积上确定的。在调查抽样测量模型的上下文中定义的均方误差(MSE)用于比较从两种方法获得的总变化估计量。抽样或完全覆盖图绘制方法可能会导致归因于土地覆盖变化分类错误的测量误差偏差。基于采样的估计量对MSE的额外贡献归因于采样的可变性,但不包括完整的覆盖率估计量。如果此采样变异性较小,则无需相对于完整覆盖的分类误差偏差将采样方法的分类误差偏差减小得很远,即可实现相似的MSE。来自多个已发布的更改准确性误差矩阵的数据用于为特定应用提供MSE比较。 (c)2005 Elsevier Inc.保留所有权利。

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