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A Multilevel Stratified Spatial Sampling Approach for the Quality Assessment of Remote-Sensing-Derived Products

机译:遥感衍生产品质量评估的多层分层空间抽样方法

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摘要

With the advent of new remote sensors, the number and volume of remote-sensing data and its derived products, which are regarded as typical “big data,” have grown exponentially. However, it remains a significant challenge to evaluate the quality of these big remote-sensing data and their derived products. Spatial sampling is necessary for the quality assessment of remote-sensing data and the derived products. This paper proposes an approach of multilevel stratified spatial sampling for the quality assessment of remote-sensing-derived products, with the aim of resolving the issue of the quality inspection of remote sensing big data and the derived products. The proposed multilevel stratified strategy: 1) makes full use of the prior knowledge of the data set; 2) selects a sample subset to get an unbiased estimator for the quality; 3) aims to acquire knowledge about the entire product; and 4) makes an evaluation based on statistical inference. The proposed method improves the sampling accuracy without increasing the inspection cost, and the whole procedure is repeatable and easily adopted for the quality inspection of remote-sensing-derived products and other geospatial data.
机译:随着新型遥感器的出现,被视为典型的“大数据”的遥感数据及其衍生产品的数量和数量呈指数增长。但是,评估这些大遥感数据及其衍生产品的质量仍然是一项重大挑战。空间采样对于遥感数据及其衍生产品的质量评估是必要的。为了解决遥感大数据及其衍生产品的质量检验问题,提出了一种多层次分层空间采样的遥感产品质量评估方法。拟议的多层次分层策略:1)充分利用数据集的先验知识; 2)选择一个样本子集以获得质量的无偏估计量; 3)旨在获取有关整个产品的知识;和4)基于统计推断进行评估。所提出的方法在不增加检查成本的情况下提高了采样精度,并且整个过程是可重复的,并且易于用于遥感产品和其他地理空间数据的质量检查。

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