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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >An iterative technique for the detection of land-cover transitions in multitemporal remote-sensing images
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An iterative technique for the detection of land-cover transitions in multitemporal remote-sensing images

机译:一种用于检测多时相遥感影像中土地覆盖转变的迭代技术

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摘要

The authors propose a supervised nonparametric technique based on the "compound classification rule" for minimum error, to detect land-cover transitions between two remote-sensing images acquired at different times. Thanks to a simplifying hypothesis, the compound classification rule is transformed into a form easier to compute. In the obtained rule, an important role is played by the probabilities of transitions, which take into account the temporal dependence between two images. In order to avoid requiring that training sets be representative of all possible types of transitions, the authors propose an iterative algorithm which allows the probabilities of transitions to be estimated directly from the images under investigation. Experimental results on two Thematic Mapper images confirm that the proposed algorithm may provide remarkably better detection accuracy than the "Post Classification Comparison" algorithm, which is based on the separate classifications of the two images.
机译:作者提出了一种基于“化合物分类规则”的有监督的非参数技术,以实现最小误差,以检测在不同时间获取的两个遥感图像之间的土地覆盖变化。由于简化了的假设,复合分类规则被转换为易于计算的形式。在获得的规则中,转换的可能性起着重要作用,转换的可能性考虑了两个图像之间的时间依赖性。为了避免要求训练集代表所有可能的过渡类型,作者提出了一种迭代算法,该算法允许直接从正在研究的图像中估算过渡的概率。在两个主题映射器图像上的实验结果证实,与基于两个图像的单独分类的“分类后比较”算法相比,所提出的算法可以提供明显更好的检测精度。

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