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A composed supervised/unsupervised approach to improve change detection from remote sensing

机译:一种组合式有监督/无监督方法,可改进遥感变化检测

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摘要

In this paper a new approach to performing change detection analyses based on a combination of supervised and unsupervised techniques is presented. Two remotely sensed, independently classified images are compared. The change estimation is performed according to the Post Classification Comparison (PCC) method if the posterior probability values are sufficiently high; otherwise a land cover transition matrix, automatically obtained from data, is used. The proposed technique is compared with the traditional PCC approach. It is shown that the new approach correctly detects the "true change" without overestimating the "false" one, while PCC points out "true change" pixels together with a large number of "false changes".
机译:本文提出了一种基于监督和无监督技术相结合的执行变更检测分析的新方法。比较两个遥感独立分类的图像。如果后验概率值足够高,则根据后分类比较(PCC)方法执行更改估计;否则,将使用从数据中自动获得的土地覆盖转换矩阵。将该技术与传统PCC方法进行了比较。结果表明,新方法能够正确检测“真实变化”而不会高估“错误”像素,而PCC会指出“真实变化”像素以及大量“错误变化”。

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