首页> 外文会议>Geoscience and Remote Sensing Symposium, 2008 IEEE International-IGARSS 2008 >Unsupervised Change Detection in High Resolution Satellite Imagery from Fusion of Spectral and Spatial Information
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Unsupervised Change Detection in High Resolution Satellite Imagery from Fusion of Spectral and Spatial Information

机译:基于光谱和空间信息融合的高分辨率卫星影像无监督变化检测

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In this paper, we present an unsupervised change detection approach that combines pixel-based local Haar-like features, color information, vegetation index, and man-made structure features using fuzzy logic rules to provide multi-level change detection results. An illumination invariant descriptor for each pixel is introduced to describe a Haar-like feature in a local area. Hue is used as a color feature in our change detection method. For the purpose of enhancing the change area with man-made structures, we de-weight the level of detected change areas where there are no man-made objects. The comparison of all features is done separately and the decision results are then combined under seven fuzzy logic rules to provide multi-level change detection results. The performance of the change detection is evaluated qualitatively by visual inspection and quantitatively using ground truth. The quantitative test results show that more than 90% of changes are correctly detected.
机译:在本文中,我们提出了一种无监督的变化检测方法,该方法结合了基于像素的局部Haar样特征,颜色信息,植被指数和人造结构特征,并使用模糊逻辑规则提供了多级变化检测结果。引入每个像素的照度不变描述符来描述局部区域中的类似Haar的特征。色相在我们的变化检测方法中用作颜色特征。为了通过人造结构增强变更区域,我们对没有人工物体的检测到的变更区域的级别进行了加权。所有功能的比较分别完成,然后在七个模糊逻辑规则下组合决策结果,以提供多级变化检测结果。通过视觉检查定性评估变更检测的性能,并使用基本事实定量评估。定量测试结果表明,正确检测出90%以上的变化。

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