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Extracting of urban features from high resolution remote sensing data based on multiscale segmentation

机译:基于多尺度分割的高分辨率遥感影像城市特征提取

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A multiscale segmentation method is proposed for multispectral imagery of high resolution by combining an adapted watershed algorithm and a region merging algorithm. Before the preliminary segmentation by the adapted watershed algorithm, a filtering method and a method for getting rid of local minimum areas are imposed to avoid over-segmentation. The whole process can be divided into five steps as follows. A case study is conducted with a high resolution image, QuikBird, of Beijing city acquired in 2007. From the segmentation results it can be found most of urban features could be extracted correctly and the segmentation edge is accurate and smooth. And it can be concluded that the method can have more semantic information, reduce the dasiaPepper and Salt Phenomenonpsila effectively, and improve the overall classification accuracy of QuikBird image with improved computing efficiency.
机译:结合自适应分水岭算法和区域合并算法,提出了一种用于高分辨率多光谱图像的多尺度分割方法。在通过自适应分水岭算法进行初步分割之前,为了避免过度分割,提出了一种滤波方法和一种用于去除局部最小面积的方法。整个过程可以分为以下五个步骤。以2007年采集的北京市高分辨率图像QuikBird为例进行了案例研究。从分割结果中可以发现,大多数城市特征都可以正确提取,并且分割边缘准确且平滑。可以断定该方法具有更多的语义信息,有效地减少了dasiaPepper和Salt现象,提高了QuikBird图像的整体分类精度,提高了计算效率。

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