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Automatic segmentation of VHR images using type information of local structures acquired by mathematical morphology

机译:使用数学形态学获取的局部结构类型信息自动分割VHR图像

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摘要

The morphological profile (MP) and differential morphological profile (DMP) have been used extensively to acquire spatial information to be used in the segmentation of very high resolution (VHR) remotely sensed images. In most of the previous approaches, the maxima of the MP and DMP were investigated to estimate the best representative scale in the spatial domain for the pixel under consideration. Then, the object type (i.e. dark, bright or flat) was estimated based on the location of the maximum. Finally, the image segmentation was performed using the scale and type information as features. This approach usually causes over-segmentation. In this study, we also investigate the relevance of the DMP and the meaningful object types underlying the pixel of interest, however, instead of the maxima of the DMP, the type information is estimated using the whole DMP which is weighted by a weight function. Thus, the scale is not estimated directly but used indirectly in the estimation of the characteristic type for the object to which the pixel belongs. Then, the pixels are clustered based on their types only. The method has been applied to panchromatic high resolution QuickBird satellite images of the city of Ankara, Turkey. The results of the method were compared with previous studies and the proposed method seems to segment the images more precisely and semantically than the previous approaches.
机译:形态学轮廓(MP)和差异形态学轮廓(DMP)已被广泛用于获取空间信息,以用于分割非常高分辨率(VHR)的遥感图像。在大多数以前的方法中,对MP和DMP的最大值进行了研究,以针对所考虑的像素估计空间域中的最佳代表比例。然后,根据最大值的位置估算对象类型(即暗,亮或平坦)。最后,以比例尺和类型信息为特征进行图像分割。这种方法通常会导致过度细分。在这项研究中,我们还研究了DMP的相关性和关注像素背后的有意义的对象类型,但是,不是使用DMP的最大值,而是使用整个DMP估计类型信息,该DMP由权重函数加权。因此,比例不是直接估计的,而是在像素所属对象的特征类型的估计中间接使用的。然后,仅根据像素类型对像素进行聚类。该方法已应用于土耳其安卡拉市的全色高分辨率QuickBird卫星图像。该方法的结果与以前的研究进行了比较,所提出的方法似乎比以前的方法更准确,更语义地分割图像。

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