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Building Roof Segmentation from Aerial Images Using a Line-and Region-Based Watershed Segmentation Technique

机译:使用基于线和区域的分水岭分割技术从航拍图像中进行建筑物屋顶分割

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摘要

In this paper, we present a novel strategy for roof segmentation from aerial images (orthophotoplans) based on the cooperation of edge- and region-based segmentation methods. The proposed strategy is composed of three major steps. The first one, called the pre-processing step, consists of simplifying the acquired image with an appropriate couple of invariant and gradient, optimized for the application, in order to limit illumination changes (shadows, brightness, etc.) affecting the images. The second step is composed of two main parallel treatments: on the one hand, the simplified image is segmented by watershed regions. Even if the first segmentation of this step provides good results in general, the image is often over-segmented. To alleviate this problem, an efficient region merging strategy adapted to the orthophotoplan particularities, with a 2D modeling of roof ridges technique, is applied. On the other hand, the simplified image is segmented by watershed lines. The third step consists of integrating both watershed segmentation strategies into a single cooperative segmentation scheme in order to achieve satisfactory segmentation results. Tests have been performed on orthophotoplans containing 100 roofs with varying complexity, and the results are evaluated with the VINETcriterion using ground-truth image segmentation. A comparison with five popular segmentation techniques of the literature demonstrates the effectiveness and the reliability of the proposed approach. Indeed, we obtain a good segmentation rate of 96% with the proposed method compared to 87.5% with statistical region merging (SRM), 84% with mean shift, 82% with color structure code (CSC), 80% with efficient graph-based segmentation algorithm (EGBIS) and 71% with JSEG.
机译:在本文中,我们基于基于边缘和区域的分割方法的协作,提出了一种从空中图像(正射影像)进行屋顶分割的新策略。拟议的策略包括三个主要步骤。第一个步骤称为预处理步骤,包括使用适当的不变和梯度对简化采集的图像,并针对应用进行优化,以限制影响图像的照明变化(阴影,亮度等)。第二步包括两个主要的并行处理:一方面,简化的图像被分水岭区域分割。即使此步骤的第一次分割通常可以提供良好的效果,但图像经常会被过度分割。为了缓解这个问题,应用了一种适用于正射影像特殊性的有效区域合并策略,并采用了屋脊技术的二维建模。另一方面,简化的图像被分水岭线分割。第三步包括将两种分水岭分割策略集成到单个协作分割方案中,以实现令人满意的分割结果。已对包含100个不同复杂度的屋顶的正射影像进行了测试,并通过VINETcriterion使用地面真相图像分割对结果进行了评估。与文献中五种流行的分割技术的比较证明了所提方法的有效性和可靠性。确实,我们提出的方法的分割率达到了96%,而统计区域合并(SRM)的分割率则为87.5%,平均移位的分割率为84%,颜色结构代码(CSC)的分割率为82%,基于图形的有效分割率为80%细分算法(EGBIS),JSEG占71%。

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