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Post-earthquake road damage assessment using region-based algorithms from high resolution satellite image

机译:使用基于区域的算法从高分辨率卫星图像中评估震后道路损坏

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Receiving accurate and comprehensive knowledge about the conditions of roads after earthquake strike are crucial in finding optimal paths and coordinating rescue missions. Continuous coverage of the disaster region and rapid access of high-resolution satellite images make this technology as a useful and powerful resource for post-earthquake damage assessment and the evaluation process. Along with this improved technology, object-oriented classification has become a promising alternative for classifying high-resolution remote sensing imagery, such as QuickBird, Ikonos. Thus, in this study, a novel approach is proposed for the automatic detection and assessment of damaged roads in urban areas based on object based classification techniques using post-event satellite image and vector map. The most challenging phase of the proposed region-based algorithm is the segmentation procedure. The extracted regions are then classified using nearest neighbor classifier making use of textural parameters. Then, an appropriate fuzzy inference system (FIS) is proposed for road damage assessment. Finally, the roads are correctly labeled as 'Blocked road' or 'Unblocked road' in the road damage assessment step. The proposed method was tested on QuickBird pan-sharpened image of Bam, Iran, concerning the devastating earthquake that occurred in December 2003. The visual investigation of the obtained results demonstrates the efficiency of the proposed approach.
机译:准确,全面地了解地震发生后的道路状况对于找到最佳路径和协调救援任务至关重要。对灾区的持续覆盖和对高分辨率卫星图像的快速访问使该技术成为地震灾后评估和评估过程的有用而强大的资源。伴随着这项改进的技术,面向对象的分类已成为对高分辨率遥感影像(如QuickBird,Ikonos)进行分类的有前途的替代方法。因此,在这项研究中,基于事件后卫星图像和矢量地图的基于对象的分类技术,提出了一种新的方法来自动检测和评估城市地区的受损道路。所提出的基于区域的算法的最具挑战性的阶段是分割过程。然后使用最近邻分类器利用纹理参数对提取的区域进行分类。然后,提出了一种合适的模糊推理系统(FIS)进行道路损伤评估。最后,在道路损坏评估步骤中,将道路正确标记为“封锁道路”或“畅通道路”。在2003年12月发生的毁灭性地震中,对伊朗巴姆(Bam)的QuickBird全景图像进行了测试,并对所获得的结果进行了目视研究,证明了该方法的有效性。

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