首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >HIGH RESOLUTION SAR IMAGING EMPLOYING GEOMETRIC FEATURES FOR EXTRACTING SEISMIC DAMAGE OF BUILDINGS
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HIGH RESOLUTION SAR IMAGING EMPLOYING GEOMETRIC FEATURES FOR EXTRACTING SEISMIC DAMAGE OF BUILDINGS

机译:高分辨率SAR成像几何特征提取建筑物的震害。

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Synthetic Aperture Radar (SAR) image is relatively easy to acquire but difficult for interpretation. This paper probes how to identify seismic damage of building using geometric features of SAR. The SAR imaging geometric features of buildings, such as the high intensity layover, bright line induced by double bounce backscattering and dark shadow is analysed, and show obvious differences texture features of homogeneity, similarity and entropy in combinatorial imaging geometric regions between the un-collapsed and collapsed buildings in airborne SAR images acquired in Yushu city damaged by 2010 Ms7.1 Yushu, Qinghai, China earthquake, which implicates a potential capability to discriminate collapsed and un-collapsed buildings from SAR image. Study also shows that the proportion of highlight (layover & bright line) area (HA) is related to the seismic damage degree, thus a SAR image damage index (SARDI), which related to the ratio of HA to the building occupation are of building in a street block (SA), is proposed. While HA is identified through feature extraction with high-pass and low-pass filtering of SAR image in frequency domain. A partial region with 58 natural street blocks in the Yushu City are selected as study area. Then according to the above method, HA is extracted, SARDI is then calculated and further classified into 3 classes. The results show effective through validation check with seismic damage classes interpreted artificially from post-earthquake airborne high resolution optical image, which shows total classification accuracy 89.3?%, Kappa coefficient 0.79 and identical to the practical seismic damage distribution. The results are also compared and discussed with the building damage identified from SAR image available by other authors.
机译:合成孔径雷达(SAR)图像相对容易获取,但难以解释。本文探讨了如何利用SAR的几何特征识别建筑物的地震破坏。分析了建筑物的SAR成像几何特征,如高强度下垂,双反弹反向散射引起的亮线和暗影,并在未塌陷的组合成像几何区域中显示出同质性,相似性和熵的明显纹理特征。在2010年青海玉树Ms7.1地震中受损的玉树市获取的机载SAR图像中的建筑物以及倒塌的建筑物,这暗示了从SAR图像中识别出倒塌和未塌陷的建筑物的潜在能力。研究还表明,高光(覆盖和亮线)区域(HA)的比例与地震破坏程度有关,因此,与建筑物占HA比例的SAR图像破坏指数(SARDI)有关建议在街区(SA)中使用。虽然HA是通过特征提取以及频域中的SAR图像的高通和低通滤波来识别的。玉树市部分具有58条自然街道的部分地区被选为研究区域。然后根据上述方法,提取HA,然后计算SARDI,并将其进一步分为3类。结果表明,通过对地震后的机载高分辨率光学图像进行人工解释的地震破坏类别的验证检查,该方法是有效的,其分类总准确度为89.3%,Kappa系数为0.79,与实际地震破坏分布相同。还将结果与其他作者从SAR图像中识别出的建筑物损坏进行比较和讨论。

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