首页> 外文期刊>Journal of the Indian Society of Remote Sensing >Estimating the Numbers and the Areas of Collapsed Buildings by Combining VHR Images, Statistics and Survey Data: a Case Study of the Lushan Earthquake in China
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Estimating the Numbers and the Areas of Collapsed Buildings by Combining VHR Images, Statistics and Survey Data: a Case Study of the Lushan Earthquake in China

机译:结合VHR图像,统计数据和调查数据估算倒塌房屋的数量和面积:以中国庐山地震为例

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摘要

Accurately obtaining the structures and damage types of buildings in earthquake stricken areas is fundamental to supporting rescue forces and estimating economic losses and casualties. As the stricken areas are often much larger than the areas covered by very high resolution (VHR) images, the information obtained from VHR images cannot satisfy practical needs. This study developed a method for estimating the structures and types of damaged buildings by combining VHR images, statistics and ground survey data. First, the rates of damaged buildings with different structures and damage types were manually interpreted from VHR images covering a small part of the stricken area, and further corrected by ground survey data. Second, the corrected rates were reallocated to the seismic intensity zones. Third, the rates in the seismic intensity zones and the statistical data were combined to estimate the numbers and areas of damaged buildings in villages, towns and counties. The presented method was applied to estimate the damages caused by the Lushan earthquake in China. The results indicated that our method can efficiently estimate the amount of the damages and complement existing work on only automatic extracting damaged buildings from VHR images.
机译:准确获得地震灾区建筑物的结构和损坏类型对于支持救援人员并估算经济损失和人员伤亡至关重要。由于受灾区域通常比高分辨率(VHR)图像覆盖的区域大得多,因此从VHR图像获得的信息无法满足实际需求。这项研究开发了一种通过结合VHR图像,统计数据和地面勘测数据来估算受损建筑物的结构和类型的方法。首先,从覆盖灾区一小部分的VHR图像中手动解释具有不同结构和损坏类型的受损建筑物的发生率,并通过地面调查数据进行进一步校正。其次,将校正后的比率重新分配给地震烈度带。第三,结合地震烈度带的发生率和统计数据,估算出乡村,乡镇县的受损建筑物的数量和面积。将该方法用于估算中国庐山地震造成的破坏。结果表明,我们的方法可以有效地估计损坏程度,并且仅从VHR图像中自动提取受损建筑物即可补充现有工作。

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