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EARTHQUAKE-INDUCED BUILDING DAMAGE ESTIMATION USING ALOS/PALSAR OBSERVING THE 2007 PERU EARTHQUAKE

机译:利用ALOS / PalSAR观测到的2007年秘鲁地震引起的建筑损伤

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With the aim of developing a model for estimating building damage from synthetic aperture radar (SAR) data at L-band, which is appropriate for Peru, we propose a regression discriminant function based on field survey data in Pisco, which was seriously affected by the 2007 Peru earthquake. The function can discriminate damage ranks corresponding to the severe damage ratio of buildings using ALOS/PALSAR imagery of the disaster area before and after the earthquake. By calculating the differences in and correlations of backscattering coefficients, which were explanatory variables of the regression discriminant function, we determined an optimum window size capable of estimating the degree of damage more accurately. A normalized likelihood function for the severe damage ratio was developed based on discriminant scores of the regression discriminant function.
机译:为了开发适用于秘鲁的L波段合成孔径雷达(SAR)数据估算建筑物损坏的模型,我们提出了基于Pisco现场调查数据的回归判别函数,该函数受到了Pisco的严重影响。 2007年秘鲁地震。该功能可以使用地震前后灾区的ALOS / PALSAR图像来区分与建筑物的严重破坏比率相对应的破坏等级。通过计算作为回归判别函数的解释变量的反向散射系数的差异和相关性,我们确定了能够更准确地估计损坏程度的最佳窗口尺寸。基于回归判别函数的判别分数,开发了针对严重损害比率的归一化似然函数。

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