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首页> 外文期刊>International journal of digital Earth >Evaluation of effectiveness of three fuzzy systems and three texture extraction methods for building damage detection from post-event LiDAR data
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Evaluation of effectiveness of three fuzzy systems and three texture extraction methods for building damage detection from post-event LiDAR data

机译:三种模糊系统的有效性评价及三种纹理提取方法从事后激光雷达数据建立损伤检测

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Building damage maps after disasters can help us to better manage the rescue operations. Researchers have used Light Detection and Ranging (LiDAR) data for extracting the building damage maps. For producing building damage maps from LiDAR data in a rapid manner, it is necessary to understand the effectiveness of features and classifiers. However, there is no comprehensive study on the performance of features and classifiers in identifying damaged areas. In this study, the effectiveness of three texture extraction methods and three fuzzy systems for producing the building damage maps was investigated. In the proposed method, at first, a pre-processing stage was utilized to apply essential processes on post-event LiDAR data. Second, textural features were extracted from the pre-processed LiDAR data. Third, fuzzy inference systems were generated to make a relation between the extracted textural features of buildings and their damage extents. The proposed method was tested across three areas over the 2010 Haiti earthquake. Three building damage maps with overall accuracies of 75.0%, 78.1% and 61.4% were achieved. Based on outcomes, the fuzzy inference systems were stronger than random forest, bagging, boosting and support vector machine classifiers for detecting damaged buildings.
机译:在灾难之后建立损坏地图可以帮助我们更好地管理救援行动。研究人员使用了光检测和测距(LIDAR)数据来提取建筑物损坏图。为了以快速的方式生产从LIDAR数据的建筑物损坏地图,有必要了解特征和分类器的有效性。但是,对识别受损区域的特征和分类器的性能没有全面研究。在这项研究中,研究了三种纹理提取方法的有效性和用于制造建筑物损伤图的三种模糊系统。在所提出的方法中,首先,利用预处理阶段在事件后激光雷达数据上应用基本过程。其次,从预处理的LIDAR数据中提取了纹理特征。第三,产生模糊推理系统,以使建筑物的提取态度与损坏范围之间的关系。在2010年海地地震的三个领域测试了该方法。达到了三大建筑损伤地图,总体准确性为75.0%,78.1%和61.4%。基于结果,模糊推理系统比随机森林,装袋,升压和支持向量机分类器更强大,用于检测损坏的建筑物。

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