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首页> 外文期刊>Geomatics,Natural Hazards & Risk >Seismic vulnerability assessment at urban scale using data mining and GIScience technology: application to Urumqi (China)
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Seismic vulnerability assessment at urban scale using data mining and GIScience technology: application to Urumqi (China)

机译:使用数据挖掘和GISCIENCE技术在城市规模上进行地震脆弱性评估:在乌鲁木齐(中国)

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摘要

Seismic vulnerability assessments play a significant role in comprehensive risk mitigation efforts and seismic emergency planning, especially for urban areas with a high population density and a complex construction environment. Traditional approaches such as in situ fieldwork are accurate for conducting seismic vulnerability assessments of buildings; however, they are too much time and cost-consuming, especially in moderate to low seismic hazard regions. To address this issue, an integrated approach for a macroseismic vulnerability assessment composed of data mining methods and GIScience technology was presented and applied to Urumqi, China. First, vulnerability proxies were established via in situ data of buildings in the Tianshan District with an EMS-98 vulnerability classification scheme and two data mining methods, namely, support vector machine and association rule learning methods. Then, vulnerability proxies were applied to the Urumqi database, and the accuracy was validated. Finally, seismic risk maps were constructed through data consisting of direct damage to buildings and human casualties. The results indicated that the two data mining methods could achieve desirable accuracies and stabilities when estimating the seismic vulnerability. The seismic risk of Urumqi was estimated as Slight with a predicted number of 61,380 homeless people for a seismic intensity scenario of VIII.
机译:地震脆弱性评估在综合风险缓解努力和地震应急规划中发挥着重要作用,特别是对于具有高人口密度和复杂建筑环境的城市地区。传统方法,如原位实地,对建筑物的地震脆弱性评估进行准确;然而,它们太多时间和成本耗费,特别是在中度到低地震危险区域。为了解决这个问题,提出了一种由数据挖掘方法和GISCIENCE技术组成的宏观激烈漏洞评估的综合方法,并应用于中国乌鲁木齐。首先,通过天山地区的建筑物的原位数据建立漏洞代理,具有EMS-98漏洞分类方案和两个数据挖掘方法,即支持向量机和关联规则学习方法。然后,将漏洞代理应用于URUMQI数据库,并验证了准确性。最后,通过与建筑物和人类伤亡的直接损坏组成的数据构建地震风险地图。结果表明,在估计地震脆弱性时,两种数据采矿方法可以实现所需的准确性和稳定性。乌鲁木齐的地震风险被估计为略微的61,380名无家可归者,八里的地震强度情景。

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