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EARTHQUAKE DAMAGE CLASSIFICATION METHOD BASED ON SUPPORT VECTOR MACHINES

机译:基于支持向量机的地震损伤分类方法

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This paper presents an efficient method for automatic seismic damage assessment on multistory constructions. Support Vector Machines (SVMs) are trained in order to acquire compact and efficient damage assessment models for buildings of interest. The learned models lead to drastic computational reductions of seismic damage assessment, avoiding the need for explicit calculation of the dynamic response of buildings. Comparisons with a previous study testify the effectiveness of the proposed method. The trained models are able to discriminate negligible from severe damages with 100% accuracy. Further clustering, with more damage categories, provides promising results.
机译:本文提出了一种用于多层建筑的自动地震破坏评估的有效方法。支持向量机(SVM)经过培训,以便为感兴趣的建筑物获取紧凑而有效的损坏评估模型。学习的模型可以大大减少地震破坏评估的计算量,从而无需对建筑物的动力响应进行显式计算。与以前的研究比较证明了该方法的有效性。经过训练的模型能够以100%的准确度将可忽略不计的严重损坏与微弱地区分开。具有更多损坏类别的进一步聚类提供了可喜的结果。

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