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Seismic performance assessments of school buildings in Taiwan using artificial intelligence theories

机译:利用人工智能理论,台湾学校建筑的地震性能评估

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PurposeTaiwan experiences frequent seismic activity. Major earthquakes in recent history have seriously damaged the school buildings. School buildings in Taiwan are intended to serve both as places of education and as temporary shelters in the aftermath of major earthquakes. Therefore, the seismic performance assessments of school buildings are critical issues that deserve investigation.Design/methodology/approachThis paper develops a methodology that uses principal component analysis to generalize the seismic factors from the basic seismic parameters of school buildings, uses data mining to cluster different school building sizes and uses grey theory to analyze the relationship between seismic factors and the seismic performance of school buildings. Additionally, this paper employs the Artificial Neural Network (ANN) to deduce the seismic assessment model for school buildings. Finally, it adopts support vector machine to validate the ANN's deductive results.FindingsAn empirical study was conducted on 326 school buildings in the central area of Taichung City, Taiwan, to illustrate the effectiveness of the proposed approach. Results show that thickness of wall and width of middle-row column relate significantly with school-building seismic performance.Originality/valueThis paper provides a model that structural engineers or architects may use to design school buildings that are adequately resistant to earthquakes as well as a reference for future academic research.
机译:Purposetaiwan经历频繁的地震活动。近期历史的主要地震严重损坏了学校建筑。台湾的学校建筑旨在作为教育的地方以及主要地震后的临时庇护所。因此,学校建筑的地震性能评估是值得调查的关键问题.Design/Methodology/ApproChisChisPishis纸张制定一种使用主成分分析来推广来自学校建筑的基本地震参数的地震因素的方法,使用数据挖掘与集群不同学校建设规模,采用灰色理论分析了地震因素与学校建筑地震表现的关系。此外,本文采用人工神经网络(ANN)向学校建筑推导出地震评估模型。最后,它采用支持向量机验证安尼亚的演绎结果.Findingsan实证研究在台湾台中市中心地区的326座学校建筑中进行,以说明提出的方法的有效性。结果表明,中产柱的壁厚度和宽度与学校建筑地震表现有关。人物/贵宾纸提供了一个模型,结构工程师或建筑师可以使用对地震充分抵抗地震的学校建筑物以及一个模型参考未来学术研究。

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