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首页> 外文期刊>IEEE Transactions on Instrumentation and Measurement >A Global Expectation–Maximization Approach Based on Memetic Algorithm for Vibration-Based Structural Damage Detection
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A Global Expectation–Maximization Approach Based on Memetic Algorithm for Vibration-Based Structural Damage Detection

机译:基于模因算法的整体期望最大化方法在基于振动的结构损伤检测中的应用

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This paper proposes a novel unsupervised damage detection approach based on a memetic algorithm that establishes the normal or undamaged condition of a structural system as data clusters through a global xpectation–maximization technique, using only damage-sensitive features extracted from output-only vibration measurements. The health state is then discriminated by considering the Mahalanobis squared distance between the learned clusters and a new observation. The proposed approach is compared with state-of-the-art ones by taking into account real-world data sets from the Z-24 Bridge (Switzerland), where several damage scenarios were performed. The results indicated that the proposed approach can be applied in structural health monitoring applications where life safety, economic, and reliability issues are the most important motivations to consider.
机译:本文提出一种新颖的无监督损伤检测方法,该方法基于一种模因算法,该方法通过全局xpectation-maximumization技术仅使用从仅输出振动测量中提取的损伤敏感特征,将结构系统的正常或未损坏条件建立为数据簇。然后,通过考虑学习到的簇之间的马氏距离平方和新观察值来区分健康状态。通过考虑来自Z-24桥(瑞士)的实际数据集,将提出的方法与最先进的方法进行了比较,在Z-24桥上进行了几种破坏方案。结果表明,所提出的方法可以应用在结构健康监测应用中,其中生命安全,经济和可靠性问题是最重要的考虑因素。

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