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A state of the art review of modal-based damage detection in bridges: development, challenges, and solutions

机译:基于模态的桥梁损伤检测的最新回顾:发展,挑战和解决方案

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摘要

Traditionally, damage identification techniques in bridges have focused on monitoring changes to modal-based Damage Sensitive Features (DSFs) due to their direct relationship with structural stiffness and their spatial information content. However, their progression to real-world applications has not been without its challenges and shortcomings, mainly stemming from: (1) environmental and operational variations; (2) inefficient utilization of machine learning algorithms for damage detection; and (3) a general over-reliance on modal-based DSFs alone. The present paper provides an in-depth review of the development of modal-based DSFs and a synopsis of the challenges they face. The paper then sets out to addresses the highlighted challenges in terms of published advancements and alternatives from recent literature.
机译:传统上,桥梁中的损伤识别技术由于其与结构刚度及其空间信息含量的直接关系,因此一直专注于监视基于模式的损伤敏感特征(DSF)的变化。但是,它们向实际应用的发展并非没有挑战和缺点,主要是由于:(1)环境和操作方面的变化; (2)低效率地利用机器学习算法进行损伤检测; (3)普遍过度依赖仅基于模式的DSF。本文对基于模式的DSF的发展以及它们所面临的挑战进行了深入的综述。然后,本文着眼于解决已出版的进展和最新文献中的替代方案方面的突出挑战。

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