Damage Identification in Structural Health Monitoring: A Brief Review from its Implementation to the Use of Data-Driven Applications

鉴定(生物学) 计算机科学 结构健康监测 过程(计算) 数据挖掘 数据收集 机器学习 数据科学 工程类 数学 植物 结构工程 生物 统计 操作系统
作者
Diego Alexander Tibaduiza Burgos,Ricardo C. Gomez Vargas,César Pedraza,David Agis,Francesc Pozo
出处
期刊:Sensors [MDPI AG]
卷期号:20 (3): 733-733 被引量:146
标识
DOI:10.3390/s20030733
摘要

The damage identification process provides relevant information about the current state of a structure under inspection, and it can be approached from two different points of view. The first approach uses data-driven algorithms, which are usually associated with the collection of data using sensors. Data are subsequently processed and analyzed. The second approach uses models to analyze information about the structure. In the latter case, the overall performance of the approach is associated with the accuracy of the model and the information that is used to define it. Although both approaches are widely used, data-driven algorithms are preferred in most cases because they afford the ability to analyze data acquired from sensors and to provide a real-time solution for decision making; however, these approaches involve high-performance processors due to the high computational cost. As a contribution to the researchers working with data-driven algorithms and applications, this work presents a brief review of data-driven algorithms for damage identification in structural health-monitoring applications. This review covers damage detection, localization, classification, extension, and prognosis, as well as the development of smart structures. The literature is systematically reviewed according to the natural steps of a structural health-monitoring system. This review also includes information on the types of sensors used as well as on the development of data-driven algorithms for damage identification.
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