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Structural damage detection using artificial neural networks and wavelet transform

机译:使用人工神经网络和小波变换的结构损伤检测

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摘要

With the ever-increasing demand for the safety and functionality of civil infrastructures, structure health monitoring (SHM) has now become more and more important. Recent developments in computational intelligence and digital signal processing offer great potentials to develop a more efficient, reliable, and robust structure damage identification system. In this paper, the application of artificial neural networks and wavelet analysis is investigated to develop an intelligent and adaptive structural damage detection system. The proposed approach is tested on an IASC (International Association for Structural Control)-ASCE (American Society of Civil Engineers) SHM benchmark problem. Satisfactory computer simulation results are obtained.
机译:随着对民用基础设施的安全性和功能性的需求不断增长,结构健康监控(SHM)现在变得越来越重要。计算智能和数字信号处理的最新发展为开发更高效,可靠和健壮的结构损伤识别系统提供了巨大的潜力。本文研究了人工神经网络和小波分析技术在智能,自适应结构损伤检测系统中的应用。在IASC(国际结构控制协会)-ASCE(美国土木工程师学会)SHM基准问题上测试了所提出的方法。获得令人满意的计算机仿真结果。

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