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Signal Pattern Recognition for Damage Diagnosis in Structures

机译:信号模式识别在结构损伤诊断中的应用

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摘要

A signal-based pattern-recognition approach is used for structural damage diagnosis with a single or limited number of input/output signals. The approach is based on extraction of the features of the structural response that present a unique pattern for each specific damage case. In this study, frequency-based features and time-frequency-based features were extracted from measured vibration signals by Fast Fourier Transform (FFT) and continuous wavelet transform (CWT) to form one-dimensional or two-dimensional patterns, respectively. Three pattern-matching algorithms including correlation, least-square distance, and Cosh spectral distance were investigated for pattern matching. To demonstrate the validity of the approach, numerical and experimental studies were conducted on a simple three-story steel building. Results showed that features of the signal for different damage scenarios could be uniquely identified by these transformations, and suitable correlation algorithms could perform pattern matching that identified both damage location and damage severity. Meanwhile, statistical issues for more complex structures as well as the choice of wavelet functions are discussed.
机译:基于信号的模式识别方法可用于具有单个或数量有限的输入/输出信号的结构损伤诊断。该方法基于结构响应特征的提取,这些结构响应特征针对每种特定损伤情况提供了独特的模式。在这项研究中,通过快速傅里叶变换(FFT)和连续小波变换(CWT)从测得的振动信号中提取基于频率的特征和基于时频的特征,分别形成一维或二维模式。研究了三种模式匹配算法,包括相关性,最小二乘距离和Cosh光谱距离,以进行模式匹配。为了证明该方法的有效性,在一个简单的三层钢结构建筑上进行了数值和实验研究。结果表明,通过这些变换可以唯一标识不同损害情况下的信号特征,并且合适的相关算法可以执行模式匹配,从而识别损害位置和损害严重性。同时,讨论了更复杂结构的统计问题以及小波函数的选择。

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  • 来源
    《Computer-Aided Civil and Infrastructure Engineering 》 |2012年第9期| p.699-710| 共12页
  • 作者单位

    Department of Engineering Technology, Missouri Western State University, Saint Joseph, MO, USA;

    Department of Civil Engineering, Kansas State University, Manhattan, KS, USA;

    Department of Civil Engineering, Kansas State University, Manhattan, KS, USA;

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