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Extraction of a series of Novel Damage Sensitive Features derived from the Continuous Wavelet Transform of input and output acceleration measurements

机译:从输入和输出加速度测量的连续小波变换中提取一系列新颖的损伤敏感特征

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This paper proposes a series of novel Damage Sensitive Features for earthquake damage estimation. The features take into account input (ground motion) and output acceleration (structure response) measurements. The Continuous Wavelet Transform is applied to both acceleration signals in order to obtain both time domain and frequency domain resolution. An algorithm that has been proposed for Maximum Entropy Deconvolution is applied to the Continuous Wavelet Transforms in order to obtain a matrix that relates the output wavelet coefficients to the input ones. The Damage Sensitive Features are then derived through statistical processing of the resulting matrix. This algorithm has been applied on data acquired from shake table tests where the structures were subjected to progressive damage. The proposed features are compared to response quantities that are indicative of damage (such as the hysteretic energy dissipated) and show high correlation with the extent of damage. The data utilized has not been pre-processed, illustrating the robustness of the algorithm against sensor noise. The proposed algorithm has several advantages: Minimal input and knowledge of the structure is required. More information on the structure's state is extracted through use of both the input and output signals than when only output signal is considered. Only two acceleration measurements are required to obtain a damage forecast utilizing primarily the strong motion recordings, resulting in easier sensor deployment. The use of strong motion recordings allows for information delivery immediately after an earthquake without additional data collection.
机译:本文提出了一系列新颖的地震敏感度特征用于地震破坏估计。这些功能考虑了输入(地面运动)和输出加速度(结构响应)测量。连续小波变换应用于两个加速度信号,以获得时域和频域分辨率。为了获得将输出小波系数与输入小波系数相关联的矩阵,将针对最大熵解卷积提出的算法应用于连续小波变换。然后,通过对所得矩阵进行统计处理,得出损伤敏感特征。该算法已应用于从振动台测试中获得的数据,在这些测试中,结构受到了逐渐的破坏。将建议的功能与表示损坏(例如耗散的滞回能量)并显示出与损坏程度高度相关的响应量进行比较。所使用的数据尚未进行预处理,从而说明了该算法针对传感器噪声的鲁棒性。所提出的算法具有以下优点:最少的输入和结构知识。与仅考虑输出信号时相比,通过使用输入和输出信号可以提取有关结构状态的更多信息。只需进行两次加速度测量即可获得主要利用强运动记录进行的损坏预测,从而简化了传感器的部署。使用强力运动记录可以在地震后立即进行信息传递,而无需收集其他数据。

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