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Deformation extraction and its analysis based on wavelet transform

机译:基于小波变换的变形提取及其分析

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Explanation of deformation results is crucial to obtain deformation mechanism. So far, various kinds of math models for modeling or prediction of deformation information are obtained. Each model shows its merit and demerit. For example, Auto Regressive (AR), Moving Average (MA) or ARMA is fit for modeling or prediction, but it is hard to obtain deformation mechanism from it. Wavelet transform that is the result of contemporary mathematics development has shown great role in information extraction and identification. It is used as a tool to deal with deformation extraction and analysis in this paper. Tests have shown that it can be applied to distinguish different components from mixed observation serials. We start from introduction on wavelet transform to some engineering application and analysis. It is known that an observed serial in deformation monitoring is composed of sophisticated components and each represents different contents and is attributed to some acting factors. In this research, regional and engineering deformation observation is employed as inputs for wavelet decomposition; contents from different frequency scales are obtained at different layers. Deformation trend and rapid deformation changes are found from this multiple inspection transformation. Practical examples are given to reveal the feasibility of wavelet decomposition as a useful inspection tool for deformation analysis.
机译:变形结果的说明对于获得变形机制至关重要。到目前为止,获得了用于建模或预测变形信息的各种数学模型。每个模型都显示其优点和缺点。例如,自动回归(AR),移动平均(MA)或ARMA适用于建模或预测,但很难从中获得变形机制。小波变换是当代数学发展的结果,在信息提取和识别中表现出巨大的作用。它用作处理本文的变形提取和分析的工具。测试表明它可以应用于区分不同的组分与混合观察序列。我们从小波变换引入到某种工程应用和分析开始。已知在变形监测中观察到的串联由复杂的组成组成,并且每个内容物组成,并且归因于一些作用因子。在本研究中,区域和工程变形观察被用作小波分解的输入;从不同的层获得不同频率尺度的内容。从该多种检查转换中发现了变形趋势和快速变形变形。给出了实际的例子,揭示了小波分解作为变形分析的有用检查工具的可行性。

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