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首页> 外文期刊>International Journal of Wavelets, Multiresolution and Information Processing >WAVELET PACKET DECOMPOSITION FOR THE IDENTIFICATION OF CORROSION TYPE FROM ACOUSTIC EMISSION SIGNALS
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WAVELET PACKET DECOMPOSITION FOR THE IDENTIFICATION OF CORROSION TYPE FROM ACOUSTIC EMISSION SIGNALS

机译:小波包分解,用于从声发射信号中识别腐蚀类型

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摘要

Corrosion causes a degradation of the structural integrity of petrochemical plants, nuclear power plants, ships, bridges and other constructions containing steel with the consequence that people and the environment may be exposed to dangerous situations. The detection of corrosion and the prediction of the type of corrosion are studied in this article by means of the acoustic emission technique. We use a wavelet packet decomposition to compute features from the acoustic emission signals. The basis functions with the highest discriminative power are selected according to the highest pair-wise Kullback- Leibler divergence between distributions of wavelet coefficients. It is proven that the pair-wise Kullback-Leibler divergence used in the local discriminant basis algorithm requires class conditional independence of the wavelet coefficients. Several classification algorithms using the most discriminative wavelet coefficients are compared for the prediction of three types of corrosion and the absence of corrosion.
机译:腐蚀会导致石化厂,核电厂,轮船,桥梁和其他含钢结构的结构完整性下降,结果可能使人和环境面临危险状况。本文通过声发射技术研究了腐蚀的检测和腐蚀类型的预测。我们使用小波包分解来根据声发射信号计算特征。根据小波系数分布之间的最大逐对Kullback-Leibler散度选择具有最高判别力的基函数。证明了在局部判别基础算法中使用的成对Kullback-Leibler散度需要小波系数的类条件独立性。比较了使用最具判别性的小波系数的几种分类算法,以预测三种类型的腐蚀和不存在腐蚀。

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