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A Corrosion Energy Feature Extract Algorithm of Aircraft Skin Based on Wavelet

机译:基于小波的飞机蒙皮腐蚀能量特征提取算法

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The mechanism of aircraft skin corrosion is studied and a corrosion detection algorithm based on wavelet analysis is proposed. First of all, the magneto-optic image is decomposed by the wavelet analysis. In the next place a feature vector is assigned whose components represent energy in each sub-image. Lastly, a 1-nearest neighbor method classifier is applied to classify the proceeding feature vector as either corresponding to a region of corrosion or corresponding to a region of non-corrosion. The experimental results demonstrate that the proposed algorithm is insensitive to noise and the features are easy to extract. The algorithm has high recognition ratios and robustness for corrosion detection and the most important is that it can meet the real-time request.
机译:研究了飞机蒙皮腐蚀的机理,提出了基于小波分析的腐蚀检测算法。首先,通过小波分析分解磁光图像。接下来,分配一个特征向量,其分量表示每个子图像中的能量。最后,使用1-最近邻方法分类器将进行中的特征向量分类为对应于腐蚀区域或对应于非腐蚀区域。实验结果表明,该算法对噪声不敏感,特征易于提取。该算法具有较高的识别率和鲁棒性,可以满足实时性要求。

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