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Paper cut-out pattern recognition based on wavelet moment invariants

机译:基于小波矩不变量的纸张剪断模式识别

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Wavelet moment features of image can reflect the image's part and whole characteristics and have strong anti-jamming ability. We use wavelet moments extracted from Paper-cut patterns to get multi-scale features. Combined with the paper-cut images' characteristics, the different mean and standard deviation of eigenvector are used to compute resolution and produce N class model feature selection. Finally, the eigenvectors are sent to nearest neighbor classifier for recognition. Experiments show that this method is effective in distinguishing paper cut-cut patterns with noise contamination or geometric deformation.
机译:图像的小波力矩特征可以反映图像的部分和整体特征,具有强烈的抗干扰能力。我们使用从剪纸模式中提取的小波矩来获得多尺度特征。结合剪纸图像'特性,特征向量的不同均值和标准偏差用于计算分辨率并产生n类模型特征选择。最后,将特征向量发送到最近的邻居分类器以进行识别。实验表明,该方法在用噪声污染或几何变形区分纸张切割模式方面是有效的。

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