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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Discriminative wavelet shape descriptors for recognition of 2-D patterns
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Discriminative wavelet shape descriptors for recognition of 2-D patterns

机译:识别小波形状描述符的二维图案

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摘要

In this paper, we present a set of wavelet moment invariants, together with a discriminative feature selection method, for the classification of seemingly similar objects with subtle differences. These invariant features are selected automatically based on the discrimination measures defined for the invariant features. Using a minimum-distance classifier, our wavelet moment invariants achieved the highest classification rate for all four different sets tested, compared with Zernike's moment invariants and Li's moment invariants. For a test set consisting of 26 upper cased English letters, wavelet moment invariants could obtain 100% classification rate when applied to 26×30 randomly generated noisy and scaled letters, whereas Zernike's moment invariants and Li's moment invariants obtained only 98.7 and 75.3%, respectively. The theoretical and experimental analyses in this paper prove that the proposed method has the ability to classify many types of image objects, and is particularly suitable for classifying seemingly similar objects with subtle differences.
机译:在本文中,我们提出了一组小波矩不变性,以及一种判别性特征选择方法,用于对看似相似的对象(具有细微差别)进行分类。这些不变特征是根据为不变特征定义的区分度自动选择的。与Zernike的矩不变式和Li的矩不变式相比,使用最小距离分类器,我们的小波矩不变式在所有四个测试集上均达到了最高的分类率。对于由26个大写英文字母组成的测试集,将小波矩不变量应用于26×30个随机生成的有噪和缩放字母时,可以获得100%的分类率,而Zernike矩不变量和Li矩不变量分别分别获得98.7%和75.3% 。本文的理论和实验分析证明,该方法具有对多种类型的图像对象进行分类的能力,特别适用于对看起来有细微差别的相似对象进行分类。

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