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首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Improving the performance of image classification by Hahn moment invariants
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Improving the performance of image classification by Hahn moment invariants

机译:通过Hahn矩不变性提高图像分类的性能

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摘要

The discrete orthogonal moments are powerful descriptors for image analysis and pattern recognition. However, the computation of these moments is a time consuming procedure. To solve this problem, a new approach that permits the fast computation of Hahn's discrete orthogonal moments is presented in this paper. The proposed method is based, on the one hand, on the computation of Hahn's discrete orthogonal polynomials using the recurrence relation with respect to the variable x instead of the order n and the symmetry property of Hahn's polynomials and, on the other hand, on the application of an innovative image representation where the image is described by a number of homogenous rectangular blocks instead of individual pixels. The paper also proposes a new set of Hahn's invariant moments under the translation, the scaling, and the rotation of the image. This set of invariant moments is computed as a linear combination of invariant geometric moments from a finite number of image intensity slices. Several experiments are performed to validate the effectiveness of our descriptors in terms of the acceleration of time computation, the reconstruction of the image, the invariability, and the classification. The performance of Hahn's moment invariants used as pattern features for a pattern classification application is compared with Hu [IRE Trans. Inform. Theory 8, 179 (1962)] and Krawchouk [IEEE Trans. Image Process. 12, 1367 (2003)] moment invariants.
机译:离散的正交矩是图像分析和模式识别的强大描述符。但是,这些力矩的计算是一个耗时的过程。为了解决这个问题,本文提出了一种可以快速计算Hahn离散正交矩的新方法。一方面,所提出的方法是基于对变量x的递归关系而不是阶数n和汉恩多项式的对称性,并使用相对于变量x的递归关系来计算汉恩离散正交多项式,另一方面创新图像表示的应用,其中图像由多个同质矩形块而不是单个像素描述。本文还提出了在图像的平移,缩放和旋转下的一组新的Hahn不变矩。这组不变矩被计算为来自有限数量的图像强度切片的不变几何矩的线性组合。在加速时间计算,图像重建,不变性和分类方面,进行了几次实验以验证我们的描述符的有效性。将Hahn矩不变量用作模式分类应用程序的模式特征的性能与Hu [IRE Trans。通知。理论8,179(1962)]和Krawchouk [IEEE Trans。图像处理。 12,1367(2003)]不变矩。

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