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Combined invariants to blur and rotation using Zernike moment descriptors

机译:使用Zernike矩描述符将不变量组合为模糊和旋转

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摘要

Moment invariants that are not affected by geometric transform have been utilized as pattern features in a number of applications. But in most cases, images are processed subject to blur degradations. The traditional blur invariant sets were constructed using geometric moments, central moments or complex moments. However, these non-orthogonal moments are generally considered as a disadvantage over orthogonal moments, such as Zernike, pseudo-Zernike, and Legendre moments, in decreasing information redundancy and sensitivity to noises. To solve this problem, this paper addresses a method for recognizing objects in an image in a way that is invariant to images' blur and rotation transformations to improve the robustness to noises. The proposed method is based on Zernike descriptors which are orthogonal over a unit circle, and is invariant to a central symmetric blur, such as linear motion or out-of-focus blur. We present a mathematical framework of obtaining the Zernike moments of blurred images, and a framework of deriving the combined blur and rotation invariants. The classification experimental results are presented to confirm the proposed method outperforms other similar ones in the presence of various blur-degraded and rotation-transformed images.
机译:不受几何变换影响的矩不变量已在许多应用中用作模式特征。但是在大多数情况下,图像的处理会受到模糊效果的影响。传统的模糊不变集是使用几何矩,中心矩或复数矩构造的。但是,这些非正交矩通常被认为比诸如Zernike,伪Zernike和Legendre矩之类的正交矩在降低信息冗余度和对噪声的敏感性方面不利。为了解决这个问题,本文提出了一种识别图像中对象的方法,该方法与图像的模糊和旋转变换保持不变,从而提高了对噪声的鲁棒性。所提出的方法基于在单位圆上正交的Zernike描述符,并且对于中心对称模糊(例如线性运动或离焦模糊)不变。我们提出了获得模糊图像的Zernike矩的数学框架,以及推导组合的模糊和旋转不变量的框架。提出了分类实验结果,以证实该方法在存在各种模糊退化和旋转变换图像的情况下优于其他类似方法。

著录项

  • 来源
    《Pattern Analysis and Applications》 |2010年第3期|P.309-319|共11页
  • 作者单位

    Department of Electronics and Communications Engineering,East China University of Science and Technology,No. 130 Mei Long Road, 200237 Shanghai,People's Republic of China;

    rnDepartment of Electronics and Communications Engineering,East China University of Science and Technology,No. 130 Mei Long Road, 200237 Shanghai,People's Republic of China;

    rnDepartment of Electronics and Communications Engineering,East China University of Science and Technology,No. 130 Mei Long Road, 200237 Shanghai,People's Republic of China;

    rnDepartment of Electronics and Communications Engineering,East China University of Science and Technology,No. 130 Mei Long Road, 200237 Shanghai,People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    zernike moments; radial moments; blur invariants; rotation invariants; classification; pattern recognition;

    机译:泽尼克时刻径向力矩模糊不变量;旋转不变量分类;模式识别;

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