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Complex Zernike Moments Features for Shape-Based Image Retrieval

机译:复杂的Zernike矩特征可用于基于形状的图像检索

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Shape is a fundamental image feature used in content-based image-retrieval systems. This paper proposes a robust and effective shape feature, which is based on a set of orthogonal complex moments of images known as Zernike moments (ZMs). As the rotation of an image has an impact on the ZM phase coefficients of the image, existing proposals normally use magnitude-only ZM as the image feature. In this paper, we compare, by using a mathematical form of analysis, the amount of visual information captured by ZM phase and the amount captured by ZM magnitude. This analysis shows that the ZM phase captures significant information for image reconstruction. We therefore propose combining both the magnitude and phase coefficients to form a new shape descriptor, referred to as invariant ZM descriptor (IZMD). The scale and translation invariance of IZMD could be obtained by prenormalizing the image using the geometrical moments. To make the phase invariant to rotation, we perform a phase correction while extracting the IZMD features. Experiment results show that the proposed shape feature is, in general, robust to changes caused by image shape rotation, translation, and/or scaling. The proposed IZMD feature also outperforms the commonly used magnitude-only ZMD in terms of noise robustness and object discriminability.
机译:形状是基于内容的图像检索系统中使用的基本图像功能。本文提出了一种鲁棒且有效的形状特征,该特征基于一组称为Zernike矩(ZMs)的正交正交图像矩。由于图像的旋转会影响图像的ZM相位系数,因此现有建议通常将仅幅度ZM用作图像特征。在本文中,我们通过使用数学形式的分析来比较ZM相位捕获的视觉信息量和ZM幅度捕获的视觉信息量。该分析表明,ZM阶段捕获了大量用于图像重建的信息。因此,我们建议组合幅度和相位系数以形成一个新的形状描述符,称为不变ZM描述符(IZMD)。通过使用几何矩对图像进行预归一化,可以获得IZMD的比例尺和平移不变性。为了使相位对于旋转不变,我们在提取IZMD特征的同时执行相位校正。实验结果表明,所提出的形状特征通常对图像形状旋转,平移和/或缩放所引起的变化具有鲁棒性。在噪声鲁棒性和对象可辨别性方面,建议的IZMD功能也优于常用的仅幅度ZMD。

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