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A Zernike Moment Phase-Based Descriptor for Local Image Representation and Matching

机译:基于Zernike矩相位的描述符用于局部图像表示和匹配

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摘要

A local image descriptor robust to the common photometric transformations (blur, illumination, noise, and JPEG compression) and geometric transformations (rotation, scaling, translation, and viewpoint) is crucial to many image understanding and computer vision applications. In this paper, the representation and matching power of region descriptors are to be evaluated. A common set of elliptical interest regions is used to evaluate the performance. The elliptical regions are further normalized to be circular with a fixed size. The normalized circular regions will become affine invariant up to a rotational ambiguity. Here, a new distinctive image descriptor to represent the normalized region is proposed, which primarily comprises the Zernike moment (ZM) phase information. An accurate and robust estimation of the rotation angle between a pair of normalized regions is then described and used to measure the similarity between two matching regions. The discriminative power of the new ZM phase descriptor is compared with five major existing region descriptors (SIFT, GLOH, PCA-SIFT, complex moments, and steerable filters) based on the precision-recall criterion. The experimental results, involving more than 15 million region pairs, indicate the proposed ZM phase descriptor has, generally speaking, the best performance under the common photometric and geometric transformations. Both quantitative and qualitative analyses on the descriptor performances are given to account for the performance discrepancy. First, the key factor for its striking performance is due to the fact that the ZM phase has accurate estimation accuracy of the rotation angle between two matching regions. Second, the feature dimensionality and feature orthogonality also affect the descriptor performance. Third, the ZM phase is more robust under the nonuniform image intensity fluctuation. Finally, a time complexity analysis is provided.
机译:对常见的光度转换(模糊,照明,噪声和JPEG压缩)和几何转换(旋转,缩放,平移和视点)具有鲁棒性的本地图像描述符对于许多图像理解和计算机视觉应用至关重要。本文将对区域描述符的表示和匹配能力进行评估。一组常见的椭圆兴趣区域用于评估性能。椭圆区域进一步标准化为具有固定大小的圆形。归一化的圆形区域将变得仿射不变,直到旋转模糊。在此,提出了一种新的代表标准化区域的独特图像描述符,该描述符主要包含Zernike矩(ZM)相位信息。然后描述了一对归一化区域之间的旋转角度的精确且鲁棒的估计,并将其用于测量两个匹配区域之间的相似性。根据精确召回标准,将新ZM相位描述符的判别能力与五个主要的现有区域描述符(SIFT,GLOH,PCA-SIFT,复矩和可控滤波器)进行比较。实验结果涉及超过1500万个区域对,表明所提出的ZM相描述符在一般的光度和几何变换下具有最佳性能。对描述符性能的定量和定性分析都考虑到了性能差异。首先,其惊人性能的关键因素是由于ZM相位具有两个匹配区域之间旋转角度的准确估计精度。其次,特征维数和特征正交性也影响描述符的性能。第三,在不均匀的图像强度波动下,ZM相位更加稳健。最后,提供了时间复杂度分析。

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