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A Theory of Phase Singularities for Image Representation and its Applications to Object Tracking and Image Matching

机译:图像表示的相位奇异性理论及其在目标跟踪和图像匹配中的应用

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This paper studies phase singularities (PSs) for image representation. We show that PSs calculated with Laguerre-Gauss filters contain important information and provide a useful tool for image analysis. PSs are invariant to image translation and rotation. We introduce several invariant features to characterize the core structures around PSs and analyze the stability of PSs to noise addition and scale change. We also study the characteristics of PSs in a scale space, which lead to a method to select key scales along phase singularity curves. We demonstrate two applications of PSs: object tracking and image matching. In object tracking, we use the iterative closest point algorithm to determine the correspondences of PSs between two adjacent frames. The use of PSs allows us to precisely determine the motions of tracked objects. In image matching, we combine PSs and scale-invariant feature transform (SIFT) descriptor to deal with the variations between two images and examine the proposed method on a benchmark database. The results indicate that our method can find more correct matching pairs with higher repeatability rates than some well-known methods.
机译:本文研究了用于图像表示的相位奇异点(PS)。我们显示,使用拉格高斯滤波器计算的PS包含重要信息,并为图像分析提供了有用的工具。 PS对于图像平移和旋转是不变的。我们介绍了几种不变特征来表征PS周围的核心结构,并分析PS对噪声添加和尺度变化的稳定性。我们还研究了尺度空间中PS的特性,从而导致了一种沿着相位奇异曲线选择关键尺度的方法。我们演示了PS的两种应用:对象跟踪和图像匹配。在目标跟踪中,我们使用迭代最近点算法来确定两个相邻帧之间的PS对应关系。 PS的使用使我们能够精确确定被跟踪对象的运动。在图像匹配中,我们将PS和比例尺不变特征变换(SIFT)描述符相结合,以处理两幅图像之间的差异,并在基准数据库上检查提出的方法。结果表明,与某些众所周知的方法相比,我们的方法可以找到更多具有更高重复率的正确匹配对。

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