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Log-Spiral Keypoint: A Robust Approach toward Image Patch Matching

机译:对数螺旋关键点:图像补丁匹配的可靠方法

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摘要

Matching of keypoints across image patches forms the basis of computer vision applications, such as object detection, recognition, and tracking in real-world images. Most of keypoint methods are mainly used to match the high-resolution images, which always utilize an image pyramid for multiscale keypoint detection. In this paper, we propose a novel keypoint method to improve the matching performance of image patches with the low-resolution and small size. The location, scale, and orientation of keypoints are directly estimated from an original image patch using a Log-Spiral sampling pattern for keypoint detection without consideration of image pyramid. A Log-Spiral sampling pattern for keypoint description and two bit-generated functions are designed for generating a binary descriptor. Extensive experiments show that the proposed method is more effective and robust than existing binary-based methods for image patch matching.
机译:跨图像补丁的关键点的匹配形成了计算机视觉应用程序的基础,例如现实世界中图像的对象检测,识别和跟踪。大多数关键点方法主要用于匹配高分辨率图像,这些高分辨率图像始终利用图像金字塔进行多尺度关键点检测。在本文中,我们提出了一种新颖的关键点方法,以提高低分辨率和小尺寸图像块的匹配性能。关键点的位置,大小和方向是使用对数螺旋采样模式进行关键点检测而直接从原始图像补丁中估算的,而无需考虑图像金字塔。设计了用于关键点描述的对数螺旋采样模式和两个位生成的函数,用于生成二进制描述符。大量实验表明,与现有的基于二进制的图像补丁匹配方法相比,所提出的方法更有效,更鲁棒。

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