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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >A Novel Keypoint Detector Combining Corners and Blobs for Remote Sensing Image Registration
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A Novel Keypoint Detector Combining Corners and Blobs for Remote Sensing Image Registration

机译:一种新颖的Keypoint探测器,组合角落和Blobs用于遥感图像配准

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摘要

Keypoint detection is a crucial step for feature-based image registration. The traditional detectors only extract one type of keypoint such as a corner or a blob, which is not quite beneficial to image registration. Accordingly, this letter presents a novel keypoint detector that aims to simultaneously extract corners and blobs. The proposed detector is named as Harris-Difference of Gaussian (DoG), which combines the advantages of the Harris-Laplace corner detector and the DoG blob detector. In the definition of Harris-DoG, we first build an image scale space and extract the corners by using the multiscale Harris detector. Then, these corners are screened by an automatic scale selection technique based on their DoG responses. This can make the corners robust to scale changes. Meanwhile, DoG also is used to detect the blobs in the image scale space by a nonmaxima suppression scheme. Finally, the scale invariant feature transform (SIFT) descriptors are computed for the detected corners and blobs, and they are applied together for image registration. The proposed Harris-DoG has been tested by using three pairs of multisensor remote sensing images. The experimental results show that Harris-DoG can effectively increase the number of correct matches and improve the registration accuracy compared with the state-of-the-art keypoint detectors.
机译:关键点检测是基于特征的图像配准的重要步骤。传统的探测器只提取一种类型的关键点,例如角落或斑点,这对图像配准不是非常有益。因此,这封信呈现了一种新型关键点检测器,其旨在同时提取角落和斑点。所提出的探测器被命名为高斯(狗)的哈里斯 - 差异,这相结合了Harris-Laplace角探测器和狗Blob探测器的优势。在Harris-Dog的定义中,我们首先使用MultiScale Harris检测器构建图像刻度空间并提取角落。然后,通过基于其狗反应的自动比例选择技术筛选这些角落。这可以使角变得稳健的变化。同时,狗还用于通过非混凝木抑制方案检测图像刻度空间中的斑点。最后,针对检测到的角和诸多计算尺度不变特征变换(SIFT)描述符,它们被应用于图像配准。通过使用三对多传感器遥感图像测试了所提出的哈里斯犬。实验结果表明,与最先进的关键点检测器相比,哈里斯犬可以有效地增加正确匹配的数量并提高登记精度。

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