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首页> 外文期刊>Journal of the Indian Society of Remote Sensing >Remote Sensing Image Automatic Registration on Multi-scale Harris-Laplacian
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Remote Sensing Image Automatic Registration on Multi-scale Harris-Laplacian

机译:多尺度Harris-Laplacian遥感影像自动配准

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摘要

In order to overcome the difficulty of automatic image registration in image preprocessing, this paper presents an automatic registration algorithm for remote sensing images with different spatial resolutions. The algorithm is studied based on Harris-Laplacian corner detection, which can determine the affine transformation (zoom, rotation, translation) between images of different scales. The corners in the reference and registration images are firstly detected and located by a multi-scale Harris-Laplacian (H-L) corner detector. Secondly, the algorithm chooses SURF (Speeded Up Robust Feature) descriptor to calculate the detected corners descriptors. Then, the multi-resolution corner matching is achieved based on Euclid distance. Finally, according to the LoG (Laplacian Of Gaussian), the scale factor is automatically determined between reference and registration images. A number of remote sensing images are tested, and the experiments show that the studied algorithm can register two remote sensing images of different sizes and resolutions automatically. It also verifies that the algorithm has the lower time cost comparing with the other existing algorithms (e.g. SIFT) within certain detecting accuracy level. This algorithm is also useful for resolving the problem of potential errors due to parallax effects when establishing geometric affine transformation on corners for detecting on buildings with different unknown elevations.
机译:为了克服图像预处理中图像自动配准的困难,提出了一种具有不同空间分辨率的遥感图像自动配准算法。研究了基于哈里斯-拉普拉斯角点检测算法,该算法可以确定不同比例尺图像之间的仿射变换(缩放,旋转,平移)。首先通过多尺度哈里斯-拉普拉斯(H-L)角检测器检测并定位参考图像和配准图像中的角。其次,该算法选择SURF(加速鲁棒特征)描述符来计算检测到的角点描述符。然后,基于欧几里得距离实现多分辨率角点匹配。最后,根据LoG(高斯拉普拉斯算子),在参考图像和配准图像之间自动确定比例因子。对大量遥感图像进行了测试,实验表明该算法可以自动配准两张不同大小和分辨率的遥感图像。它还验证了该算法与特定检测精度水平内的其他现有算法(例如SIFT)相比具有较低的时间成本。当在拐角处建立几何仿射变换以检测具有不同未知高程的建筑物时,该算法对于解决由于视差效应而引起的潜在错误的问题也很有用。

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