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Fast SIFT algorithm based on Sobel edge detector

机译:基于Sobel边缘检测器的快速SIFT算法

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The SIFT (Scale Invariant Feature Transform) algorithm is an approach for extracting distinctive invariant features from images. It is widely used in image matching. Since SIFT detector detects the extreme points through the whole scale space, it often selects keypoints that have no value and reduces the efficiency of the algorithm. This paper proposes a fast SIFT algorithm based on Sobel edge detector. Sobel edge detector is applied to generate an edge group scale space and SIFT detector detects the extreme point under the constraint of the edge group scale space. The experimental results show that the proposed algorithm decreases the redundancy of keypoints and speeds up the implementation while the matching rate between different images maintains at a high level. As the threshold of Sobel detector increases, number of keypoints decreases and matching rate gets higher.
机译:SIFT(尺度不变特征变换)算法是一种从图像中提取独特不变特征的方法。它广泛用于图像匹配。由于SIFT检测器会在整个尺度空间中检测出极端点,因此它通常会选择没有价值的关键点,从而降低了算法的效率。提出了一种基于Sobel边缘检测器的快速SIFT算法。应用Sobel边缘检测器生成边缘组标度空间,SIFT检测器在边缘组标度空间的约束下检测极点。实验结果表明,在不同图像之间的匹配率保持较高水平的同时,该算法减少了关键点的冗余度,加快了实现速度。随着Sobel检测器阈值的增加,关键点数量会减少,匹配率也会更高。

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