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A novel image registration method based on SIFT and verification mechanism

机译:一种基于SIFT和验证机制的新型图像配准法

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摘要

Image registration has been widely used in image mosaic, medical image processing, robot vision, pattern recognition and other fields. Normally, the similarity measure that measures the similarity between feature point structures is employed to determine whether feature points in the image are matched to those in the reference image. However, this measure cannot guarantee all the feature points to be correctly matched. The existing state-of-the-art technologies like the Scale Invariant Feature Transform (SIFT) or the Speeded-Up Robust Features (SURF) also suffers from mismatched feature point problem, which will degrade the registration accuracy. To remedy this, this paper proposes a novel algorithm based on SIFT and the verification mechanism of feature point pairs. Firstly, the feature points set of initial matches is obtained by the SIFT algorithm. Then the invariance of affine transformation is used to test the corner set and selects accurate reference points for image registration. Finally, the feature points with similar structure are used to carry out the angle constraint. Experimental results show that the proposed verification mechanism can eliminate false matching points with similar structure, and thus improve the accuracy of image registration.
机译:图像配准已广泛用于图像马赛克,医学图像处理,机器人视觉,模式识别等领域。通常,采用测量特征点结构之间相似度的相似度测量来确定图像中的特征点是否与参考图像中的那些相匹配。但是,该措施无法保证要正确匹配的所有特征点。现有的最先进技术,如规模不变特征变换(SIFT)或加速强大的功能(SURD)也存在不匹配的特征点问题,这将降低注册精度。要解决此问题,本文提出了一种基于SIFT的新算法和特征点对的验证机制。首先,通过SIFT算法获得初始匹配的特征点集。然后,仿射变换的不变性用于测试角落集,并为图像配准选择准确的参考点。最后,使用具有类似结构的特征点来执行角度约束。实验结果表明,所提出的验证机制可以消除具有相似结构的假匹配点,从而提高图像配准的准确性。

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