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Robust image matching algorithm using SIFT on multiple layered strategies

机译:基于sIFT的多层策略鲁棒图像匹配算法

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摘要

As for the unsatisfactory accuracy caused by SIFT (scale-invariant feature transform) in complicated image matching, a novel matching method on multiple layered strategies is proposed in this paper. Firstly, the coarse data sets are filtered by Euclidean distance. Next, geometric feature consistency constraint is adopted to refine the corresponding feature points, discarding the points with uncoordinated slope values. Thirdly, scale and orientation clustering constraint method is proposed to precisely choose the matching points. The scale and orientation differences are employed as the elements of -means clustering in the method. Thus, two sets of feature points and the refined data set are obtained. Finally, 3 * delta rule of the refined data set is used to search all the remaining points. Our multiple layered strategies make full use of feature constraint rules to improve the matching accuracy of SIFT algorithm. The proposed matching method is compared to the traditional SIFT descriptor in various tests. The experimental results show that the proposed method outperforms the traditional SIFT algorithm with respect to correction ratio and repeatability.
机译:针对SIFT(尺度不变特征变换)在复杂图像匹配中精度不高的问题,提出了一种基于多层策略的新颖匹配方法。首先,通过欧几里得距离对粗数据集进行过滤。接下来,采用几何特征一致性约束来细化相应的特征点,并丢弃斜率值不协调的点。第三,提出了尺度和方向聚类约束方法来精确选择匹配点。该方法将尺度和方向差异用作-means聚类的元素。因此,获得了两组特征点和改进的数据集。最后,使用精炼数据集的3 * delta规则搜索所有剩余点。我们的多层策略充分利用了特征约束规则,提高了SIFT算法的匹配精度。在各种测试中,将所提出的匹配方法与传统的SIFT描述子进行了比较。实验结果表明,该方法在校正率和可重复性方面均优于传统的SIFT算法。

著录项

  • 作者

    Chen Y.; Shang L.; Hu E.;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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