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Study on an Improved Robust Algorithm for Feature Point Matching

机译:一种改进的鲁棒特征点匹配算法研究

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Image matching is one of the keystones of computer vision. Feature point matching is the most common one among all kinds of image matching. Its matching result is affected greatly by many factors, such as object occlusions, lighting conditions and noises. In this paper, it uses a combined corner detection algorithm to detect corners, and equably selects parts of feature point in the first image to implement pre-matching, and based on the matching result to find the correspondences points of the other detected points. Experiments show that the results of the algorithm in the paper had high right matching rate and it has less computation demand.
机译:图像匹配是计算机视觉的重点之一。特征点匹配是所有图像匹配中最常见的一种。它的匹配结果受许多因素的很大影响,例如物体的遮挡,照明条件和噪音。本文采用组​​合角点检测算法对角点进行检测,并在第一幅图像中均匀选择特征点的一部分进行预匹配,并根据匹配结果找到其他被检测点的对应点。实验表明,该算法的结果具有较高的右匹配率,并且计算量较小。

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