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An Efficient Invariant Matching across Different View Images

机译:不同视图图像之间的有效不变匹配

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摘要

To solve the problem that there is few invariant features, which can be extracted from both images, to be matched for large changes of view, an efficient invariant image matching approach is presented. The proposed approach consists of two main steps. In the first step, we use the multi-resolution strategy to detect maximally stable extremal regions (MSERs) and obtain the geometric transformation between each pair of all corresponding regions of the two images. In the second step, using those transformations, we warp each ellipse region in the other image to another pose in which the region looks similar to the ellipse region in the reference image, and use the scale invariant difference-of-Gaussian (DoG) detector, the scale-invariant feature transform (SIFT) feature descriptor and the nearestext distance ratios metric to obtain the initial matching results. To eliminate the false pairs of the matching results, the random sample consensus (RANSAC) algorithm with epipolar constraint is used. Experimental results are provided to illustrate the performance of the proposed method.
机译:为了解决不变性特征少的问题,可以从两个图像中提取出不变性特征以匹配较大的视角变化,提出了一种有效的不变性图像匹配方法。提议的方法包括两个主要步骤。在第一步中,我们使用多分辨率策略来检测最大稳定的极值区域(MSER),并获得两幅图像的所有对应区域的每一对之间的几何变换。在第二步中,使用这些变换,将另一幅图像中的每个椭圆区域变形为另一个姿势,在该姿势中该区域看起来与参考图像中的椭圆区域相似,并使用尺度不变高斯差分(DoG)检测器,比例尺不变特征变换(SIFT)特征描述符和最近/下一个距离比度量标准,以获得初始匹配结果。为了消除匹配结果的错误对,使用具有对极约束的随机样本共识(RANSAC)算法。实验结果提供了说明该方法的性能。

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