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A new approach to corner matching from image sequence using fuzzy similarity index

机译:基于图像相似度指标的图像序列角点匹配的新方法

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摘要

Corner matching in image sequences is an important and difficult problem that serves as a building block of several important applications of stereo vision etc. Normally, in area-based corner matching techniques, the linear measures like standard cross correlation coefficient, zero-mean (normalized) cross correlation coefficient, sum of absolute difference and sum of squared difference are used. Fuzzy logic is a powerful tool to solve many image processing problems because of its ability to deal with ambiguous data. In this paper, we use a similarity measure based on fuzzy correlations in order to establish the corner correspondence between sequence images in the presence of intensity variations and motion blur. The matching approach proposed here needs only to extract one set of corner points as candidates from the left image (first frame), and the positions of which in the right image (second frame) are determined by matching, not by extracting. Experiments conducted with the help of various sequences of images prove the superiority of our algorithm over standard and zero-mean cross correlation as well as one contemporary work using mutual information as a window similarity measure combined with graph matching techniques under non-ideal conditions.
机译:图像序列中的角点匹配是一个重要且困难的问题,是立体视觉等重要应用的基础。通常,在基于区域的角点匹配技术中,线性度量(如标准互相关系数,零均值(归一化) )使用互相关系数,绝对差之和和平方差之和。由于模糊逻辑处理模糊数据的能力,因此它是解决许多图像处理问题的强大工具。在本文中,我们使用基于模糊相关性的相似性度量,以便在存在强度变化和运动模糊的情况下建立序列图像之间的角点对应关系。这里提出的匹配方法仅需要从左图像(第一帧)中提取一组角点作为候选,并且其在右图像(第二帧)中的位置是通过匹配而不是通过提取来确定的。在各种图像序列的帮助下进行的实验证明了我们的算法优于标准和零均值互相关的算法,以及使用互信息作为窗口相似性度量并结合非理想条件下的图形匹配技术的当代作品。

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