A Novel Approach to Corner Matching Using Fuzzy Similarity Measure

A. Dutta, A. Kar, B. N. Chatterji
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引用次数: 3

Abstract

Corner matching in sequence images serves as a building block of several important applications of stereo vision. In this paper, we establish the corner correspondence between two images in the presence of intensity variations and motion blur by using a fuzzy theory based similarity measure. The matching approach proposed by us needs to extract set of corner points as candidates from both the frames. Experiments conducted with the help of various sequences of images prove the superiority of our algorithm over standard cross correlation and sum of absolute difference under non-ideal conditions.
一种基于模糊相似度测度的角点匹配新方法
序列图像的角点匹配是立体视觉几个重要应用的基础。在本文中,我们利用基于模糊理论的相似性度量来建立存在强度变化和运动模糊的两幅图像之间的角对应关系。我们提出的匹配方法需要从两个帧中提取一组角点作为候选点。在各种图像序列的帮助下进行的实验证明了该算法在非理想条件下优于标准互相关和绝对差和。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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