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Enhanced Rotational Feature Points Matching using Orientation Correction

机译:使用方向校正的增强旋转特征点匹配

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Several techniques have been developed for estimating orientation assignment to make feature points invariant to the rotation for the purpose of matching. However, imperfect estimation of the orientation assignment may lead to feature mismatching and low number of correctly matched points.? Besides, several possible candidates with high correlation values for one feature in the reference image may lead to matching confusion. In this paper, we propose a post-processing matching technique to increase the number of correctly matched points and at the same time solve these two issues.? The key idea is to correct the orientation of features based on the relative rotational degree between two images which is estimated based on the orientation difference between major correctly matched points after first round matching. Our analysis of the proposed method shows that the number of correctly matched points can be increased up to 50% of the detected points in the reference image. In addition, some mismatched points due to similar correlation value in first round matching can be corrected. Moreover, the proposed algorithm can be applied to different states-of-the-art orientation assignment techniques.
机译:为了匹配,已经开发了几种技术来估计方向分配以使特征点相对于旋转不变。但是,方向分配的估计不正确可能会导致特征不匹配以及正确匹配的点数少。此外,对于参考图像中的一个特征,具有高相关性值的几种可能的候选者可能导致匹配混乱。在本文中,我们提出了一种后处理匹配技术,以增加正确匹配的点的数量,同时解决这两个问题。关键思想是基于两个图像之间的相对旋转度来校正特征的方向,该相对旋转度是根据第一轮匹配后主要正确匹配点之间的方向差估算的。我们对提出的方法的分析表明,正确匹配点的数量可以增加到参考图像中检测到的点的50%。另外,可以校正由于第一轮匹配中的相关值相似而导致的一些失配点。此外,所提出的算法可以应用于不同的最新方向分配技术。

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