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An Infrared-Visible Image Registration Method Based on the Constrained Point Feature

机译:基于受约束点特征的红外可见图像登记方法

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摘要

It is difficult to find correct correspondences for infrared and visible image registration because of different imaging principles. Traditional registration methods based on the point feature require designing the complicated feature descriptor and eliminate mismatched points, which results in unsatisfactory precision and much calculation time. To tackle these problems, this paper presents an artful method based on constrained point features to align infrared and visible images. The proposed method principally contains three steps. First, constrained point features are extracted by employing an object detection algorithm, which avoids constructing the complex feature descriptor and introduces the senior semantic information to improve the registration accuracy. Then, the left value rule (LV-rule) is designed to match constrained points strictly without the deletion of mismatched and redundant points. Finally, the affine transformation matrix is calculated according to matched point pairs. Moreover, this paper presents an evaluation method to automatically estimate registration accuracy. The proposed method is tested on a public dataset. Among all tested infrared-visible image pairs, registration results demonstrate that the proposed framework outperforms five state-of-the-art registration algorithms in terms of accuracy, speed, and robustness.
机译:由于不同的成像原理,难以找到对红外和可见图像配准的正确关应关系。基于点特征的传统注册方法需要设计复杂的特征描述符并消除不匹配的点,这导致不满意的精度和计算时间。为了解决这些问题,本文提出了一种基于约束点特征的艺术方法,以对准红外和可见图像。所提出的方法主要包含三个步骤。首先,通过采用对象检测算法来提取约束点特征,该对象检测算法避免构建复杂特征描述符并介绍高级语义信息以提高登记精度。然后,左值规则(LV-RULE)旨在严格匹配约束点而不删除不匹配和冗余点。最后,根据匹配的点对计算仿射变换矩阵。此外,本文提出了一种自动估计登记准确性的评估方法。所提出的方法在公共数据集上进行测试。在所有测试的红外可见图像对中,注册结果表明,所提出的框架在准确性,速度和稳健性方面优于五种最先进的登记算法。

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