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A Novel Algorithm for View and Illumination Invariant Image Matching

机译:一种视角和照度不变图像匹配的新算法

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The challenges in local-feature-based image matching are variations of view and illumination. Many methods have been recently proposed to address these problems by using invariant feature detectors and distinctive descriptors. However, the matching performance is still unstable and inaccurate, particularly when large variation in view or illumination occurs. In this paper, we propose a view and illumination invariant image-matching method. We iteratively estimate the relationship of the relative view and illumination of the images, transform the view of one image to the other, and normalize their illumination for accurate matching. Our method does not aim to increase the invariance of the detector but to improve the accuracy, stability, and reliability of the matching results. The performance of matching is significantly improved and is not affected by the changes of view and illumination in a valid range. The proposed method would fail when the initial view and illumination method fails, which gives us a new sight to evaluate the traditional detectors. We propose two novel indicators for detector evaluation, namely, valid angle and valid illumination, which reflect the maximum allowable change in view and illumination, respectively. Extensive experimental results show that our method improves the traditional detector significantly, even in large variations, and the two indicators are much more distinctive.
机译:基于局部特征的图像匹配面临的挑战是视图和照明的变化。最近已经提出了许多通过使用不变特征检测器和独特描述符来解决这些问题的方法。但是,匹配性能仍然不稳定且不准确,尤其是在出现较大的视角或照明变化时。在本文中,我们提出了一种视角和照度不变的图像匹配方法。我们迭代地估计图像的相对视图和照明的关系,将一个图像的视图转换为另一个图像,并对其照明进行归一化以进行精确匹配。我们的方法的目的不是要增加检测器的不变性,而是要提高匹配结果的准确性,稳定性和可靠性。匹配性能显着提高,并且不受有效范围内视图和照明变化的影响。当初始观察和照明方法失败时,所提出的方法将失败,这为我们评估传统探测器提供了新的视野。我们提出了两种用于检测器评估的新颖指标,即有效角度和有效照度,它们分别反映了视角和照度的最大允许变化。大量的实验结果表明,即使在较大的变化范围内,我们的方法也显着改进了传统检测器,并且两个指标更具特色。

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