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Assigning Main Orientation to an EOH Descriptor on Multispectral Images

机译:在多光谱图像上为EOH描述符分配主要方向

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摘要

This paper proposes an approach to compute an EOH (edge-oriented histogram) descriptor with main orientation. EOH has a better matching ability than SIFT (scale-invariant feature transform) on multispectral images, but does not assign a main orientation to keypoints. Alternatively, it tends to assign the same main orientation to every keypoint, e.g., zero degrees. This limits EOH to matching keypoints between images of translation misalignment only. Observing this limitation, we propose assigning to keypoints the main orientation that is computed with PIIFD (partial intensity invariant feature descriptor). In the proposed method, SIFT keypoints are detected from images as the extrema of difference of Gaussians, and every keypoint is assigned to the main orientation computed with PIIFD. Then, EOH is computed for every keypoint with respect to its main orientation. In addition, an implementation variant is proposed for fast computation of the EOH descriptor. Experimental results show that the proposed approach performs more robustly than the original EOH on image pairs that have a rotation misalignment.
机译:本文提出了一种以主方向计算EOH(边缘直方图)描述符的方法。在多光谱图像上,EOH具有比SIFT(尺度不变特征变换)更好的匹配能力,但没有为关键点分配主要方向。或者,它倾向于为每个关键点分配相同的主要方向,例如零度。这将EOH限制为仅平移未对齐图像之间的匹配关键点。遵守此限制,我们建议将关键方向分配给使用PIIFD(部分强度不变特征描述符)计算的主要方向。在该方法中,从图像中检测出SIFT关键点作为高斯差的极值,并将每个关键点分配给使用PIIFD计算的主要方向。然后,针对每个关键点针对其主要方向计算EOH。另外,提出了用于EOH描述符的快速计算的实施变型。实验结果表明,所提出的方法在具有旋转未对准的图像对上的性能比原始EOH更为强大。

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