Image Alignment using Norm Conserved GAT Correlation

T. Wakahara, Yukihiko Yamashita
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Abstract

This paper describes a new area-based image alignment technique, norm conserved GAT (Global Affine Transformation) correlation. The cutting-edge techniques of image alignment are mostly feature-based, such well-known techniques as SIFT, SURF, ASIFT, and ORB. The proposed technique determines affine parameters maximizing ZNCC (zero-means normalized cross-correlation) between warped and reference images. In experiments using artificially warped images subject to rotation, blur, random noise, a few kinds of general affine transformation, and a simple 2D projection transformation, we compare the proposed technique against the feature-based ORB (Oriented FAST and Rotated BRIEF), the competing areabased ECC (Enhanced Correlation Coefficient), the original GAT correlation, and the GPT (Global Projection Transformation) correlation techniques. We show a very promising ability of the proposed norm conserved GAT correlation by discussing the advantages and disadvantages of these techniques with respect to both ability of image alignment and computational complexity.
使用范数保守GAT相关的图像对齐
本文介绍了一种新的基于区域的图像对准技术——范数保守全局仿射变换相关。图像对齐的前沿技术大多是基于特征的,如SIFT、SURF、ASIFT、ORB等。该技术确定了扭曲图像和参考图像之间的仿射参数,使ZNCC(零均值归一化互相关)最大化。在实验中,我们使用人工扭曲的图像进行旋转、模糊、随机噪声、几种一般仿射变换和简单的二维投影变换,将所提出的技术与基于特征的ORB (Oriented FAST and rotational BRIEF)、基于竞争区域的ECC (Enhanced Correlation Coefficient)、原始GAT相关和GPT (Global projection transformation)相关技术进行比较。通过讨论这些技术在图像对齐能力和计算复杂性方面的优缺点,我们展示了所提出的范数保守GAT相关的非常有前途的能力。
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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