使用特征点提取和泽尼克矩不变性的自动鲁棒图像配准

M. S. Yasein, P. Agathoklis
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引用次数: 8

摘要

本文提出了一种新的图像配准算法。在注册过程中考虑旋转、平移和缩放(RTS)转换。该算法包括三个主要步骤:利用基于墨西哥-hat小波尺度交互作用的鲁棒特征点提取器提取特征点;利用以特征点为中心的邻域泽尼克矩获得参考图像与畸变图像的特征点对应关系;估计畸变图像到参考图像的变换参数。实验结果表明了该方法的配准精度和对几种常见图像处理操作的鲁棒性
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic and robust image registration using feature points extraction and Zernike moments invariants
In this paper a new image registration algorithm is proposed. Rotation, translation, and scaling (RTS) transformations are considered in the registration process. The proposed algorithm consists of three main steps: extraction of some feature points using a robust feature points extractor based on scale-interaction of Mexican-hat wavelets, obtaining the correspondence between the features points of the reference and distorted images based on using Zernike moments of neighbourhoods centered on feature points, and estimating the transformation parameters mapping the distorted image to the reference one. Experimental results illustrate the registration accuracy of the proposed technique and its robustness against several common image-processing operations
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