基于像素显著性的双正交小波多聚焦图像融合

Pinakin Suryavanshi
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引用次数: 1

摘要

图像融合的目的是将多幅图像中的所有重要信息结合在一起,使融合后的图像比单个输入图像包含更准确、更全面的信息。本文提出利用双正交小波对多聚焦图像进行融合,在小波域内实现“全聚焦”。为了计算融合像素值,对源像素进行加权平均,在不同的多分辨率分解层次上,通过建立像素之间的亲子关系,自适应地确定像素的权重。双正交小波的对称性和线性相位两个重要特性被用于图像融合,因为它们能够保留边缘信息,从而减少融合图像中的畸变。本文在多对多聚焦图像上对所提方法的性能进行了广泛的测试,并利用包括Petrovic参数在内的知名参数与最近提出的五种方法进行了定量比较。结果表明,这项工作的主要成就是,它显著提高了融合图像的质量,无论是在视觉上还是在标准彼得罗维奇参数方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multifocus image fusion based on pixel significance using biorthogonal wavelets
Image fusion is gaining momentum in the research community with the aim of combining all the important information from multiple images such that the fused image contains more accurate and comprehensive information than that contained in the individual input images. In this paper, it is proposed to fuse multifocus images to get `all-in-focus' in the wavelet domain using biorthogonal wavelets. To compute fused pixel value, weighted average of the source pixels is taken, where the weight to be given to the pixel is adaptively decided by establishing parent-child relationship among the pixels at different levels of multiresolution decomposition. Two important properties wavelet symmetry and linear phase of biorthogonal wavelets have been exploited for image fusion because they are capable to preserve edge information and hence reducing the distortions in the fused image. The performance of the proposed method have been extensively tested on several pairs of multifocus images and also compared quantitatively with five recently proposed methods with the help of well-known parameters including Petrovic parameters. Results show that the major achievement of this work is that it significantly increases the quality of the fused image, both visually and in terms of standard Petrovic parameters.
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