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A novel multiscale transform decomposition based multi-focus image fusion framework

机译:基于多尺度转换分解的多焦距图像融合框架

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摘要

In this work, we propose a novel multiscale transform decomposition model for multi-focus image fusion to get a better fused performance. The motivation of the proposed fusion framework is to make full use of the decomposition characteristics of multiscale transform. The nonsubsampled contourlet transform (NSCT) is firstly used to decompose the source multi-focus images into low-frequency (LF) and several high-frequency (HF) bands to separate out the two basic characteristics of source images, i.e., principal information and edge details. The common "average" and "max-absolute" fusion rules are performed on low- and high-frequency components, respectively, and a basic fusion image is generated. Then the difference images between the basic fused image and the source images are calculated, and the energy of the gradient (EOG) of difference images are utilized to refine the basic fused image by integrating average filter and median filter. Visual and quantitative using fusion metrics like VIFF, Q(S), MI, Q(AB/F), SD, Q(PC) and running time comparisons to state-of-the-art algorithms demonstrate the out-performance of the proposed fusion technique.
机译:在这项工作中,我们提出了一种用于多焦型图像融合的新型多尺度变换分解模型,以获得更好的融合性能。所提出的融合框架的动机是充分利用多尺度变换的分解特征。首先用于将源多焦图像分解为低频(LF)和几个高频(HF)频带的非比验型轮廓变换(NSCT)以分离源图像的两个基本特征,即主信息和边缘细节。在低频和高频分量上执行常见的“平均”和“最大绝对”融合规则,并生成基本融合图像。然后计算基本熔融图像和源图像之间的差异图像,并且利用差异图像的梯度(Eog)的能量来通过积分平均滤波器和中值滤波器来优化基本熔融图像。使用Quify度量的视觉和定量,如viff,q(s),mi,q(ab / f),sd,q(pc)和运行时间比较,最先进的算法证明了提出的出现融合技术。

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