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Image fusion scheme using a novel dual-channel PCNN in lifting stationary wavelet domain

机译:提升平稳小波域中使用新型双通道PCNN的图像融合方案

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摘要

This paper presents a new multi-source image fusion scheme based on lifting stationary wavelet transform (LSWT) and a novel dual-channel pulse-coupled neural network (PCNN). By using LSWT, we can calculate a flexible multiscale and shift-invariant representation of registered images. After decomposing the original images using LSWT, a new dual-channel pulse coupled neural network, which can overcome some shortcomings of original PCNN for image fusion and putout the fusion image directly, is proposed and used for the fusion of sub-band coefficients of LSWT. In this fusion scheme, a new sum-modified-laplacian(NSML) of the low frequency sub-band image, which represent the edge-feature of the low frequency sub-band image in SLWT domain, is presented and input to motivate the dual-channel PCNN. For the fusion of high frequency sub-band coefficients, a novel local neighborhood modified-laplacian (LNML) measurement is developed and used as external stimulus to motivate the dual-channel PCNN. This fusion scheme is verified on several sets of multi-source images, and the experiments show that the algorithms proposed in the paper can significantly improve image fusion performance, compared with the fusion algorithms such as traditional wavelet, LSWT, and LSWT-PCNN in terms of objective criteria and visual appearance.
机译:本文提出了一种基于提升平稳小波变换(LSWT)的新型多源图像融合方案和一种新颖的双通道脉冲耦合神经网络(PCNN)。通过使用LSWT,我们可以计算注册图像的灵活多尺度和平移不变表示形式。利用LSWT分解原始图像后,提出了一种新的双通道脉冲耦合神经网络,它可以克服原始PCNN的一些缺点,可以直接将融合图像进行融合,并用于融合LSWT的子带系数。 。在这种融合方案中,提出了一种新的低频子带图像的总和-修正拉普拉斯算子(NSML),它代表了SLWT域中低频子带图像的边缘特征,并被输入以激励通道PCNN。为了融合高频子带系数,开发了一种新颖的局部邻域修正拉普拉斯(LNML)测量方法,并将其用作外部刺激来激励双通道PCNN。该融合方案在多组多源图像上得到了验证,实验表明,与传统的小波,LSWT和LSWT-PCNN等融合算法相比,本文提出的算法可以显着提高图像融合性能。客观标准和视觉外观。

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