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A fusion algorithm for infrared and visible images based on adaptive dual-channel unit-linking PCNN in NSCT domain

机译:NSCT域中基于自适应双通道单元链接PCNN的红外与可见图像融合算法

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摘要

In this paper, a novel fusion algorithm based on the adaptive dual-channel unit-linking pulse coupled neural network (PCNN) for infrared and visible images fusion in nonsubsampled contourlet transform (NSCT) domain is proposed. The flexible multi-resolution and directional expansion for images of NSCT are associated with global coupling and pulse synchronization characteristic of dual-PCNN. Compared with other dual-PCNN models, the proposed model possesses fewer parameters and is not difficult to implement adaptive, which is more suitable for image fusion. Firstly, the source images were multi-scale and multi-directional decomposed by NSCT. Then, to make dual-channel PCNN adaptive, the average gradient of each pixel was presented as the linking strength, and the time matrix was presented to determine the iteration number adaptively. In this fusion scheme, a novel sum modified-Laplacian of low-frequency subband and a modified spatial frequency of high-frequency subband were input to motivate the adaptive dual-channel unit-linking PCNN, respectively. Experimental results demonstrate that the proposed algorithm can significantly improve image fusion performance, accomplish notable target information and high contrast, simultaneously preserve rich details information, and excel other typical current methods in both objective evaluation criteria and visual effect. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文提出了一种基于自适应双通道单元链接脉冲耦合神经网络(PCNN)的融合算法,用于非下采样轮廓波变换(NSCT)域中的红外和可见图像融合。 NSCT图像的灵活多分辨率和方向扩展与双PCNN的全局耦合和脉冲同步特性相关。与其他双PCNN模型相比,该模型参数较少,自适应性不难实现,更适合图像融合。首先,通过NSCT对源图像进行多尺度,多方向分解。然后,为了使双通道PCNN具有自适应性,将每个像素的平均梯度作为链接强度,并给出时间矩阵以自适应地确定迭代次数。在这种融合方案中,分别输入了新颖的低频子带和-Laplacian和改进的高频子带-空间频率,以激励自适应双通道单元链接PCNN。实验结果表明,该算法可以显着提高图像融合性能,实现显着的目标信息和高对比度,同时保留丰富的细节信息,在客观评价标准和视觉效果上均优于其他典型方法。 (C)2015 Elsevier B.V.保留所有权利。

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