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A fusion algorithm for infrared and visible images based on RDU-PCNN and ICA-bases in NSST domain

机译:NSST域中基于RDU-PCNN和ICA的红外与可见图像融合算法

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The aim of infrared and visible image fusion is to enhance the feature in infrared image and preserve abundant detail information in visible image. Based on the fact that the human sense system accepts external stimulation only when the stimulus intensity is greater than a certain value and the reaction of neuronal cells have obvious regional characters, an image fusion algorithm based on region dual channel unit-linking pulse coupled neural networks (RDU-PCNN) and independent component analysis (ICA) bases in non-subsampled shearlet transform (NSST) domain for infrared and visible images is proposed. RDU-PCNN we constructed has obvious regional characters and much lower computational costs. We trained ICA-bases using a number of images that the content and statistical properties are similar with the fusion images but applied it as low-frequency ICA-bases, which can reduce calculation complexity. Experimental results demonstrate that the proposed method can significantly improved the fusion quality and need less computational costs. (C) 2016 Elsevier B.V. All rights reserved.
机译:红外和可见光图像融合的目的是增强红外图像的功能并在可见光图像中保留大量细节信息。基于人类感知系统仅在刺激强度大于一定值并且神经元细胞的反应具有明显的区域特征时才接受外部刺激的事实,基于区域双通道单元链接脉冲耦合神经网络的图像融合算法(RDU-PCNN)和独立分量分析(ICA)在红外和可见光图像的非下采样小波变换(NSST)域中的基础。我们构建的RDU-PCNN具有明显的区域特征,并且计算成本低得多。我们使用许多图像训练了ICA基,这些图像的内容和统计特性与融合图像相似,但是将其用作低频ICA基,可以降低计算复杂度。实验结果表明,该方法可以显着提高融合质量,并且需要较少的计算成本。 (C)2016 Elsevier B.V.保留所有权利。

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