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A fusion method for visible light and infrared images based on FFST and compressed sensing

机译:基于FFST和压缩感知的可见光与红外图像融合方法

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In order to enhance the efficiency in the process of image fusion, a novel fusion algorithm of infrared and visible images is proposed. First of all, fast finite shearlet transform (FFST) on both the infrared image and the visible image is performed to get a low frequency sub-band and a certain amount of high frequency sub-bands. Then, the Sum Modified Laplacian (SML) fusion algorithm is used for the low frequency sub-band. For the each directional high frequency sub-bands, the compressive measurements are obtained by the block Compressed Sensing (CS). And the measurements are fused with the rule of maximum variance. The fused measurements are reconstructed through the Smoothed Projected Landweber (SPL) algorithm. Finally, the fused image is reconstructed by using inverse FFST. Experimental results demonstrate that the proposed algorithm can obtain better fusion effect and improve the operation efficiency.
机译:为了提高图像融合过程中的效率,提出了一种新的红外与可见光图像融合算法。首先,对红外图像和可见图像都进行快速有限剪切波变换(FFST),以获得低频子带和一定数量的高频子带。然后,将Sum Modified Laplacian(SML)融合算法用于低频子带。对于每个定向高频子带,通过块压缩感知(CS)获得压缩测量值。并且将测量与最大方差规则融合在一起。融合后的测量值通过“平滑投影Landweber(SPL)”算法进行重构。最后,通过使用逆FFST重构融合图像。实验结果表明,该算法能取得较好的融合效果,提高了运算效率。

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