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Maximum local energy: An effective approach for multisensor image fusion in beyond wavelet transform domain

机译:最大局部能量:一种超越小波变换域的多传感器图像融合的有效方法

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摘要

The benefits of multisensor fusion have motivated research in this area in recent years. Redundant fusion methods are used to enhance fusion system capability and reliability. The benefits of beyond wavelets have also prompted scholars to conduct research in this field. In this paper, we propose the maximum local energy method to calculate the low-frequency coefficients of images and compare the results with those of different beyond wavelets. An image fusion step was performed as follows: first, we obtained the coefficients of two different types of images through beyond wavelet transform. Second, we selected the low-frequency coefficients by maximum local energy and obtaining the high-frequency coefficients using the sum modified Laplacian method. Finally, the fused image was obtained by performing an inverse beyond wavelet transform. In addition to human vision analysis, the images were also compared through quantitative analysis. Three types of images (multifocus, multimodal medical, and remote sensing images) were used in the experiments to compare the results among the beyond wavelets. The numerical experiments reveal that maximum local energy is a new strategy for attaining image fusion with satisfactory performance.
机译:近年来,多传感器融合的好处推动了这一领域的研究。冗余融合方法用于增强融合系统的功能和可靠性。超越小波的好处也促使学者们对该领域进行研究。在本文中,我们提出了最大局部能量方法来计算图像的低频系数,并将结果与​​除小波之外的不同结果进行比较。图像融合步骤如下:首先,我们通过小波变换获得了两种不同类型图像的系数。其次,我们通过最大局部能量选择低频系数,并使用和改进的拉普拉斯求和方法获得高频系数。最后,通过执行超越小波逆变换获得融合图像。除人类视觉分析外,还通过定量分析比较了图像。实验中使用了三种类型的图像(多焦点,多模式医学图像和遥感图像)来比较其他小波之间的结果。数值实验表明,最大局部能量是实现满意图像融合的一种新策略。

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