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Fusion of Infrared and Visible Sensor Images Based on Anisotropic Diffusion and Karhunen-Loeve Transform

机译:基于各向异性扩散和Karhunen-Loeve变换的红外与可见光传感器图像融合

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摘要

Image fusion is a process of generating a more informative image from a set of source images. Major applications of image fusion are in navigation and military. Here, infrared and visible sensors are used to capture complementary images of the targeted scene. The complementary information of these source images has to be integrated into a single image using some fusion algorithms. The aim of any fusion method is to transfer maximum information from the source images to the fused image with a minimum information loss. It has to minimize the artifacts in the fused image. In this paper, we propose a new edge preserving image fusion method for infrared and visible sensor images. Anisotropic diffusion is used to decompose the source images into approximation and detail layers. Final detail and approximation layers are calculated with the help of Karhunen-Loeve transform and weighted linear superposition, respectively. A fused image is generated from the linear combination of final detail and approximation layers. Performance of the proposed algorithm is assessed with the help of petrovic metrics. The results of the proposed algorithm are compared with the traditional and recent image fusion algorithms. Results reveal that the proposed method outperforms the existing methods.
机译:图像融合是从一组源图像生成更多信息的图像的过程。图像融合的主要应用是在导航和军事领域。在此,红外和可见光传感器用于捕获目标场景的互补图像。这些源图像的补充信息必须使用某些融合算法集成到单个图像中。任何融合方法的目的都是以最小的信息损失将最大的信息从源图像传输到融合图像。它必须最小化融合图像中的伪像。在本文中,我们提出了一种新的边缘保留图像融合方法,用于红外和可见传感器图像。各向异性扩散用于将源图像分解为近似层和细节层。最终细节层和逼近层分别借助Karhunen-Loeve变换和加权线性叠加进行计算。从最终细节层和逼近层的线性组合生成融合图像。借助petrovic指标评估了所提出算法的性能。将该算法的结果与传统和最近的图像融合算法进行了比较。结果表明,所提出的方法优于现有方法。

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