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首页> 外文期刊>IEEE Transactions on Image Processing >MDLatLRR: A Novel Decomposition Method for Infrared and Visible Image Fusion
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MDLatLRR: A Novel Decomposition Method for Infrared and Visible Image Fusion

机译:MDLATLRR:一种用于红外和可见图像融合的新型分解方法

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摘要

Image decomposition is crucial for many image processing tasks, as it allows to extract salient features from source images. A good image decomposition method could lead to a better performance, especially in image fusion tasks. We propose a multi-level image decomposition method based on latent low-rank representation(LatLRR), which is called MDLatLRR. This decomposition method is applicable to many image processing fields. In this paper, we focus on the image fusion task. We build a novel image fusion framework based on MDLatLRR which is used to decompose source images into detail parts(salient features) and base parts. A nuclear-norm based fusion strategy is used to fuse the detail parts and the base parts are fused by an averaging strategy. Compared with other state-of-the-art fusion methods, the proposed algorithm exhibits better fusion performance in both subjective and objective evaluation.
机译:图像分解对于许多图像处理任务至关重要,因为它允许从源图像中提取突出特征。良好的图像分解方法可能导致更好的性能,尤其是在图像融合任务中。我们提出了一种基于潜伏的低级表示(Latlrr)的多级图像分解方法,该方法被称为MDLATLRR。该分解方法适用于许多图像处理字段。在本文中,我们专注于图像融合任务。我们构建基于MDLATLRR的新型图像融合框架,用于将源图像分解为详细部件(突出功能)和基部。核标准基于核心的融合策略用于熔化细节部件,基部部件通过平均策略融合。与其他最先进的融合方法相比,所提出的算法在主观和客观评估中表现出更好的融合性能。

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