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Fusion of infrared and visual images through multiscale hybrid unidirectional total variation

机译:通过多尺度混合单向总变化融合红外图像和视觉图像

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As an important research area in image analysis and computer vision, fusion of infrared and visible images aims at delivering an effective combination of image information from different sensors. Since the final fused image is the demonstration of fusion process, it should reveal both source images' vital information distinctly. To achieve this purpose, an image fusion method based on multiscale hybrid unidirectional total variation (MHUTV) and visual weight map (VWM) is proposed in this paper. The MHUTV combines the feature of extracting the details from images and the capacity of suppressing stripe noise, which leads to a more ideal visual effect. The MHUTV is a multiscale, unidirectional and self-adaption image decomposition method, which is used to fuse infrared and visible images in this paper. The visual weight map aims to reveal attention drawing distribution of human observer. It provides a subband fusion criterion, which can guarantee the highlighting of interesting area from infrared and visible images. Firstly, multiscale hybrid unidirectional total variation is discussed and used to decompose the source images into approximation subbands and detail subbands. Secondly, the approximation and details subbands are respectively fused by a fusion rule based on visual weight map. Finally, the fused subbands are combined into one image by implementing inverse MHUTV. The results of comparison experiments on different sets of images demonstrate the effectiveness of the proposed method.
机译:作为图像分析和计算机视觉的重要研究领域,红外图像与可见光图像的融合旨在提供来自不同传感器的图像信息的有效组合。由于最终的融合图像是融合过程的演示,因此应该清楚地揭示两个源图像的重要信息。为了达到这个目的,提出了一种基于多尺度混合单向总变化量(MHUTV)和视觉权重图(VWM)的图像融合方法。 MHUTV结合了从图像中提取细节的功能和抑制条纹噪声的能力,从而带来了更理想的视觉效果。 MHUTV是一种多尺度,单向和自适应图像分解方法,用于融合红外图像和可见图像。视觉权重图旨在揭示观察者注意图的分布。它提供了一个子带融合标准,可以确保从红外和可见图像中突出显示感兴趣的区域。首先,讨论了多尺度混合单向总变化并将其分解为近似子带和细节子带。其次,通过基于视觉权重图的融合规则分别对近似子带和细节子带进行融合。最后,通过实现逆MHUTV将融合的子带组合为一个图像。在不同图像集上的比较实验结果证明了该方法的有效性。

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