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Fusion of Infrared and Visible Image Based on Target Extraction and Contourlet Transform

机译:基于目标提取和Contourlet变换的红外与可见光图像融合

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The fusion of the infrared and visible images has been widely used in object recognition, night vision and military affairs, which is a popular research field. A new image fusion method based on target extraction and contourlet transform is proposed in this paper. Commonly, the traditional image fusion method neglect differences between the targets and background of the infrared and visible images, resulting in the poor distinct or weak identification of the fused image. In order to take full advantage of the differences, we extract, firstly the interested targets of infrared image, which are fused with the visible image by the method of regional similarity. Therefore we obtain a new visible image with more target information, while reserve the visible background information. Secondly, to obtain more complementary information, contourlet transform is utilized to fuse the new visible image and the source infrared image. In addition, based on the different characters of low frequency and high frequency coefficients, we choose different rules to fuse the contourlet coefficients. In low frequency processing, the method based on the fuzzy theory is used, while we ascertain the high fusion coefficients by the Tenenbaum's algorithm. Experiments are carried out and the results show that our method is effective and the fused images are better than those resulting from wavelet transform and contourlet transform both in visual quality and in quantitative evaluations.
机译:红外图像与可见光图像的融合已广泛用于物体识别,夜视和军事领域,这是一个很受欢迎的研究领域。提出了一种基于目标提取和轮廓波变换的图像融合新方法。通常,传统的图像融合方法忽略了红外图像和可见图像的目标和背景之间的差异,导致融合图像的分辨力差或识别性差。为了充分利用差异,我们首先提取感兴趣的红外图像目标,并通过区域相似性方法将其与可见图像融合。因此,我们获得了具有更多目标信息的新可见图像,同时保留了可见背景信息。其次,为了获得更多的补充信息,轮廓波变换被用来融合新的可见图像和源红外图像。此外,根据低频系数和高频系数的不同特征,我们选择不同的规则来融合轮廓波系数。在低频处理中,使用基于模糊理论的方法,同时通过Tenenbaum算法确定高融合系数。实验结果表明,该方法是有效的,融合后的图像在视觉质量和定量评估上均优于小波变换和轮廓波变换。

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