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A New Image Fusion Technology based on Object Extraction and NSCT

机译:基于目标提取和NSCT的图像融合新技术

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In this effort, we proposed an new image fusion technique, utilizing Renyi entropy's object extraction and Non-Subsampled Contourlet Transform (NSCT), for improved visible effect of the image. NSCT is a multiscale transform method, it is a shift-invariant, linear phase, "true" two-dimensional transform that can decomposes an image into any directional sub-images to capture the intrinsic geometrical structure. In this paper we decompose visible image into 21, 22, and 23 directional sub-images at three different level respectively. Image enhancement is performed at the decomposition level and fused. Renyi entropy is a generalized information entropy. Infrared image can be divided into two parts of the object and the background through the maximum value of Renyi entropy. Image fusion is performed after NSCT and Renyi entropy. The fused image has significantly improved brightness and higher contrast than other images. In order to evaluate the proposed method, information entropy (IE), standard deviation (STD), spatial frequency (SF) and mutual information (MI) are adopted to compare with Laplace, wavelet, and NSCT et al. Results are shown that all evaluation value of the proposed method is higher than that of other methods, and it is a better image fusion method.
机译:在这项工作中,我们提出了一种新的图像融合技术,该技术利用Renyi熵的对象提取和非二次采样Contourlet变换(NSCT),以提高图像的可见效果。 NSCT是一种多尺度变换方法,它是位移不变的线性相位“真实”二维变换,可以将图像分解为任何方向性的子图像,以捕获固有的几何结构。在本文中,我们将可见图像分别分解为三个不同级别的21、22和23个方向性子图像。图像增强在分解级别进行并融合。人意熵是广义信息熵。红外图像可以通过人一熵的最大值分为物体和背景两部分。在NSCT和Renyi熵之后执行图像融合。融合后的图像比其他图像具有明显改善的亮度和更高的对比度。为了评估所提出的方法,采用信息熵(IE),标准差(STD),空间频率(SF)和互信息(MI)与Laplace,小波和NSCT等进行比较。结果表明,该方法的评价值均高于其他方法,是一种较好的图像融合方法。

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