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An improved multimodal medical image fusion scheme based on hybrid combination of nonsubsampled contourlet transform and stationary wavelet transform

机译:一种改进的基于非木制组合的非数式医学图像融合方案,基于非粘连的轮廓变换和静止小波变换的混合组合

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摘要

This research proposes an improved hybrid fusion scheme for non-subsampled contourlet transform (NSCT) and stationary wavelet transform (SWT). Initially, the source images are decomposed into different sub-bands using NSCT. The locally weighted sum of square of the coefficients based fusion rule with consistency verification is used to fuse the detailed coefficients of NSCT. The SWT is employed to decompose approximation coefficients of NSCT into different sub-bands. The entropy of square of the coefficients and weighted sum-modified Laplacian is employed as the fusion rules with SWT. The final output is obtained using inverse NSCT. The proposed research is compared with existing fusion schemes visually and quantitatively. From the visual analysis, it is observed that the proposed scheme retained important complementary information of source images in a better way. From the quantitative comparison, it is seen that this scheme gave improved edge information, clarity, contrast, texture, and brightness in the fused image.
机译:该研究提出了一种改进的非撤销轮廓型变换(NSCT)和固定小波变换(SWT)的改进的混合融合方案。最初,源图像使用NSCT分解为不同的子带。基于系数的基于系数的融合规则的局部加权之和具有一致性验证来熔化NSCT的详细系数。 SWT用于将NSCT的近似系数分解为不同的子带。系数和加权和改性拉普拉安的平方熵用作SWT的融合规则。使用逆NSCT获得最终输出。拟议的研究与视觉和定量的现有融合方案进行比较。从视觉分析开始,拟议方案以更好的方式保留了源图像的重要互补信息。从定量比较中,可以看出,该方案在融合图像中提高了更好的边缘信息,清晰度,对比度,纹理和亮度。

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