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Medical Image Fusion Algorithm Based on Nonlinear Approximation of Contourlet Transform and Regional Features

机译:基于Contourlet变换和区域特征的非线性近似的医学图像融合算法

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摘要

According to the pros and cons of contourlet transform and multimodality medical imaging, here we propose a novel image fusion algorithm that combines nonlinear approximation of contourlet transform with image regional features. The most important coefficient bands of the contourlet sparse matrix are retained by nonlinear approximation. Low-frequency and high-frequency regional features are also elaborated to fuse medical images. The results strongly suggested that the proposed algorithm could improve the visual effects of medical image fusion and image quality, image denoising, and enhancement.
机译:根据Contourlet变换和多模医学成像的优缺点,在这里,我们提出了一种新颖的图像融合算法,其将Contourlet变换的非线性近似与图像区域特征相结合。 Contourlet稀疏矩阵的最重要的系数带由非线性近似保留。低频和高频区域特征也被阐述为保险丝医学图像。结果强烈建议所提出的算法可以提高医学图像融合和图像质量,图像去噪和增强的视觉效果。

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