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CT and MR Image Fusion Scheme in Nonsubsampled Contourlet Transform Domain

机译:非下采样Contourlet变换域中的CT和MR图像融合方案

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摘要

Fusion of CT and MR images allows simultaneous visualization of details of bony anatomy provided by CT image and details of soft tissue anatomy provided by MR image. This helps the radiologist for the precise diagnosis of disease and for more effective interventional treatment procedures. This paper aims at designing an effective CT and MR image fusion method. In the proposed method, first source images are decomposed by using nonsubsampled contourlet transform (NSCT) which is a shift-invariant, multiresolution and multidirection image decomposition transform. Maximum entropy of square of the coefficients with in a local window is used for low-frequency sub-band coefficient selection. Maximum weighted sum-modified Laplacian is used for high-frequency sub-bands coefficient selection. Finally fused image is obtained through inverse NSCT. CT and MR images of different cases have been used to test the proposed method and results are compared with those of the other conventional image fusion methods. Both visual analysis and quantitative evaluation of experimental results shows the superiority of proposed method as compared to other methods.
机译:CT和MR图像的融合允许同时可视化由CT图像提供的骨解剖结构的细节和由MR图像提供的软组织解剖结构的细节。这有助于放射科医生进行疾病的精确诊断和更有效的介入治疗程序。本文旨在设计一种有效的CT和MR图像融合方法。在提出的方法中,通过使用非下采样轮廓波变换(NSCT)分解第一源图像,NSCT是不变位移,多分辨率和多方向图像分解变换。在局部窗口中系数的平方的最大熵用于低频子带系数选择。最大加权和修正拉普拉斯算子用于高频子带系数选择。最后通过反NSCT获得融合图像。已使用不同情况的CT和MR图像来测试该方法,并将结果与​​其他常规图像融合方法进行了比较。视觉分析和实验结果的定量评估均显示了该方法相对于其他方法的优越性。

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