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一种混合阶非线性扩散压缩感知磁共振图像重建。

A mixed-order nonlinear diffusion compressed sensing MR image reconstruction.

机构信息

Medical Image Computing and Signal Processing Laboratory, Indian Institute of Information Technology and Management-Kerala, India.

出版信息

Magn Reson Med. 2018 Nov;80(5):2215-2222. doi: 10.1002/mrm.27162. Epub 2018 Mar 7.

Abstract

PURPOSE

Avoid formation of staircase artifacts in nonlinear diffusion-based MR image reconstruction without compromising computational speed.

METHODS

Whereas second-order diffusion encourages the evolution of pixel neighborhood with uniform intensities, fourth-order diffusion considers smooth region to be not necessarily a uniform intensity region but also a planar region. Therefore, a controlled application of fourth-order diffusivity function is used to encourage second-order diffusion to reconstruct the smooth regions of the image as a plane rather than a group of blocks, while not being strong enough to introduce the undesirable speckle effect.

RESULTS

Proposed method is compared with second- and fourth-order nonlinear diffusion reconstruction, total variation (TV), total generalized variation, and higher degree TV using in vivo data sets for different undersampling levels with application to dictionary learning-based reconstruction. It is observed that the proposed technique preserves sharp boundaries in the image while preventing the formation of staircase artifacts in the regions of smoothly varying pixel intensities. It also shows reduced error measures compared with second-order nonlinear diffusion reconstruction or TV and converges faster than TV-based methods.

CONCLUSION

Because nonlinear diffusion is known to be an effective alternative to TV for edge-preserving reconstruction, the crucial aspect of staircase artifact removal is addressed. Reconstruction is found to be stable for the experimentally determined range of fourth-order regularization parameter, and therefore not does not introduce a parameter search. Hence, the computational simplicity of second-order diffusion is retained.

摘要

目的

在不影响计算速度的情况下,避免在基于非线性扩散的磁共振图像重建中形成阶梯伪影。

方法

二阶扩散鼓励具有均匀强度的像素邻域的演变,而四阶扩散则认为平滑区域不一定是均匀强度区域,而是平面区域。因此,将四阶扩散函数的受控应用用于鼓励二阶扩散,以便将图像的平滑区域重建为平面而不是一组块,而不会强到引入不必要的斑点效应。

结果

将所提出的方法与二阶和四阶非线性扩散重建、全变分(TV)、全广义变分以及使用基于体内数据集的更高阶 TV 进行比较,用于不同欠采样水平,并应用于基于字典学习的重建。观察到,该技术在防止平滑变化像素强度区域中形成阶梯伪影的同时,保留了图像的锐利边界。与二阶非线性扩散重建或 TV 相比,它还显示出较低的误差度量,并比基于 TV 的方法更快收敛。

结论

由于非线性扩散已知是用于边缘保持重建的 TV 的有效替代方法,因此解决了阶梯伪影去除的关键方面。重建对于实验确定的四阶正则化参数范围内是稳定的,因此不会引入参数搜索。因此,保留了二阶扩散的计算简单性。

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