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An improved reconstruction method for CS-MRI based on exponential wavelet transform and iterative shrinkage/thresholding algorithm

机译:一种基于指数小波变换和迭代收缩/阈值算法的CS-MRI重建方法

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摘要

In this paper, we propose a novel sparse transform dubbed exponential wavelet transform (EWT), which provides sparser coefficients than the conventional wavelet transform. We also propose a reconstruction algorithm EWT-ISTA that takes advantages of both EWT and ISTA. Experiments compare the proposed EWT-ISTA with conventional ISTA method that takes wavelet transform as sparsity domain. We employ five different kinds of MR images, i.e. the phantom, the brain, the leg, the arm, and the uterus images. The results demonstrate that: (1) EWT is more efficient than wavelet transform in terms of sparsity representation, and (2) the proposed EWT-ISTA can obtain less MAE & MSE, and higher PSNR than ISTA, with comparable computation time.
机译:在本文中,我们提出了一种被称为指数小波变换(EWT)的新型稀疏变换,该稀疏变换提供了比常规小波变换更稀疏的系数。我们还提出了一种重建算法EWT-ISTA,该算法同时利用了EWT和ISTA的优势。实验将提出的EWT-ISTA与以小波变换为稀疏域的常规ISTA方法进行了比较。我们采用五种不同的MR图像,即体模,大脑,腿,手臂和子宫图像。结果表明:(1)在稀疏表示方面,EWT比小波变换更有效;(2)提出的EWT-ISTA与ISTA相比,可以获得更少的MAE和MSE,以及更高的PSNR,并且具有可比的计算时间。

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