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Combined sparsifying transforms for compressed sensing MRI

机译:结合稀疏变换的压缩感知MRI

摘要

In traditional compressed sensing MRI methods, single sparsifying transform limits the reconstruction quality because it cannot sparsely represent all types of image features. Based on the principle of basis pursuit, a method that combines sparsifying transforms to improve the sparsity of images is proposed. Simulation results demonstrate that the proposed method can well recover different types of image features and can be easily associated with total variation.
机译:在传统的压缩感测MRI方法中,单个稀疏变换限制了重建质量,因为它不能稀疏表示所有类型的图像特征。基于基本追求的原理,提出了一种结合稀疏变换来提高图像稀疏度的方法。仿真结果表明,该方法能够很好地恢复不同类型的图像特征,并且容易与总变化量相关联。

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