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Low rank recovery with manifold smoothness prior: Theory and application to accelerated dynamic MRI

机译:先验的低秩恢复和平滑性:加速动态MRI的理论和应用

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We introduce a regularized optimization algorithm to jointly recover signals that live on a low dimensional smooth manifold. The regularization penalty is the nuclear norm of the gradients of the signals on the manifold. We use this algorithm to reconstruct free breathing dynamic cardiac CINE MRI data. A novel acquisition scheme was used to facilitate the estimation of the manifold structure and recover high quality images. The results show that the method is an efficient alternative to traditional breath-held CINE exams.
机译:我们引入一种正则化优化算法,以共同恢复生活在低维平滑流形上的信号。正则化罚分是流形上信号梯度的核范数。我们使用此算法来重建自由呼吸动态心脏CINE MRI数据。一种新颖的采集方案被用来促进流形结构的估计并恢复高质量的图像。结果表明,该方法是传统屏气式CINE考试的有效替代方法。

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