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Sparsity regularized nonlinear inverse reconstruction for subsampled parallel Dynamic Cardiac MRI

机译:用于限制并联动态心脏MRI的稀疏正则非线性反重建

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The emerging Compressed Sensing (CS) theory which synthesizes the sparsity priori, incoherent measurement, and nonlinear reconstruction of a desired signal comprehensively, has been employed in the Dynamic Cardiac Magnetic Resonance Imaging (MRI) to accelerate the imaging speed and to achieve the desired high temporal-spatial resolution further. Although the requirements of CS theory can't be guaranteed in the practical scenario of Dynamic Cardiac MRI strictly, the ideology behind the CS theory can still contribute significantly to the design of integrated sampling and reconstruction framework based on the sparsity priori of dynamic MR image. This work summarizes available sparsity priors for Dynamic Cardiac MRI which all based on the high correlation between adjacent frames of dynamic image. Specific attention is paid to the circumstances in which individual prior tends to perform well, to their effects on reconstructed image respectively, and to their mutual influences. Then the possibility of improving the reconstruction quality via exploiting two or more priors simultaneously is investigated, and the performance of diverse combinations are compared on cardiac cine data set. Based on the experimental investigation presented in this work, better understanding of the characteristics of each sparsity prior of dynamic cardiac MR image and their performance in subsampled Dynamic MRI inverse reconstruction can be achieved.
机译:在动态心脏磁共振成像(MRI)中,在综合地合成所需信号的稀疏优先,不连贯的测量和非线性重建的新出现的压缩检测(CS)理论,以加速成像速度并达到所需高度进一步的时间空间分辨率。虽然严格的动态心脏MRI的实际情况无法保证CS理论的要求,但CS理论背后的意识形态仍然可以基于动态MR图像的稀疏先验的集成采样和重建框架设计。这项工作总结了动态心脏MRI的可用稀疏性,基于相邻动态图像帧之间的高相关。特别注意,在他们对重建图像的效果上,对个人趋于表现良好的情况,以及其相互影响的情况。然后研究了同时利用两个或更多个前沿改善重建质量的可能性,并在心脏调整数据集上进行了不同组合的性能。基于这项工作中提出的实验研究,可以实现更好地理解动态心脏MR图像之前的每个稀疏性的特征及其在撤销的动态MRI反重建中的性能。

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