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On Single-Image Super-Resolution in 3D Brain Magnetic Resonance Imaging

机译:在3D脑磁共振成像中的单图像超分辨率

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The objective of this work is to apply 3D super resolution (SR) techniques to brain magnetic resonance (MR) image restoration. Two 3D SR methods are considered following different trends: one recently proposed tensor-based approach and one inverse problem algorithm based on total variation and low rank regularization. The evaluation of their effectiveness is assessed through the segmentation of brain compartments: gray matter, white matter and cerebrospinal fluid. The two algorithms are qualitatively and quantitatively evaluated on simulated images with ground truth available and on experimental data. The originality of this work is to consider the SR methods as an initial step towards the final segmentation task. The results show the ability of both methods to overcome the loss of spatial resolution and to facilitate the segmentation of brain structures with improved accuracy compared to native low-resolution MR images. Both algorithms achieved almost equivalent results with a highly reduced computational time cost for the tensor-based approach.
机译:这项工作的目的是将3D超分辨率(SR)技术应用于脑磁共振(MR)图像恢复。两种3D SR方法被认为是不同的趋势:最近提出了基于张量的方法和一种基于总变化和低级正则化的一个逆问题算法。通过脑室的分割评估其有效性的评估:灰质,白质和脑脊髓液。这两个算法是定性的,并定量评估具有地面真理的模拟图像和实验数据。这项工作的原创性是将SR方法视为朝着最终分割任务的初始步骤。结果表明,两种方法克服空间分辨率损失的能力,并促进与天然低分辨率MR图像相比提高精度的脑结构的分割。两种算法几乎相同的结果具有高度降低的基于卷的方法的计算时间成本。

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