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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >Single Anisotropic 3-D MR Image Upsampling via Overcomplete Dictionary Trained From In-Plane High Resolution Slices
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Single Anisotropic 3-D MR Image Upsampling via Overcomplete Dictionary Trained From In-Plane High Resolution Slices

机译:通过平面高分辨率切片训练的过完整字典对单个各向异性3D MR图像进行上采样

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摘要

In magnetic resonance (MR), hardware limitation, scanning time, and patient comfort often result in the acquisition of anisotropic 3-D MR images. Enhancing image resolution is desired but has been very challenging in medical image processing. Super resolution reconstruction based on sparse representation and overcomplete dictionary has been lately employed to address this problem; however, these methods require extra training sets, which may not be always available. This paper proposes a novel single anisotropic 3-D MR image upsampling method via sparse representation and overcomplete dictionary that is trained from in-plane high resolution slices to upsample in the out-of-plane dimensions. The proposed method, therefore, does not require extra training sets. Abundant experiments, conducted on simulated and clinical brain MR images, show that the proposed method is more accurate than classical interpolation. When compared to a recent upsampling method based on the nonlocal means approach, the proposed method did not show improved results at low upsampling factors with simulated images, but generated comparable results with much better computational efficiency in clinical cases. Therefore, the proposed approach can be efficiently implemented and routinely used to upsample MR images in the out-of-planes views for radiologic assessment and postacquisition processing.
机译:在磁共振(MR)中,硬件限制,扫描时间和患者舒适度通常会导致获取各向异性3-D MR图像。期望提高图像分辨率,但是在医学图像处理中一直非常具有挑战性。基于稀疏表示和超完备字典的超分辨率重建最近已被用来解决这个问题。但是,这些方法需要额外的训练集,而这些训练集可能并不总是可用。本文提出了一种新的通过稀疏表示和过完备字典的单各向异性3-D MR图像上采样方法,该方法从平面内高分辨率切片训练到平面外维度上进行上采样。因此,建议的方法不需要额外的训练集。在模拟和临床大脑MR图像上进行的大量实验表明,该方法比经典插值方法更为准确。与基于非局部均值方法的最新上采样方法相比,该方法在模拟图像较少的上采样因子下并未显示出改进的结果,但是在临床情况下却产生了可比的结果,并且计算效率更高。因此,可以有效地实施所提出的方法,并且可以将其常规用于在平面外视图中对MR图像进行升采样,以进行放射学评估和采集后处理。

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