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Single-image super-resolution of brain MR images using overcomplete dictionaries

机译:使用超完备字典的大脑MR图像的单图像超分辨率

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Resolution in Magnetic Resonance (MR) is limited by diverse physical, technological and economical considerations. In conventional medical practice, resolution enhancement is usually performed with bicubic or B-spline interpolations, strongly affecting the accuracy of subsequent processing steps such as segmentation or registration. This paper presents a sparse-based super-resolution method, adapted for easily including prior knowledge, which couples up high and low frequency information so that a high-resolution version of a low-resolution brain MR image is generated. The proposed approach includes a wholeimage multi-scale edge analysis and a dimensionality reduction scheme, which results in a remarkable improvement of the computational speed and accuracy, taking nearly 26min to generate a complete 3D high-resolution reconstruction. The method was validated by comparing interpolated and reconstructed versions of 29 MR brain volumes with the original images, acquired in a 3T scanner, obtaining a reduction of 70% in the root mean squared error, an increment of 10.3dB in the peak signal-to-noise ratio, and an agreement of 85% in the binary gray matter segmentations. The proposed method is shown to outperform a recent state-of-the-art algorithm, suggesting a substantial impact in voxel-based morphometry studies.
机译:磁共振(MR)的分辨率受到各种物理,技术和经济因素的限制。在常规医学实践中,通常使用双三次或B样条插值来执行分辨率增强,这会严重影响后续处理步骤(例如分段或配准)的准确性。本文提出了一种基于稀疏的超分辨率方法,适用于轻松地包括先验知识,该方法将高频和低频信息耦合在一起,从而生成低分辨率脑部MR图像的高分辨率版本。所提出的方法包括全图像多尺度边缘分析和降维方案,从而显着提高了计算速度和精度,花费了将近26分钟的时间来生成完整的3D高分辨率重建。通过将29 MR脑体积的内插和重建版本与在3T扫描仪中获取的原始图像进行比较,验证了该方法的有效性,该方法将根均方根误差降低了70%,峰值信噪比提高了10.3dB。 -噪声比,并且在二元灰质分割中达到了85%的一致性。结果表明,所提出的方法优于最新的算法,这表明在基于体素的形态学研究中具有重大影响。

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